scieee AI-readable full text Open interactive document viewer

Interleaved Quadratic Boost DC-DC Converter with Extended Voltage Gain and Reduced Switch Voltage Stress for Photovoltaic Applications

Ferreira, Daniel; Cordeiro, Armando; Gambôa, Paulo; Rocha, Luis; Barata, Filipe; Fernando Silva, José; F. Martins, João; Fernão Pires, Vitor

Abstract

This paper shows the study, development, and results of a new Direct-Current to Direct-Current (DC-DC) electric power converter topology, designated as interleaved quadratic Boost DC-DC converter topology. The converter topology is capable of achieving significantly higher voltage gains (higher voltage in the output when compared with the input voltage) than most conventional existing topologies. A theoretical approach was introduced in this paper and then validated through some computer simulations (using MATLAB/SIMULINK software). Finally, the performance of the topology was also confirmed in an experimental setup using a practical prototype of the proposed converter. From the experimental results, it was possible to achieve a maximum output voltage gain of over eight times the input voltage. An efficiency analysis (allowing us to identify the energy losses during the operation of the converter) was also performed, showing that the proposed topology converter maintains a very high efficiency, around 95% to 96%. The optimal operating point was also identified, based on the duty cycle (turn-on and turn-off of the power devices at a certain frequency), where the converter operates at maximum efficiency. The results show that the proposed converter has a very high potential for applications that require high-voltage gain, such as photovoltaic solar systems or even electrical vehicles or energy storage systems.

Full text

RESEARCH ARTICLE Interleaved Quadratic Boost DC-DC Converter with Extended Voltage Gain and Reduced Switch Voltage Stress for Photovoltaic Applications [version 1; peer review: 1 approved, 1 approved with reservations] Daniel Ferreira 1,2, Armando Cordeiro 1,3, Paulo Gambôa1,3, Luis Rocha1,3, Filipe Barata1, José Fernando Silva 3,4, João F. Martins5, Vitor Fernão Pires 2,3 1PolyTechnic University of Lisbon, Department of Electrical Engineering Energy and Automation, Instituto Superior de Engenharia de Lisboa (ISEL), Rua Conselheiro Emídio Navarro, Lisboa, 1, 1959-007, Portugal 2Department of Electrical and Computer Engineering (DEEC), Nova University of Lisbon, Faculdade de Ciência e Tecnologia (FCT), 2829-516 Caparica, Portugal, CTS-UNINOVA and LASI, Portugal, LASI, Portugal 3Polytechnic Institute of Setubal, Department of Electrical Engineering (DEE), Escola Superior de Tenologia de Setúbal, Campus do IPS, Estefanilha, Setúbal, 2914-508, Portugal 4INESC-ID Lisboa, Rua Alves Redol, Lisboa, 9, 1000-029, Portugal 5Department of Electrical and Computer Engineering (DEEC), University of Lisbon, Instituto Superior Técnico, Av. Rovisco Pais, Lisboa, 1, 1049-001, Portugal First published: 24 Feb 2025, 5:55 https://doi.org/10.12688/openreseurope.19625.1 Latest published: 28 Oct 2025, 5:55 https://doi.org/10.12688/openreseurope.19625.2 v1 Abstract Background DC-DC power converters are essential devices in the modern world, playing a crucial role in managing the power supply from different power sources converting and adapting voltage levels. These power converters are fundamental to numerous applications, from charging your mobile phone to powering different types of machinery. Lately, due to climate change problems and the floating nature of most renewable power sources, they are essential to a carbon-free world and zero emissions target. Methods Our investigation method was based on an initial theoretical approach using mathematical equations to describe the operation of the electrical circuit and evaluate the performance compared to other topologies, followed by the validation through some computational simulations using MATLAB/SIMULINK software. Next, the operation of the proposed converter was also confirmed by several experimental Open Peer Review Approval Status 1 2 version 2 (revision) 28 Oct 2025 version 1 24 Feb 2025 view view Siva Asapu , Shri Vishnu Engineering College for Women, Bhimavaram, India 1. Rachananjali K, Vignan Foundation for Science Technology & Research, Guntur, India 2. Any reports and responses or comments on the article can be found at the end of the article. Open Research Europe  Page 1 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 tests using a laboratory prototype developed exclusively for these tests. Results Based on the achieved results, an efficiency analysis was performed showing that in addition to high-voltage gain, from the range of six to eight times the input voltage, the converter maintains a very high efficiency, around 95% to 96% up to a duty cycle of 0.50, where a voltage gain of 5.82 is achieved in a real setup Also, the optimal operating point was identified, based on the duty cycle, where the converter operates at maximum efficiency. Conclusions In conclusion, it is possible to claim that the proposed converter presents a stable and efficient operation and has a very high potential for applications that require high-voltage gain, such as photovoltaic solar systems or even electrical vehicles or energy storage systems. Other relevant aspect is the reduced value of capacitors, due to the interleaved operation, leading to reduced stress over capacitors and distributed voltage over them. Plain language summary This paper shows the study, development, and results of a new DirectCurrent to Direct-Current (DC-DC) electric power converter topology, designated as interleaved quadratic Boost DC-DC converter topology. The converter topology is capable of achieving significantly higher voltage gains (higher voltage in the output when compared with the input voltage) than most conventional existing topologies. A theoretical approach was introduced in this paper and then validated through some computer simulations (using MATLAB/SIMULINK software). Finally, the performance of the topology was also confirmed in an experimental setup using a practical prototype of the proposed converter. From the experimental results, it was possible to achieve a maximum output voltage gain of over eight times the input voltage. An efficiency analysis (allowing us to identify the energy losses during the operation of the converter) was also performed, showing that the proposed topology converter maintains a very high efficiency, around 95% to 96%. The optimal operating point was also identified, based on the