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Fluoranthene-based derivatives for multimodal anti-counterfeiting and detection of nitroaromatics

Selvaraj, Kasthuri

Abstract

In this study, we developed two novel sky blue fluorescent fluorophores comprising ethyl alcohol (FOH) and ethanethiol (FSH) units appended to fluoranthene at the periphery. Single Crystal X-Ray Diffraction (SC-XRD) studies reveal that the molecular flexibility of alkyl chains leads to distinct diagonal (FOH) and ladder (FSH) shaped supramolecular arrangements in the crystal lattices. Detailed photophysical and DFT studies showed that FOH and FSH demonstrate high sensitivity and selectivity towards the detection of trinitrophenol (TNP). FSH exhibits high quenching efficiency (similar to 84%), a rate constant of KSV = 1.1 x 104 M-1 with a limit of detection of similar to 97 ppm in THF, and similar to 76 ppm in river water. Mechanistic investigation through NMR and SC-XRD of the FSH adduct with 1,3-dinitrobenzene (DNB) reveal strong pi-pi interactions (3.518 angstrom). Furthermore, photoinduced electron transfer occurs from the fluorophores to the nitro analytes and leads to strong intermolecular interactions using the static quenching mechanism. Both fluorophores were employed in advanced surveillance to identify finger marks on a wide range of substrates (glass, cellophane tape, aluminium foil and floor tiles) with different resolutions to provide an unadorned and lucrative method for viewing the latent fingerprints (LFPs) with exceptionally consistent evidence of up to level 3 and without the requirement for post-treatments, leading to promising applications for onsite forensic analysis. Furthermore, FOH and FSH were evaluated in 72 hpf zebrafish larvae/embryos to demonstrate the non-toxicological behaviour and fluorescence imaging/tracking. Two novel fluoranthene ensembles with ethyl alcohol (FOH) and ethanethiol (FSH) functionality with distinct diagonal and ladder arrangements in the crystal lattices were developed for Latent Fingerprints (LFPs) towards analysis of explosives.

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© 2023 The Author(s). Published by the Royal Society of Chemistry Mater. Adv., 2023, 4, 6259–6270 | 6259 Cite this: Mater. Adv., 2023, 4, 6259 Fluoranthene-based derivatives for multimodal anti-counterfeiting and detection of nitroaromatics† Kasthuri Selvaraj, a Prasanth Palanisamy, a Marimuthu Manikandan, b Praveen B. Managutti, c Palanivelu Sangeetha, b Sharmarke Mohamed, c Rajesh Pamanji, d Joseph Selvin, d Sohrab Nasiri, ef Stepan Kment fg and Venkatramaiah Nutalapati * a In this study, we developed two novel sky blue fluorescent fluorophores comprising ethyl alcohol (FOH) and ethanethiol (FSH) units appended to fluoranthene at the periphery. Single Crystal X-Ray Diffraction (SC-XRD) studies reveal that the molecular flexibility of alkyl chains leads to distinct diagonal (FOH) and ladder (FSH) shaped supramolecular arrangements in the crystal lattices. Detailed photophysical and DFT studies showed that FOH and FSH demonstrate high sensitivity and selectivity towards the detection of trinitrophenol (TNP). FSH exhibits high quenching efficiency (B84%), a rate constant of K SV = 1.1  10 4 M 1 with a limit of detection of B97 ppm in THF, and B76 ppm in river water. Mechanistic investigation through NMR and SC-XRD of the FSH adduct with 1,3-dinitrobenzene (DNB) reveal strong p–pinteractions (3.518 Å). Furthermore, photoinduced electron transfer occurs from the fluorophores to the nitro analytes and leads to strong intermolecular interactions using the static quenching mechanism. Both fluorophores were employed in advanced surveillance to identify finger marks on a wide range of substrates (glass, cellophane tape, aluminium foil and floor tiles) with different resolutions to provide an unadorned and lucrative method for viewing the latent fingerprints (LFPs) with exceptionally consistent evidence of up to level 3 and without the requirement for post-treatments, leading to promising applications for onsite forensic analysis. Furthermore, FOH and FSH were evaluated in 72 hpf zebrafish larvae/embryos to demonstrate the non-toxicological behaviour and fluorescence imaging/tracking. 1. Introduction Explosive detection and the identification of latent fingerprints (LFPs) play significant roles in counterterrorism and national security issues. 1,2 Because explosive compounds are widely used, theanalysisofexplosivesisvitalinforensics,minedetectionand global pollution connected to explosion wastes. 3,4 Short and longterm exposure to nitroaromatic explosive materials poses a major risk to anthropoid health for animals and humans, such as anemia, carcinogenic effects and liver damage. Different nitroaromatic compounds (NACs), such as 2,4,6-trinitrophenol (TNP), 2,4,6-trinitrotoluene (TNT) and 2,4-dinitrotoluene (2,4-DNT), comprise the most standard defense explosives and the key considerations of unexploded minefield globally. 5,6 For instance, TNT is listed as an EPA pollutant at concentrations above 2 mgL 1 . 7 LFPs are frequently used in criminal investigations and need to be recognized with the correct techniques to determine their origins in conventional forensic practices. Furthermore, the fluorescent illumination of latent finger-marks provides greater clarity, sensitivities, discrimination and device dependence. 8–10 Considering the a Department of Chemistry, Faculty of Engineering and Technology, SRM Institute of Science and Technology (SRMIST), Kattankulathur-603203, India. E-mail: nvenk[email protected], [email protected] b Division of Chemistry, School of Advanced Sciences, Vellore Institute of Technology, Chennai, Tamil Nadu 600127, India c Chemical Crystallography Laboratory, Khalifa University of Science and Technology, Abu Dhabi, PO Box 127788, United Arab Emirates d Department of Microbiology, Pondicherry University, Puducherry 605014, India e Faculty of Mechanical Engineering, Optical Measurement Laboratory, Kaunas University of Technology, Studentu Street 56, L-116, Kaunas, LT 51373, Lithuania f CEET, Nanotechnology Centre, VS ˇB-Technical University of Ostrava, 17. Listopadu 2172/15, Ostrava-Poruba 708 00, Czech Republic g Czech Advanced Technology and Research Institute, Regional Centre of Advanced Technologies and Materials Department, Palacky ´University Olomouc, S ˇlechtitelu ˚27, Olomouc 78371, Czech Republic †Electronic supplementary information (ESI) available: Synthetic procedures, mechanism, characterization of the compounds (NMR, mass, FT-IR), DSC, single crystal X-ray information, optical band gaps, fluorescence titration experiments, Stern–Volmer plots, LODs, real water analysis and toxicological studies on Zebra fish effects are described. CCDC 2179068, 2178647 and 2231960. For ESI and crystallographic data in CIF or other electronic format see DOI: https://doi.org/ 10.1039/d3ma00343d Received 30th June 2023, Accepted 12th October 2023 DOI: 10.1039/d3ma00343d rsc.li/materials-advances Materials Advances PAPER Open Access Article. Published on 18 October 2023. Downloaded on 4/23/2024 5:27:20 AM. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. View Article Online View Journal | View Issue 6260 | Mater. Adv., 2023, 4, 6259–6270 © 2023 The Author(s). Published by the Royal Society of Chemistry ecosystem and the security of users, organic matter for the fluorescence imaging of LFPs has been widely investigated in recent years. 11 Thus, there is a need to create a sensor that is highly selective, sensitive, portable, economical and to develop innovative fingerprint reagent techniques to improve fingerprint performance for the specific purpose of tracing and identification of NACs. Various methods and analytical techniques, such as metal detection, X-ray diffraction, Surface-Enhanced Raman Spectroscopy (SERS), neutron activation, gas chromatography–mass spectrometry (GC-MS), nuclear quadrupole resonance (NQR), ion mobility spectrometers and cyclic voltammetry, are used to identify trace NACs. 12–15 However, the onsite utility of these techniques is restricted owing to their sophisticated instrument and difficulty in handling real-world operations. An alternative approach, such as fluorescence techniques, has received more attention in recent years because of its high sensitivity, quick response, and portability. In recent years, researchers have developed various fluorescent-based sensors, such as metal–organic frameworks, 16 covalent organic polymers, 17 organic–inorganic hybrid materials 18 and quantum dots, 19 to evaluate NACs detection and LFP visualisation. 