duty cycle (turn-on and turn-off of the power devices at a certain frequency), where the converter operates at maximum efficiency. The results show that the proposed converter has a very high potential for applications that require high-voltage gain, such as photovoltaic solar systems or even electrical vehicles or energy storage systems. Keywords DC-DC Converters; Interleaved Quadratic Boost; High-Voltage Gain; High Efficiency; Photovoltaic systems Open Research Europe  Page 2 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Corresponding author: Armando Cordeiro ([email protected]) Author roles: Ferreira D: Investigation, Methodology, Project Administration, Supervision, Validation, Writing – Original Draft Preparation; Cordeiro A: Conceptualization, Formal Analysis, Investigation, Methodology, Project Administration, Supervision, Validation, Writing – Original Draft Preparation, Writing – Review & Editing; Gambôa P: Supervision, Validation, Visualization, Writing – Original Draft Preparation, Writing – Review & Editing; Rocha L: Resources, Supervision, Validation, Visualization, Writing – Original Draft Preparation, Writing – Review & Editing; Barata F: Resources, Supervision, Validation, Visualization, Writing – Original Draft Preparation, Writing – Review & Editing; Fernando Silva J: Conceptualization, Investigation, Methodology, Project Administration, Validation, Visualization, Writing – Original Draft Preparation, Writing – Review & Editing; F. Martins J: Funding Acquisition, Investigation, Methodology, Project Administration, Validation, Visualization, Writing – Original Draft Preparation, Writing – Review & Editing; Fernão Pires V: Conceptualization, Funding Acquisition, Investigation, Methodology, Project Administration, Resources, Supervision, Validation, Visualization, Writing – Original Draft Preparation, Writing – Review & Editing Competing interests: No competing interests were disclosed. Grant information: This project has received funding from the European Union’s Horizon 2020 research and innovation programme under grant agreement No 101123175. (Herit4Ages project). The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript. Copyright: © 2025 Ferreira D et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. How to cite this article: Ferreira D, Cordeiro A, Gambôa P et al. Interleaved Quadratic Boost DC-DC Converter with Extended Voltage Gain and Reduced Switch Voltage Stress for Photovoltaic Applications [version 1; peer review: 1 approved, 1 approved with reservations] Open Research Europe 2025, 5:55 https://doi.org/10.12688/openreseurope.19625.1 First published: 24 Feb 2025, 5:55 https://doi.org/10.12688/openreseurope.19625.1 This article is included in the Horizon Europe gateway. This article is included in the Energy Systems Modelling collection. Open Research Europe  Page 3 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Introduction The increasing global demand for energy-efficient and sustainable systems has driven significant advancements in power electronics, particularly in DC-DC conversion technologies1. Traditional Boost converters, while effective in many applications, often have difficulty to achieve the high-voltage gains required in modern power systems, such as photovoltaic solar systems2, electrical vehicles (EV)3, High-Voltage Direct Current (HVDC) power transmission systems4, water pumping systems5, or others. Addressing the limitations of conventional topologies, this work introduces a novel interleaved quadratic DC-DC Boost converter designed to provide significantly higher voltage gain without sacrificing efficiency. Over the years, numerous DC-DC Boost converter topologies have been developed for different applications in a wide range of emergent multidisciplinary engineering fields, such as renewable energy sources (RES), photovoltaic solar energy conversion, EV, energy storage systems (ESS), fuel cells, among others. Typically, DC-DC converters can be classified according to different features, such as isolated6,7 or non-isolated8,9, unidirectional10,11 or bidirectional12,13, voltage-fed14,15 or current-fed16,17, hard-switch18,19 or soft-switch20,21, minimum-phase22 or non-minimum-phase23. Most of these DC-DC converters are well represented in 24–27. Another way to classify the DC-DC converters is specifying their voltage Boost technique. Some of the most well-known techniques are the switched capacitors28,29, voltage multiplier cells30,31, switched inductors32,33, voltage lift34,35 and multi-stage/-level36,37 topologies. A review of some of these step-up voltage techniques can be found in 38–40. Nowadays, engineering research is also focused on the development of converters with higher reliability, higher efficiency, combined with less volume, weight and cost41. Among the DC-DC converter topologies developed recently that have stood out for the high-voltage gains obtained are those that present quadratic gains. In this way, is possible to highlight some significantly important topologies developed with such features. The solution proposed in 42 is a transformerless high step-up DC-DC converter with a quadratic voltage gain. In this converter, using a duty cycle greater than 0.309 is possible to achieve a higher voltage gain than the classic Boost converter. This solution includes three switches, five diodes, two inductors and three output capacitors. Despite its interest, this solution requires too many components when compared with other solutions. Other quadratic gain topology can be found in 43, where the authors propose a modified classic DC-DC buck-boost converter. Since this topology allows a buck-boost operation, it is only necessary to control one power switch for each operation mode and the additional power switches remain always ON or always OFF. By controlling only one power switch, they developed a setup capable of achieving a quadruple voltage gain for a duty cycle of 0.5. Another similar topology can be found in 44, which created a quadratic high-gain Boost converter, where it was possible to obtain a gain of two times the input voltage at the output with a duty cycle of 0.50. More recently a new DC-DC Boost converter setup with quadratic gain was proposed45. In this solution using a duty cycle of 0.50 is also possible to achieve a triple output voltage. This solution includes one switch, three diodes, two inductors and two output capacitors. Recently, a new quadratic DC-DC Boost converter topology was proposed in 46, which can achieve a quintuple output voltage with a duty cycle of 0.50. This solution requires only one switch, four diodes, two inductors and three capacitors. The main disadvantage of this solution is that the switch must withstand the maximum output voltage. It is well-known that high-voltage gain is critical in applications with low input voltages, such as those using a reduced number of solar panel strings or where, due to weather variability sometimes produce reduced voltages, and it required to efficiently convert them into much higher output voltages47. Most quadratic DC-DC Boost converters typically offer voltage gains of three to four times the input voltage, which may not be sufficient for advanced applications. The interleaved quadratic Boost topology proposed in this study aims to overcome these limitations by achieving an extended voltage gains over eight times the input voltage, or six times considering a duty cycle of 0.50, providing a more effective solution to integrate additional RES systems. This converter is also characterized by a simple control technique, continuous input and output current, reduced switching voltage stress over the power devices. The proposed solution takes advantage of the interleaved operation, which allows to use multiple circuits (or phases) to process power in parallel. These circuits are operated with time-shifted (interleaved) switching signals to achieve improved performance compared to a single-phase or single-circuit converter. Also, the interleaved operation avoids the need of large output capacitors. The solution is also able to achieve good efficiency according to some preliminary experimental results. This paper presents the theoretical framework behind the proposed interleaved quadratic DC-DC Boost topology, complemented by some experimental results to confirm the theoretical results and efficiency. This paper is organized into five main sections. Section I is dedicated to the introduction of this subject and importance of DC-DC converters in most modern applications, followed by a brief state-of-the-art over DC-DC converters with quadratic gain. Section II provides a detailed explanation of all the design procedures and considerations on the prototype of the proposed converter. Section III presents a comparison between the proposed converter and other interleaved quadratic Boost DC-DC converters already proposed and implemented in the literature. Section IV is dedicated to presenting and demonstrating the laboratory setup and validation of the results regarding the operation principle, voltage gain obtained and efficiency. Finally, section V presents some conclusions. Methods Our investigation methodology was based on an initial theoretical approach using mathematical equations to describe the operation of the electrical circuit and evaluate the performance Page 4 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 compared to other topologies, followed by the validation through some computational simulations using MATLAB/ SIMULINK software. Next, the operation of the proposed converter was also confirmed by several experimental tests using a laboratory prototype developed exclusively for these tests. The next subsections are dedicated to show these procedures. Power Circuit Layout of the proposed quadratic Boost DC-DC converter Figure 1 shows the diagram of the interleaved quadratic Boost DC-DC converter proposed in this paper. It is a new topology that has never been published before, according to extensive research conducted in the main bibliographic reference resources in the field. The power circuit consists of an input inductor, Lin, along with two input diodes, Din1 and Din2, and a capacitor, Cin. Connected to these components are two additional circuits, one at the top and another at the bottom, each consisting of and inductor, L1 and L2, a capacitor, C1 and C2, and a diode, D1 and D2, respectively. Finally, to ensure the capability of voltage regulation and Boost operation, two power MOSFET, S1 and S2, are included, controlled by a command circuit through their gates, represented in the figure as G1 and G2, respectively. Operation mode analysis in steady-state The converter under study has four different operation modes, all in continuous conduction mode (CCM), depending on the operation of the two switches, S1 and S2. Although both power semiconductors can operate simultaneously (overlapping the conduction mode) for duty cycles above 0.50, this mode of operation is not advantageous for lower duty cycles, as it generates higher current peaks without resulting in improved voltage gain. Therefore, in the following analysis, it will be considered whether the converter operates with S1 turned ON and S2 turned OFF or S1 turned OFF and S2 turned ON or both switches turned OFF, providing four different operating intervals as explained next. Figure 2 shows a simplified representation of a classic PWM (Pulse-WidthModulation) control strategy in order to achieve the described operation mode. This is considered an interleaved operation. In the following figures, the four stationary operation modes are illustrated in detail, where the current flow directions in the different paths are represented with different colours to help understanding the operation principle of the converter. S1 turned ON and S2 turned OFF (δ1Ts). During this operating mode, the input diode Din2 is turned OFF, while the input diode Din1 is turned on. Also, during this mode, the input inductor Lin, discharges the energy accumulated in the previous operating mode over the input capacitor Cin which is in charging mode. Meanwhile, the diode D1 is also turned OFF because the inductor L1 is charging and the capacitor C1 is discharging, creating a reverse voltage over D1. On the other hand, D2 is turned ON, meaning that L2 is discharging the energy previously accumulated, and as a result, C2 is in charging mode. The current flow described is illustrated in Figure 3. S1 OFF and S2 OFF (δ2Ts). In this operating mode, Din2 remains turned off while Din1 remains turned ON. Similar to the previous operating mode, Lin is still discharging and Cin in charging mode. Both D1 and D2 are now turned ON since both inductors, L1 and L2, are discharging the accumulated energy over C1 and C2, respectively. The current paths described can be found in Figure 4. S1 OFF and S2 ON (δ3Ts). In this operating mode, after turning ON the switch S2, Din2 turns ON to flow the current over the input inductor Lin, while Din1 turns OFF due to reverse voltage. Thus, Lin is charging, and Cin is discharging the accumulated energy in the previous operating mode over the inductor L2, which