20–22 However, most of these molecular materials are insoluble in common solvents, making it difficult to fabricate portable devices for practical applications. As an added complication, it is typical to employ identical luminous materials for the recognition of explosives and the identification of LFPs. Furthermore, by employing Aggregation Induced Emission (AIE) and Aggregation Induced Emission Enhancement (AIEE) phenomena to detect nitro analytes at trace levels, with significant focus was made on the synthesis and refinement of innovative conjugated polymers and simple molecule-based related compounds. 23 Although TNP has a higher explosive capacity than TNT (B106% times), it has been attempted to develop chemosensors that can detect TNP at ultra-low levels. Unfortunately, several of these materials are challenged to detect nitro analytes preferentially. Consequently, the scientific research of p-conjugated fluorophores with better properties, greater sensitivity and selective detection has remained a key goal. In this regard, several fluoranthene-based luminescent molecules have been developed as promising chemosensors for TNP by layer-by-layer assembly of fluoranthene and TNP units. The structural alteration by expanding the conjugation with phenyl rings increased detection limits using the contact mode technique. 24–26 Moreover, the influence of the alkyl chain and aromatic substituents on the photophysical characteristics of fluoranthene for the identification of NACs was demonstrated in our previous studies. 27,28 Based on the available literature, developing novel chemosensors with higher selectivity and sensitivity is highly attributed to the fluorophores containing an electron-rich environment and prolonged conjugation. Furthermore, the functional groups of fluorophores should be reacting/hydrophilic to engage in hydrogen bonding and electrostatic interaction with nitro analytes, and substituents at the periphery are advantageous for preventing aggregation. 29a In this regard, the functionalization of fluorophores plays an important role in the detection of NACs. Moreover, the direct functionalization of fluorophores containing primary alcohol is extremely difficult owing to the poor leaving group nature of primary alcohol. The primary alcohol is necessary to modify into a good leaving group, such as mesylates, 29b tosylates, 30 and 2,4-nitrobenzene sulfonates, 31 for effective functionalization or substitution. Direct functionalization on primary alcohol achieved a wide range of chemicals, such as unsaturation in steroids, 32–35 ethers 36 and chlorine, 37,38a via tosylation reactions. Allen and co-workers developed various substituted fluoranthene derivatives. 38b However, to the best of our knowledge, this is the first report to develop a novel method for the direct conversion of primary alcohols to corresponding thiols on fluoranthene by employing various nitrobenzene sulfonates, such as 4-nitrobenzene sulfonyl chloride and 2,4-dinitrobenzene sulfonyl chloride. The orientation of phenyl and various hydrophilic functionalizations, including ethyl alcohol and ethanethiol on the fluoranthene backbone, account for the unique supramolecular arrangements in the solid state. Extensive investigations on the photophysical characteristics in THF and solid state were performed. By varying the functional groups, the hydrophilic and electrostatic attraction of the fluorophore towards detecting NACs have been investigated. FSH is highly sensitive and selective for the detection of TNP, with high quenching efficiency (B84%) with detection limits of B97 ppm (THF) and B76 ppm (river water). FOH and FSH fluorophores are employed to visualise highresolution LFPs on a range of substrates, such as glass, aluminium foil, tiles, and cellophane tape, to study the variation in the emission behaviour when treated with unique nitro explosive compounds. 