is storing energy. As a consequence of Figure 1. Circuit topology of the proposed interleaved quadratic DC-DC Boost Converter. Page 5 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Figure 2. PWM switching strategy of S1 and S2. Figure 3. Current flow analysis when S1 turned ON and S2 turned OFF (δ1Ts). Page 6 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 passive components polarity, D2 becomes reverse-biased and turned off, while C2 starts to discharge over the load. In the opposite direction, D1 is forced to turn ON to discharging the energy accumulated over the inductor L1 into C1, which is in charging mode. Figure 5 shows the representation of the current path flow described now. S1 OFF and S2 OFF (δ4Ts). In this operating mode, both switches are turned off and the current’s path flow is the same as the ones presented in the interval δ2Ts. Following the operation modes described previously, it can be observed and concluded that the current in the inductor L1 increases when the switch S1 is turned ON and decreases when S1 is turned OFF. This means that the switching state of S1 does not affect the current in Lin and L2. On the contrary, the current in the inductors Lin and L2 increase when switch S2 is turned ON and decreases when S2 is turned OFF. This means that the switching state of S2 does not affect the current in L1. This indicates a partially independent operation of the two power switches, when the switching states of S1 and S2 do not overlap. According to the principle of operation detailed in the previous subsection, it is possible to obtain the theoretical waveforms of the four-operating mode of the proposed converter (see Figure 6). When analysing the evolution of the voltage across each inductor and semiconductor presented in this figure is possible to establish the voltage relationships shown in Table 1. According to Table 1, as result of the analysis of the voltage relationships between components is possible to see that the maximum voltage stress over power devices S1 and S2 are vCin + vC1 and vCin + vC2, respectively, which is far reduced when compared to most DC-DC converters whose power devices must support the maximum output voltage. In this way, it is possible to establish the following voltage relationships for each inductor. Assuming ideal components and considering one switching cycle, the relationship between the output and input current, function of the duty cycle, can be obtained through the volt-second relationship of the inductors L1, L2 and Lin, as presented from (1) to (3), respectively: 1 2 3 4 1 ( ) ( )( ) CC in v vδ δ δ δ− = + + (1) 3 1 2 4 2 ( ) ( )( ) CC in v vδ δ δ δ− = + + (2) 3 1 2 4 ( ) ( )( ) Cin in in v v vδ δ δ δ= + + − (3) Knowing that (δ2 + δ3 + δ4) = (1 – δ1) and (δ1 + δ3 + δ4) = (1 – δ3), as well as δ1 = δ3 = δ; equalizing and solving the Equation (1) to Equation (3) to each capacitor voltage, it is possible to establish the voltage equations listed below from (4) to (6): 11C Cin v v δ δ = − (4) 21 C C in v v δ δ = − (5) Figure 4. Current flow analysis when S1 and S2 are turned OFF (δ2Ts). Page 7 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Figure 5. Current flow analysis when S1 is turned OFF and S2 is turned ON (δ3Ts). 1 Cin in v v δ δ = − (6) Equalizing and solving Equation (4) to Equation (6) in order to Vin, and knowing that Vout = vCin + vC1 + vC2, it is possible to establish the expression that characterizes the voltage gain of the proposed interleaved quadratic DC-DC converter (7): 2 1 (1 ) out in v v δ δ + = − (7) Design considerations In this section, the entire design process of the passive components used in the proposed experimental prototype will be presented and discussed. The following characteristics were considered in the design of the prototype: vin = 50 V, δmax = 0.5, RLoad = 450 Ω, Pout(max) = 200 W, vout (δmax) = 300 V, iout (δmax) = 300/450 = 0.67 A, ΔiLmax = 0.5 A, ΔvCmax = 1 V to 3 V, fPWM = 50 kHz, efficiency of 95%. Inductors design For the inductors design, the generic adopted expression to define the minimum inductance value is presented in (8). This expression is based on the linear variation of the current in the inductor and is well explained in most design chapters about DC-DC converters, such as 48–50. L PWM L max v Lf i δ ∆ ⋅ > ⋅ (8) Where vLmax is the maximum voltage applied to the inductor, δ is the maximum duty cycle intended for the converter, fPWM is the switching frequency of the converter, and ΔiL is the maximum current variation (ripple) desired in the inductor. For the input inductor, Lin, the following equation can be used: 1 PWM L in in in v L L mH f i δ ∆ ⋅ > ⇒ > ⋅ (9) For the remaining inductors, L1 and L2, the following equation can be used: 1 2 (1 ) 2 PWM L PWM L in Cin v v L L mH f i f i δ δδ ∆ ∆ ⋅ ⋅− = > ⇒ > ⋅ ⋅ (10) Ferromagnetic material saturation analysis The material of the inductors, applied in this prototype, uses a Litz 420x0.08 SE F155 G1 wire type (widely used in high frequency applications, as it reduces losses and the skin effect), a plastic inductor winding support from the CF model -E70-1S and a set of ferrite cores from model E70/33/32DG in “U” shape, from the manufacturer TDK, with type N87 ferrite. Using the manufacturer datasheet, it is possible to obtain some essential parameters (see Table 2) for analyzing the electromagnetic saturation of the ferrite core. Thus, to calculate the maximum current value that can cross each inductor, before saturating the ferromagnetic material is possible to estimate the number of turns of each winding, taking into account the desired inductance value, L, (H) and the inductance factor, AL, (H) of the material adopted48–51. 2 L L L L N A N A = ⇔ = (11) Page 8 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Figure 6. Theoretical wave forms of the proposed DC-DC Converter. Page 9 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 oscilloscope allows this configuration). Thus, the noise is not so high as it seems at first sight. Output voltage and voltage gain In this subsection several experimental results are presented of the output voltage, output current and a voltage gain comparison for different duty cycles. Figure 12 features the experimental voltage and current output result obtained with δ = 0.4. Observing Figure 12 it is possible to see that for δ = 0.4 the proposed prototype is able to produce an output voltage vout = 189.8 V, which translates to a voltage gain (vout/vin) of 3.66. The mean value of the output current is equal to 453.4 mA. Figure 13 shows the experimental result of the output voltage and output current obtained in the prototype for δ = 0.5. Observing Figure 13 with this duty cycle is possible to observe an output voltage vout = 291.00 V, which translates to a voltage gain (vout/vin) of 5.82. The mean value of the output current is equal to 690.6 mA. As a final experimental result, the prototype was tested with a duty cycle value δ = 0.6. Figure 14 shows the output voltage in this condition. According to Figure 14, the experimental result obtained of the output voltage obtained with a duty cycle δ = 0.6 is 436.7 V. Which means it is possible to get a voltage gain (vout/vin) of 8.62. Above this duty cycle is difficult to increase the voltage gain due to increased losses. Results This section discusses the results obtained based on the experimental test observations, oscilloscope waveforms, and measured voltages and currents. Figure 15 compares the theoretical voltage gain of the proposed converter, the computational simulation results (simulated in MATLAB®/SIMULINK® using the average power losses available in the Simscape Power Systems toolbox) and also the experimental voltage gain obtained. Analyzing Figure 15 is possible to observe in the duty cycle range from 0.05 to 0.60, the output voltage and voltage gain of the experimental prototype shows a high degree of similarity when compared with the simulation and theoretical calculations. Additionally, it is confirmed that with a duty cycle of 0.20, a gain voltage greater than 1.7 is achieved, with a duty cycle of 0.30, a voltage gains greater than 2.5, with a duty cycle of 0.40, Figure 12. Output voltage and current for a duty cycle, δ = 0.4. Page 16 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Figure 14. Output voltage for a duty cycle, δ = 0.6. Figure 13. Output voltage and current for a duty cycle, δ = 0.5. Page 17 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Figure 15. Comparison between theoretical, simulation and experimental voltage gain. a voltage gains greater than 3.6 and with a duty cycle of 0.50, a gain greater than 5.8 is achieved. A maximum gain of 8.62 was achieved with a duty cycle of 0.60. Behind this duty-cycle is difficult to improve the voltage gain since the losses become extremely high. Figure 16 shows the graphical result of the efficiency obtained in both simulation and experimental tests, as function of the converter duty cycle. After analysing the results presented in Figure 16, a close correlation is observed between the efficiency variation and the duty cycle applied to the converter. For a duty cycle variation from 0.05 to 0.60, an efficiency range around 97% to 90% was obtained in the simulation tests and an efficiency range around 96% to 90% was obtained in the experimental tests. It is also observed that a maximum efficiency of 96.79% was achieved for a duty cycle δ = 0.25. Figure 17 illustrates the evolution of the experimental efficiency and voltage gain over the duty cycle. The purpose of this relationship is to evaluate at which output voltage gain value it is possible to achieve the best efficiency, helping us to identify an optimal operating point for the proposed DC-DC converter prototype. Examining Figure 17 is possible to observe that the optimal operating point of the converter happens with a duty cycle of δ =0.25 which results in a voltage gain of 2.09 (marked in red in the figure). However, it is clear that, up to a duty cycle of 0.60, the converter maintains an efficiency between 90% and 96%, which can be considered quite satisfactory. At the maximum value for which it was designed, with a duty cycle of 0.50, the converter presents a voltage gain of 5.82 and an efficiency of 94.76%. Additionally, there is very little variation in efficiency, as it remains between 96% and 95% until reaching a duty cycle of 0.50. Finally, Figure 18 shows the relation between the output power and the output voltage gain of the proposed topology considering a fixed duty cycle of 0.50, showing certain limitations over the output gain due to the several losses. Discussion DC-DC converters play an important role in the integration of different Renewable Energy Sources (RES) into DC distribution networks or as front end devices to connect to DC-AC converters, according to the desired requirements and adopted equipment interface. There is a constant research regarding the design of new DC-DC converter topologies with high-voltage gain ratio and boost ability to extend the operation of RES, and other sources, all over the available voltage ranges, extracting efficiently as much energy as possible. In this paper it was made a brief research about other type of DC-DC converters and it was decided to create a new topology interleaved quadratic DC-DC converter. Quadratic DC-DC converter are some of the topologies that can achieve high voltage gains and are the most suitable for several RES applications due to the variability of most of them, which are dependent on weather conditions, location, distribution system and other aspects. When compared with other topologies in the literature, especially other quadratic DC-DC converters, the proposed topology is the one with higher voltage gain, but present a reduced number of components and the interleaved solution allows to reduce the Page 18 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Figure 16. Comparison between the simulation and the experimental results concerning the converter efficiency. Figure 17. Comparison between experimental voltage gain result and experimental efficiency result. A maximum efficiency of 96.79% was achieved for a duty cycle around δ = 0.25. voltage and current stress over power devices which allows to increase the reliability of the solution. The laboratory prototype was tested in several conditions during several days to evaluate the overall performance, namely the voltage and current stress, robustness, overheating issues, hot spots, electromagnetic noise, efficiency, sensitivity to parameters variation and other aspects. Regarding the electromagnetic noise, some adjustment need to done as future work in the printed circuit board and components, but the overall performance is quite acceptable. This will allow to improve some waveform and interference due to electromagnetic noise. The efficiency was measured in several conditions and real values between 90% (worst conditions) and 96% (best condition) were achieved. Other relevant aspect is the reduced value of capacitors, due to the interleaved operation. This leads to reduced stress over capacitors and distributed voltage. Notice that the