2. Materials and methods Sigma Aldrich and S.D. Fine Chemicals Ltd, India provided all A.R. grade chemicals and reagents, which were used without further refinement. NMR ( 1 H and 13 C) spectra were collected using a Bruker spectrometer at 500, 400, and 100 MHz, with tetramethylsilane (TMS) as an internal reference. The ESI-MS of the compounds was determined using an Applied Biosystems Voyager DE-STR with microanalysis on a Thermo Finnigan Flash EA 1112 series instrument and assessed using the electrospray ionization (ESI) method. M/S Bruker Daltonik GmbH used QTOF – HRMS with an ESI injector to obtain the HR-MS, and Shimadzu, Irtracer 100 was employed to collect the FT-IR. Differential Scanning Calorimetry (DSC) was performed using NETZSCH DSC 214 with a nitrogen flow of 40 mL min 1 . Agilent Cary 60 UV-Vis spectrometer was employed to measure the absorption spectra of the compounds in solution and thin films. The Edinburgh FLS100 Fluorescence Spectrophotometer was used to obtain the fluorescence emission spectra, and the integrated sphere was used to determine the absolute quantum yields. Thin films were obtained by mixing 1 mg of each luminous substance in 0.1 mL of CHCl 3 and drop-casting over a quartz plate. The thin films were dried at ambient temperature for 3 h. 39 Time-correlated single-photon counting (TCSPC) technique was utilized to analyze the fluorescence lifetime using a nanosecond LED source (380 nm). Computational studies were carried out using the Gaussian 09 Program by geometry optimization with a basis set of 6-31g* and the hybrid B3LYP parameter. 40 Paper Materials Advances Open Access Article. Published on 18 October 2023. Downloaded on 4/23/2024 5:27:20 AM. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. View Article Online © 2023 The Author(s). Published by the Royal Society of Chemistry Mater. Adv., 2023, 4, 6259–6270 | 6261 2.1 Synthesis 7,9-Diphenyl-8H-cyclopenta[a]acenaphthylen-8-one, 3was synthesized according to the procedure reported by our group, 28 and detailed analytical characterization is presented in (Scheme S1, ESI†) and Fig. S1 and S2, ESI.†Different functionalized fluoranthene derivatives, such as 2-(7,10-diphenylfluoranthen-8-yl)ethanol (FOH) and 2-(7,10-diphenylfluoranthen-8yl)ethanethiol (FSH), were developed, as illustrated in Scheme 1, and their detailed characterization was described in Fig. S3–S8, ESI.†Fig. S9 (ESI†) demonstrates the mechanistic pathway from FOH to FSH. The 2-(7,10-diphenylfluoranthen-8yl)ethanethiol with 1,3-dinitrobenzene adduct (FSH.DNB) was developed as shown in Scheme S2 (ESI†) and their analytical characterization is represented in Fig. S10–S12 (ESI†). 2.1.1 Synthesis of 2-(7,10-diphenylfluoranthen-8-yl)ethanol (FOH). FOH was synthesized by condensing 7,9-diphenyl-8Hcyclopenta[a]acenaphthylen-8-one (3) (0.5 g, 1.4 mmol) and 3-butynol (4) (0.15 g, 2.8 mmol) using diphenyl ether solvent medium in a sealed tube at 225 1C for 26 h. The reaction mixture was isolated by column chromatography using a 20% ethyl acetate/hexane solvent ratio. A pale orange-yellow solid (73% yield) was obtained. 1 H NMR (400 MHz, CDCl 3 )d7.76– 7.68 (m, 4H), 7.65–7.54 (m, 6H), 7.50–7.45 (m, 2H), 7.40–7.34 (m, 1H), 7.29 (ddd, J= 9.1, 7.6, 3.7 Hz, 3H), 6.44 (d, J= 7.0 Hz, 1H), 3.79 (t, J= 7.0 Hz, 2H), 2.86 (t, J= 6.9 Hz, 2H). 13 C NMR (100 MHz, CDCl 3 )d140.70, 139.27, 138.29, 137.89, 137.41, 136.41, 135.87, 135.55, 134.78, 132.75, 130.36, 129.55, 129.25, 129.01, 128.96, 128.51, 127.66, 127.48, 127.40, 126.42, 126.35, 122.98, 122.61, 77.23, 76.91, 76.60, 63.31, 36.09. HR-MS: 399.1794 [M + 1] + . 2.1.2 Synthesis of 2-(7,10-diphenylfluoranthen-8-yl)ethanethiol (FSH). In a 25 mL round bottom flask, FOH (250 mg, 0.628 mmol) was taken and solubilized in 5 mL of CH 2 Cl 2 under nitrogen gas. To this solution, 4-nitrobenzenesulfonyl chloride (695 mg, 3.14 mmol, 5 equiv.) and triethylamine (3 mL) in 30 mL of CH 2 Cl 2 were added dropwise at 0 1C for 30 min. The reaction mixture was brought to ambient temperature for 2 h under a nitrogen environment. During the progress of the reaction, the colour of the reaction mixture was changed from pale yellow-orange to intense yellow-orange. Further, the temperature of the reaction mixture was brought to 40 1C for 48 h. Afterward, the mixture was cooled to room temperature and washed with 1N HCl and brine solution. The solvents were dried over anhydrous Na 2 SO 4 , filtered, and evaporated under a vacuum. The residue was purified using column chromatography with 15% ethyl acetate/hexane as the eluent. A yellow solid (36% yield) was obtained. 1 H NMR (400 MHz, CDCl 3 )d7.74– 7.64 (m, 4H), 7.63–7.49 (m, 6H), 7.44 (d, J= 6.3 Hz, 2H), 7.35 (t, J= 7.6 Hz, 1H), 7.30–7.23 (m, 3H), 6.41 (d, J= 7.1 Hz, 1H), 3.61 (t, J= 7.7 Hz, 2H), 3.02 (t, J= 7.7 Hz, 2H). 13 C NMR (100 MHz, CDCl3) d140.54, 138.80, 138.23, 137.88, 137.09, 136.23, 135.71, 135.19, 135.12, 132.72, 130.37, 129.49, 129.07, 128.89, 128.48, 127.80, 127.67, 127.45, 127.37, 126.43, 122.97, 122.70, 77.16, 76.84, 76.53, 44.29, 36.10, 0.01. HR-MS: 413.2724 [M 1] + . 3. Results and discussion Scheme 1 describes the synthesis of fluoranthene analogues with alkyl chain units, such as alcohol and thiol, at the periphery. As shown in Scheme S1 (ESI†) the Knoevenagel condensation reaction was performed between acenaphthylene-1,2-dione (1) and diphenylacetone (2), resulting in the formation of 7,9-diphenyl-8H-cyclopenta[a]acenaphthylen-8one (3) with a 96% yield. Further, the Diels–Alder reaction was carried out between 3and 3-butynol (4) in a diphenyl ether medium at 225 1C to attain 2-(7,10-diphenylfluoranthen-8yl)ethanol (FOH) with a yield of 73%. The HRMS spectrum of FOH revealed a molecular ion peak at 399.1794 [M + 1] + , and NMR ( 1 H and 13 C) studies confirm in tandem that the expected molecule is the final product. In general, the primary alcohols must be changed into a suitable leaving group, such as mesylates, tosylates and nitrobenzene sulfonates, before they can be functionalized or substituted. Intriguingly, FSH was obtained by a single-step reaction using FOH in the presence of triethylamine with 4-nitrobenzenesulfonyl chloride. Initially, the 4nitrobenzenesulfonyl chloride was reacted with basic solvent triethylamine and FOH to produce 4-nitrobenzene sulfonate(I), as shown in Fig. S9, ESI.†Further, heating the reaction mixture yields products such as alkenes, 41 chlorides, 42 and pyridinium salts. 43 In this experiment, the 4-nitrobenzene sulfonate(I) was primarily transformed into a chloride, as demonstrated in II (Fig. S9, ESI†). Further, II undergoes 1,2 eliminations, resulting in an alkene product, as illustrated in III. We observed thiol functionalized product IV from alkene III, as depicted in Fig. S9, ESI.†The mechanistic pathway was uncertain for the transition of alkene to thiol functionalization. Furthermore, the HRMS spectrum exhibited a molecular ion peak at 413.2724 [M 1] + , and NMR ( 1 H and 13 C) studies confirm that the predicted FSH is the end product. Figs. S13a and b, ESI†show that the n(O–H) and aromatic n(CQC) stretched frequencies appear for FOH at 3305 and 1601 cm 1 , respectively, whereas FSH n(CQC) appears at 1602 cm 1 . However, functional Scheme 1 Synthetic route of FOH and FSH compounds. Materials Advances Paper Open Access Article. Published on 18 October 2023. Downloaded on 4/23/2024 5:27:20 AM. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. View Article Online 6262 | Mater. Adv., 2023, 4, 6259–6270 © 2023 The Author(s). Published by the Royal Society of Chemistry assemblies, such as O–H (702 cm 1 ) and S–H (700 cm 1 )in FOH and FSH, were evidently distinguished by the fingerprint area. Fig. S14 (ESI†) shows the melting temperature of FSH at 152 1C. FOH exhibits pale-brown crystals grown at ambient temperature using a combination of dichloromethane and methanol (90/10%, v/v) by applying a slow solvent evaporation method. Single crystal X-ray data (293 K) has been solved and refined in the monoclinic crystal system with space group P2 1 /n, and the unit cell parameters of a= 11.17078(8) Å, b= 20.07704(13) Å, and c= 19.46098(14) Å, with cell volume 4322.83(5) Å 3 ,Z= 8 (CCDC: 2179068) (Fig. 1a and Table S1, ESI†). In the crystal lattice, the molecules are stabilized by strong intra and intermolecular hydrogen bonding, such as O–HO (1.935 Å) and OO (3.348 Å) interactions (Fig. 1b). The C–OH (2.934 Å), aromatic C–HH (2.486 Å) as well the aromatic C–H aromatic p(2.950 Å) (Fig. S15a, ESI†) interactions are also relevant in contributing to the cohesive intermolecular forces in the crystal. The colourless single crystals of FSH were obtained from dimethyl sulfoxide (DMSO) via slow solvent evaporation. As shown in Fig. 1c, FSH single crystal was (169.8 K) refined in a monoclinic crystal phase system, space group of P2 1 /c, and unit cell parameters are a= 28.3784(2) Å, b= 9.76550(10) Å, and c= 23.8510(2) Å, with cell volume 6599.62(10) Å 3 with Z= 12 (CCDC: 2178647) (Fig. S15b and Table S1, ESI†). The supramolecular arrangement in the crystal lattice (Fig. 1d) was stabilized by intermolecular hydrogen bonding between C–SH–C (2.933 Å), SS (3.802 Å), CC aromatic (3.449 Å) and C–SC aromatic (3.517 Å) interactions and C–Hp(2.998 Å). FSH is stabilized by a ladder-type topology in the crystal packing in 2D with strong C–HC (2.971 Å) and C–H aromatic p(2.941 Å) interactions (Fig. S15b and Table S1, ESI†). Fig. 2a illustrates the optical absorption and emission analysis of FOH and FSH in THF and thin films deposited on quartz glass. In THF (Fig. 2a), both functional ensembles of fluoranthene exhibit two distinct characteristic absorption bands at 291 and 377 nm, respectively, primarily attributed to the p-p* transitions. In thin films, the bands are broadened with an increase in intensity with a bathochromic shift of B6 nm ascribed owing to p-p* transitions of weak selfassembled molecular aggregates of alkyl chains at the periphery. The optical band gaps are measured from the low-energy absorption bands, and the data are provided in Table 1. Based on the hetero atom substituents, the optical band gaps were observed to change slightly from a solution to a thin film (Fig. S16a–d, ESI†). The optical energy band gaps for FOH and FSH are 2.86 and 2.82 eV, respectively. Both fluorophores emit an intense blue emission at B450  3 nm with a Stoke’s shift of B79 3 nm in THF (Fig. 2b). Compared to FOH, the emission spectrum of FSH is slightly blue-shifted. Owing to the presence of thiol as a significant Fig. 1 Crystal structure (asymmetric units with 30% thermal ellipsoids) and its supramolecular packing arrangement in the crystal lattice of FOH (a and b) and FSH (c and d). Paper Materials Advances Open Access Article. Published on 18 October 2023. Downloaded on 4/23/2024 5:27:20 AM. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. View Article Online © 2023 The Author(s). Published by the Royal Society of Chemistry Mater. Adv., 2023, 4, 6259–6270 | 6263 functional effect, the relative emission intensity of FSH is observed to be higher. Table 1 outlines the photophysical characteristics of FOH and FSH. Fluorescence quantum yields (F)ofFOH and FSH are observed to be B30 and B61%, respectively. The fluorescence lifetimes of FOH and FSH in THF exhibit a single exponential decay with lifetimes of B26 and B24 ns, while in thin films, they exhibit a dual lifetime with average lifetimes of B10 and B12 ns, respectively, using the time-correlated single photon counting (TCSPC) technique (Fig. S17a and b, ESI†). Table S2, ESI,†summarizes the photophysical data of the derivatives in solution and thin films. NACs interact strongly with surrounding excited fluorescent species despite having a severe electron deficiency. Fluoranthene derivatives are attractive for studying the detection of an incendiary nitro analyte by applying the fluorescence quenching method owing to their great stabilization and electron-rich surroundings. Both fluoranthene materials were investigated with various analytes, such as TNP, 2,4-dinitrophenol (DNP), 