output voltage is the Page 19 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Figure 18. Output voltage gain versus Output Power, considering a fixed duty cycle of 0.50. sum of the voltage over the three capacitors. A low power laboratory prototype was developed but is possible develop a similar high power converter. Conclusions This paper proposed a new interleaved quadratic DC-DC boost converter topology with high-voltage gain, confirming the theoretical operation principle based on some experimental setup. The experimental results demonstrate that the proposed topology allows higher voltage gains than most well-known quadratic topologies, reaching a voltage gain from six to eight in a real prototype without degrading the efficiency significantly. The proposed converter provides continuous input and output current and a simple PWM control strategy. Furthermore, it was possible to optimize the converter’s efficiency by adjusting the duty cycle, which plays a crucial role in minimizing conduction and switching losses. The obtained results indicate that there is an optimal operating point where efficiency is maximized, achieving an efficient balance between voltage gain and associated losses. Additionally, there is a very small variation in efficiency, which remains between 95% and 96% up to a duty cycle of 0.50, where a voltage gain of 5.82 is achieved in a real setup. However, when the voltage gains increase behind this point, the efficiency began to decrease, resulting in an evident trade-off between maximizing voltage gain and energy efficiency. This trade-off is particularly relevant in solar photovoltaic applications, where it is necessary to find an appropriate compromise between voltage gain and efficiency based on the specific requirements of the system. Ethics and consent Ethical approval and consent were not required. Data availability No data associated with this article. Acknowledgments Authors would like to acknowledge the Instituto Politécnico de Lisboa (Polytechnic University of Lisbon), Portugal, (IPL/ IDI&CA2024/ResCONVERT_ISEL) for using the facilities of the institution and also the Instituto Superior de Engenharia de Lisboa (ISEL), Portugal, for all the experimental laboratory support. References 1. Vakacharla VR, Gnana K, Xuewei P, et al.: State-of-the-art power electronics systems for solar-to-grid integration. Solar Energy. 2020; 210: 128–148. Publisher Full Text 2. Sri Revathi B, Mahalingam P, Gonzalez-Longatt F: Interleaved high gain DC-DC converter for integrating solar PV source to DC bus. Solar Energy. 2019; 188: 924–934. Publisher Full Text 3. Ravindran MA, Nallathambi K, Vishnuram P, et al.: A novel technological review on fast charging infrastructure for Electrical Vehicles: challenges, solutions, and future research directions. Alexandria Engineering Journal. Page 20 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 2023; 82: 260–290. Publisher Full Text 4. Chen J, Nguyen MK, Yao Z, et al.: DC-DC converters for transportation electrification: topologies, control, and future challenges. In: IEEE Electrification Magazine. 2021; 9(2): 10–22. Publisher Full Text 5. Purwar A, Mal R, Pandit S, et al.: Supervisory control strategy for dual battery assisted solar water pumping using a 3-stage interleaved boost converter. J Energy Storage. 2024; 101(Part B): 113929. Publisher Full Text 6. Snehalika, Patel R, Panigrahi CK: GaN based isolated bidirectional multiport DC-DC converter for electric vehicle charging. e-Prime - Advances in Electrical Engineering, Electronics and Energy. 2024; 8: 100574. Publisher Full Text 7. Graziani SF, Cook TV, Grainger BM: Isolated flying capacitor multilevel converters. In: IEEE Open Journal of Power Electronics. 2022; 3: 197–208. Publisher Full Text 8. Koç Y, Birbir Y, Bodur H: Non-isolated high step-up DC/DC converters – an overview. Alexandria Engineering Journal. 2022; 61(2): 1091–1132. Publisher Full Text 9. Khan F, Zaid M, Tariq A, et al.: A new non-isolated high-gain DC-DC converter for the PV application. e-Prime - Advances in Electrical Engineering, Electronics and Energy. 2023; 5: 100198. Publisher Full Text 10. Mirzaei A, Rezvanyvardom M: High voltage gain soft switching full bridge interleaved flyback DC-DC converter for PV applications. Solar Energy. 2020; 196: 217–227. Publisher Full Text 11. Thangavel S, Raghavendra Rao NS, Shaw M, et al.: Reliability analysis of a three-phase interleaved step-up DC-DC converter for electric vehicle. Comput Electr Eng. 2024; 118(Part B): 109428. Publisher Full Text 12. Bodele NJ, Kulkarni PS: Modular battery-integrated bidirectional singlestage DC–DC converter for solar PV based DC Nano-grid application. Solar Energy. 2023; 259: 1–14. Publisher Full Text 13. Amaral da Luz CM, Ribeiro ER, Tofoli FL: Analysis of the PV-to-PV architecture with a bidirectional buck-boost converter under shading conditions. Solar Energy. 2022; 232: 102–119. Publisher Full Text 14. Akter K, Motakabber SMA, Zahirul Alam AHM, et al.: Design and investigation of high power quality PV fed DC-DC boost converter. e-Prime - Advances in Electrical Engineering, Electronics and Energy. 2024; 9: 100649. Publisher Full Text 15. Morey M, Golla M, Garg MM, et al.: A high gain Z-source boost DC–DC converter with common ground for solar PV applications. Electric Power Systems Research. 2024; 232: 110405. Publisher Full Text 16. Ahmed OA, Bleijs JAM: Modelling and experimental verification of the effect of parasitic elements on the performance of an active-clamped current-fed DC–DC converter. Simul Model Pract Theory. 2015; 59: 71–88. Publisher Full Text 17. Pan X, Li H, Liu Y, et al.: An overview and comprehensive comparative evaluation of current-fed-isolated-bidirectional DC/DC converter. In: IEEE Trans Power Electron. 2020; 35(3): 2737–2763. Publisher Full Text 18. da Rocha JF, dos Santos MB, Costa JMD: Voltage spikes in integrated CMOS Buck DC-DC converters: analysis for resonant and hard switching topologies. Procedia Technology. 2014; 17: 327–334. Publisher Full Text 19. Aydemir MT, Bendre A, Venkataramanan G: A critical evaluation of high power hard and soft switched isolated DC-DC converters. Conference Record of the 2002 IEEE Industry Applications Conference. 37th IAS Annual Meeting (Cat. No.02CH37344). Pittsburgh, PA, USA, 2002; 2: 1338–1345. Publisher Full Text 20. Cheng XF, Liu C, Wang D, et al.: State-of-the-art review on soft-switching technologies for non-isolated DC-DC converters. In: IEEE Access. 