4-nitrophenol (NP), 3-nitrotoluene (3-NT), nitrobenzene (NB) and nitromethane (NM). Fluorescence titration studies of the fluoranthene derivatives (1 mM) were conducted upon the gradual inclusion of different NACs (1 mM) at varying concentrations, and the changes in the emission spectra were measured. It was found that the intensity of the fluorescence reduced gradually upon the progressive addition, owing to the electron transfer process that occurred amid the fluoranthene and nitro analytes. Fig. 3a demonstrates the quenching efficiency of FOH and FSH fluorophores treated with various nitro analytes. Further, compared with other analytes, such as DNP, NP and NB, it is evident that both fluorophores show superior sensitivity towards TNP and exhibit B78 7% quenching efficiency. The feeble intermolecular interactions and efficient attraction with TNP via intercalation may be identified to make FSH significantly more sensitive than FOH. 25 The quenching efficiency of FSH is B1.2 folds higher than that of FOH for TNP and DNP. The discrepancy in the quenching efficiency is mostly related to changes in the donor–acceptor interaction between the electron-deficient nature of the nitro analytes and the distinct functionality of fluoranthene. The trend indicates that quenching efficiency maintains the sequence of TNP 4DNP 4NP 4NB B3NT 4NM (Fig. S18a– f, ESI†). Fig. 3b shows the progressive reduction in the emission Fig. 2 Absorption (20 mM) and emission (1 mM) spectra of FOH and FSH in (a) THF solution and (b) thin film. Table 1 Summary of the photophysical data of FOH and FSH Sample Absorption l abs (nm) Emission l em (nm) Stoke’s shift (nm) Lifetime (ns) Optical band gap (eV) Solution Thin film Solution Thin film Solution Thin film Solution Thin film FOH 291, 327, 371 296, 330, 377 453 461 82 84 24 3.02 2.86 FSH 291, 327, 371 296, 330, 378 447 463 76 85 15 3.04 2.82 Fig. 3 (a) Variation in the quenching efficiency of 1 mMofFOH and FSH treated with various nitrated analytes (500 mM) in THF. (b) Changes in the emission intensity of FSH (1 mM) upon treatment with various concentrations of TNP (500 mM) in THF. (c) Stern–Volmer plot of FSH (1 mM) was treated with 50 mM of various nitro analytes. (d) Interference study of FSH (1 mM) with TNP (500 mM) in the presence of other analytes (500 mM). Materials Advances Paper Open Access Article. Published on 18 October 2023. Downloaded on 4/23/2024 5:27:20 AM. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. View Article Online 6264 | Mater. Adv., 2023, 4, 6259–6270 © 2023 The Author(s). Published by the Royal Society of Chemistry intensity upon the incremental inclusion of TNP. The fluorescence response of FSH is entirely quenched. Further, the inset photograph shows visual turn-off fluorescence behaviour earlier and later inclusion of TNP to FSH, under UV light illumination at 365 nm. The fluorescence titration studies were accomplished to measure the sensing behaviour of 1 mMof FOH with various nitro analytes at different concentrations, as illustrated in Fig. S19a–g, ESI.†The reduction in emission intensity could represent an electron transfer mechanism based on static and dynamic quenching process. Fig. 3c shows the Stern–Volmer (K SV ) plot of FSH treated with various nitro analytes. The K SV values are determined according to our earlier report. 27 From the figure, it is clear that I 0 /Ivalues increase linearly as a function of concentration, indicating the predominance of the static quenching process. This suggests that the formation of a non-fluorescent ground state complex, which later returns to the ground state without emitting light, is responsible for the creation of static quenching. Summary of the K SV values of FSH and FOH are tabulated in Table S3, ESI.