2021; 9: 119235–119249. Publisher Full Text 21. Danyali S, Moradkhani A, Abdaumran OA, et al.: A novel multi-input mediumgain DC-DC boost converter with soft-switching performance. International Journal of Electrical Power & Energy Systems. 2024; 155(Part B): 109629. Publisher Full Text 22. Sharma P, Kumar R, Hassanpour S: An approach to eliminate the nonminimum phase issue in high gain converters. 2022 IEEE 19th India Council International Conference (INDICON). Kochi, India, 2022; 1–6. Publisher Full Text 23. Sarkar S, Ghosh A, Banerjee S: Design and implementation of type-III controller in tri state boost converter. 2015 Annual IEEE India Conference (INDICON). New Delhi, India, 2015; 1–6. Publisher Full Text 24. Farajdadian S, Hajizadeh A, Soltani M: Recent developments of multiport DC/DC converter topologies, control strategies, and applications: a comparative review and analysis. Energy Rep. 2024; 11: 1019–1052. Publisher Full Text 25. Alam MA, Minai AF, Bakhsh FI: Isolated bidirectional DC-DC converter: a topological review. e-Prime - Advances in Electrical Engineering, Electronics and Energy. 2024; 8: 100594. Publisher Full Text 26. Chewale MA, Wanjari RA, Savakhande VB, et al.: A review on isolated and nonisolated DC-DC converter for PV application. 2018 International Conference on Control, Power, Communication and Computing Technologies (ICCPCCT). Kannur, India, 2018; 399–404. Publisher Full Text 27. Raghavendra KVG, Zeb K, Muthusamy A, et al.: A comprehensive review of DC–DC converter topologies and modulation strategies with recent advances in solar photovoltaic systems. Electronics. MDPI, 2020; 9(1): 31. Publisher Full Text 28. Nanda H, Sharma H, Arora K, et al.: A novel high-gain switched-capacitor multilevel inverter with reduced components for grid integration. Alexandria Engineering Journal. 2024; 106: 240–251. Publisher Full Text 29. Assem P, Liu WC, Lei Y, et al.: Hybrid dickson switched-capacitor converter with wide conversion ratio in 65-nm CMOS. In: IEEE J Solid State Circuits. 2020; 55(9): 2513–2528. Publisher Full Text 30. Navamani JD, Vijayakumar K, Jegatheesan R: Non-isolated high gain DC-DC converter by quadratic boost converter and voltage multiplier cell. Ain Shams Engineering Journal. 2018; 9(4): 1397–1406. Publisher Full Text 31. Mohseni P, Mohammadsalehian S, Islam MR, et al.: Ultrahigh voltage gain DC– DC boost converter with ZVS switching realization and coupled inductor extendable voltage multiplier cell techniques. IEEE Trans Ind Electron. 2022; 69(1): 323–335. Publisher Full Text 32. Ding X, Yu D, Song Y, et al.: Switched-coupled inductor DC-DC converters. 2018 IEEE International Conference on Industrial Electronics for Sustainable Energy Systems (IESES), Hamilton, New Zealand, 2018; 174–179. Publisher Full Text 33. Alnuman H, Samiullah Md, Armghan A, et al.: Switched inductor super boost converter with auxiliary charging mode for low duty operation in a DC microgrid. Energy Rep. 2023; 10: 2319–2329. Publisher Full Text 34. Kumar MAB, Krishnasamy V: Enhanced quadratic boost converter based on voltage lift technique for fuel cell powered electric vehicle. Computers and Electrical Engineering. 2022; 102: 108256. Publisher Full Text 35. Rajabi A, Rajaei A, Tehrani VM, et al.: A non-isolated high step-up DC-DC converter using voltage lift technique: analysis, design, and implementation. IEEE Access. 2022; 10: 6338–6347. Publisher Full Text 36. Diab M, Elserougi AA, Abdel-Khalik AS: A hybrid DC-DC modular multilevel converter with capacitors parallel connectivity for arm energy balancing. Alexandria Engineering Journal. 2023; 83: 286–297. Publisher Full Text 37. Abdelaziz YN, Mansour M, Aboushady AA, et al.: New analysis of VSC-based modular multilevel DC-DC converter with low interfacing inductor for hybrid LCC/VSC HVDC network interconnections. Alexandria Engineering Journal. 2024; 95: 82–93. Publisher Full Text 38. Forouzesh M, Siwakoti YP, Gorji SA, et al.: Step-up DC–DC converters: a comprehensive review of voltage-boosting techniques, topologies, and applications. IEEE Trans Power Electron. 2017; 32(12): 9143–9178. Publisher Full Text 39. Valarmathy AS, Prabhakar M: High gain interleaved boost-derived DC-DC converters – a review on structural variations, gain extension mechanisms and applications. e-Prime - Advances in Electrical Engineering, Electronics and Energy. 2024; 8: 100618. Publisher Full Text 40. Erat A, Vural AM: DC/DC modular multilevel converters for HVDC interconnection: a comprehensive review. Int Trans Electr Energy Syst. 2022; 2022(1): 49, 2687243. Publisher Full Text 41. Hossain MZ, Rahim NA, Jeyraj a/l Selvaraj, et al.: Recent progress and development on power DC-DC converter topology, control, design and applications: a review. Renew Sustain Energy Rev. 2018; 81(Part 1): 205–230. Publisher Full Text 42. Sivaram NV, Lavanya A, Navamani JD: Dual Input Single Output Quadratic Boost Converter for DC microgrid. e-Prime - Advances in Electrical Engineering, Electronics and Energy. 2024; 9: 100683. Publisher Full Text 43. Pires VF, Foito D, Cordeiro A: A DC–DC converter with quadratic gain and bidirectional capability for batteries/supercapacitors. IEEE Trans Ind Appl. 2018; 54(1): 274–285. Publisher Full Text Page 21 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 44. García–Vite PM, Soriano–Rangel CA, Rosas–Caro JC, et al.: A DC–DC converter with quadratic gain and input current ripple cancelation at a selectable duty cycle. Renew Energ. 2017; 101: 431–436. Publisher Full Text 45. Lica S, Lascu D, Lovasz EA: A new step-up-down quadratic DC–DC converter with a single active switch. J Comput Appl Math. 2024; 436: 115362. Publisher Full Text 46. Veerachary M: Design and analysis of a new quadratic boost converter. 2017 National Power Electronics Conference (NPEC). Pune, India, 2017; 307–313. Publisher Full Text 47. de Carvalho MRS, Neto RC, Barbosa EJ, et al.: An overview of voltage boosting techniques and step-up DC-DC converters topologies for PV applications. Energies. 2021; 14(24): 8230. Publisher Full Text 48. Mohan N, Undeland TM, Robbins WP: Power electronics. Converters, applications and design. 2ª edição, John Wiley and Sons, Inc., ISBN 9780471584087, 1995. 49. Erickson RW, Maksimovic D: Fundamentals of power electronics. 3ª edição, Springer, ISBN 978-030-43879-1, 978-3-030-43881-4 (ebook), 2020. Reference Source 50. Rashid MH: Power electronics Handbook. 3ª edição, Elsevier Inc., ISBN 978-012-382036-5, 2011. 51. EricksonRW,MaksimovićD:Fundamentals of power electronics. 3ª edição, Springer, ISBN 978-030-43879-1, 978-3-030-43881-4 (ebook), 2020. Publisher Full Text 52. Shalbaf AA, Shahidi N, Hemati M: A high-gain interleaved DC-DC converter with reduced components for EV charging application. Comput Electr Eng. 2024; 118(Part A): 109316. Publisher Full Text 53. Samuel VJ, Keerthi G, Prabhakar M: High gain interleaved quadratic boost DCDC converter. 2019 2nd Int Conference on Power and Embedded Drive Control (ICPEDC). Chennai, India, 2019; 390–395. Publisher Full Text 54. Izadi M, Mosallanejad A, Eshkevari AL: An improved coupled inductor-based quadratic step-up DC–DC converter with a high step-up factor and reduced voltage overshoot on the power switch. IET Power Electron. 2024; 17(9): 986–1004. Publisher Full Text 55. Balci S, Altin N, Komurcugil H, et al.: Performance analysis of interleaved quadratic boost converter with coupled inductor for fuel cell applications. IECON 2016 - 42nd Annual Conference of the IEEE Industrial Electronics Society. Florence, Italy, 2016; 3541–3546. Publisher Full Text 56. Muhammad M, Armstrong M, Elgendy MA: A nonisolated interleaved boost converter for high-voltage gain applications. In: IEEE J Emerg Sel Top Power Electron. 2016; 4(2): 352–362. Publisher Full Text Page 22 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Open Peer Review Current Peer Review Status: Version 1 Reviewer Report08 August 2025 https://doi.org/10.21956/openreseurope.21228.r55982 © 2025 K R. This is an open access peer review report distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Rachananjali K Vignan Foundation for Science Technology & Research, Guntur, Andhra Pradesh, India Authors have addressed the issues and focused on extended voltage gain and reduced switch count. Topology is being implemented for photovoltaic application. Theirinvestigation method was based on an initial theoretical approach using mathematical equations to describe the operation of the electrical circuit and evaluate the performance compared to other topologies, followed by the validation through some computational simulations using MATLAB/SIMULINK software. Next, the operation of the proposed converter was also confirmed by several experimental tests using a laboratory prototype developed exclusively for these tests. Is the work clearly and accurately presented and does it cite the current literature? Yes Is the study design appropriate and does the work have academic merit? Yes Are sufficient details of methods and analysis provided to allow replication by others? Yes If applicable, is the statistical analysis and its interpretation appropriate? Yes Are all the source data underlying the results available to ensure full reproducibility? Yes Are the conclusions drawn adequately supported by the results? Yes Open Research Europe  Page 23 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 Competing Interests: No competing interests were disclosed. Reviewer Expertise: Renewable and converters I confirm that I have read this submission and believe that I have an appropriate level of expertise to confirm that it is of an acceptable scientific standard. Reviewer Report12 June 2025 https://doi.org/10.21956/openreseurope.21228.r54070 © 2025 Asapu S. This is an open access peer review report distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Siva Asapu Shri Vishnu Engineering College for Women, Bhimavaram, Andhra Pradesh, India The paper describes an Interleaved Quadratic Boost DC-DC Converter. The topic of Interleaved Quadratic Boost Converters has been widely explored in the literature over the past few decades. Various studies have discussed different topologies and designs aimed at achieving high-gain conversion and high efficiency. Therefore, determining the novelty of the proposed circuit is challenging. In the abstract, the author mentions the converter's efficiency values, but in the body of the article, the efficiency analysis is missing. Including the converter’s efficiency formulas, derivations, and equivalent circuit under non-ideal conditions would greatly enhance the reader's understanding of the converter's dynamic performance. While efficiency is a critical metric for DC-DC converters, its discussion in the manuscript is minimal. Please elaborate on how the efficiency was calculated, and provide deeper insights into switching and conduction losses. The authors are encouraged to include a discussion on voltage and current stress on key components, which would help evaluate the reliability of the proposed converter. The comparison section is incomplete and requires significant improvement. It should convincingly compare the proposed converter with existing topologies. Specifically, comparisons should include power losses (both switching and conduction), power density, efficiency, and other relevant performance metrics. In the manuscript, hardware results are presented and explained. However, the implementation details using MATLAB software are lacking—particularly with respect to the voltage and current waveforms of inductors, capacitors, and switches. There is no step response analysis presented for the converter. Including this analysis would significantly improve the understanding of the converter's dynamic performance. Detailed Open Research Europe  Page 24 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025 information on how the gate drivers are integrated into the circuit and the component selection criteria would also be beneficial. The quality of the figures throughout the manuscript is substandard. Most figures are lowresolution and appear pixelated, which hampers clarity and readability. It is recommended to provide high-resolution vector graphics (preferably in PDF or EPS format) to ensure clear visualization of plots and circuit diagrams. Is the work clearly and accurately presented and does it cite the current literature? Partly Is the study design appropriate and does the work have academic merit? Yes Are sufficient details of methods and analysis provided to allow replication by others? Partly If applicable, is the statistical analysis and its interpretation appropriate? Yes Are all the source data underlying the results available to ensure full reproducibility? Yes Are the conclusions drawn adequately supported by the results? Yes Competing Interests: No competing interests were disclosed. Reviewer Expertise: DC - DC converters, MPPT and multilevel inverters I confirm that I have read this submission and believe that I have an appropriate level of expertise to confirm that it is of an acceptable scientific standard, however I have significant reservations, as outlined above. Open Research Europe  Page 25 of 25 Open Research Europe 2025, 5:55 Last updated: 05 NOV 2025