† The K SV values are invariant based on the type of nitro analytes and are found to be NM (7 10 2 M 1 ), NB (1.1 10 3 M 1 ), 3NT (1.4 10 3 M 1 ), NP (1.3 10 3 M 1 ), 1,3 DNB (3.1 10 3 M 1 ), DNP (5.5 10 3 M 1 ) and TNP (1.1 10 4 M 1 ). Fig. S20, ESI† shows the Stern–Volmer rate constants of FOH with various nitro analytes and are found to be NM (7 10 2 M 1 ), NB (1.3  10 3 M 1 ), 3NT (1.3 10 3 M 1 ), NP (1.7 10 3 M 1 ), 1,3 DNB (3.5 10 3 M 1 ), DNP (5.1 10 3 M 1 ) and TNP (1.0 10 4 M 1 ), respectively. Further, the LODs were determined by monitoring the fluorescence emission intensities of FSH with an increasing order of TNP concentrations, as illustrated in Fig. S21a, b and Table S4, ESI.†LOD = 3.3 s/m, where sis the standard deviation and mis the slope, was used to calculate the LODs with B97 ppm towards TNP. The reproducibility of the data was tested for three independent experiments to determine the error analysis. In most cases, the dispersion of error is found between 292, and the data were represented with an average standard deviation. The selective detection of analytes plays an essential role in real-world applications. Moreover, interference fluorescence quenching studies were conducted to explore the selectivity of FSH for detecting TNP in THF in the presence of other nitroanalytes. In a typical experiment, initially, the FSH emission spectrum was noted. Further, effective access interactions with FSH and NB (50 mM) solution were added to this solution, and the emission spectra were recorded. With the addition of NB, we did not notice any appreciable changes in fluorescence quenching. An identical quantity of TNP was included in this solution, and the quenching of fluorescence efficiency changed drastically. A similar procedure was carried out with varying concentration cycles of NB and TNP. We observed that as the TNP concentration increased, fluorescence quenching decreased significantly. The experiment was repeated with the inclusion of TNP solutions for various NACs, and the variation in quenching efficiency is demonstrated in Fig. 3d. The gradual decrease in quenching efficiency specifies FSH’s excellent selectivity to TNP in the presence of other interfering NACs in THF. To gain more insight to understand the molecular interactions of fluorophores with NACs, partial 1 H-NMR titration studies were carried out between FSH and TNP (Fig. 4). The inclusion of TNP to FSH by the mole relation from 0.25:1 to 1:3 detected substantial variations in the TNP-aromatic protons. Upon the addition of a 0.25 mole ratio of TNP to FSH, the singlet signal at d9.06 ppm corresponding to the TNP started to appear, and the intensity of the signal progressively upsurges with an increase in the concentration of TNP, showing the slow conversion of the singlet proton into a double peak with a downfield chemical shift of d0.04 ppm. This mainly arises owing to the interaction between the FSH and TNP. Further, the a-protons of the naphthalene unit of fluoranthene at d 7.67 ppm exhibit a significant interaction upon the addition of TNP. Initially, these protons resonated as multiplet and subsequently increased with the concentration of TNP (FSH : TNP, 1:1 mole ratio), and they were converted into a quartet towards the shielded regions, as demonstrated in Fig. 4. In the same manner, substituted phenyl protons and bproton of the naphthalene unit at d7.56 slightly shifted to the down-field upon the inclusion of TNP. With a further increase in the concentration of TNP, the signals further shifted towards the down-field. Concomitantly, the additional signals of phenyl ring protons showed feeble interactions. This is owing to the p–pintermolecular interactions between fluorophore and TNP, resulting in the adduct development of FSH with TNP. It is interesting to note that during the synthesis of FSH, efforts were made to recrystallize the compound using different solvent systems. The reaction mixture is recrystallized in chloroform:methanol medium. The FSH crystallized and good quality single crystals were obtained. Suitable crystals were isolated, single-crystal X-ray data were collected, and the structure was elucidated. Fig. 5a shows the crystal structure of the FSH adduct with 1,3-dinitro benzene (DNB). In the crystal lattice, FSH exhibits a ladder-type molecular packing arrangement, whereas the adduct form of FSH (FSH-adduct, CCDC: 2231960†) exhibits an M-type supramolecular framework (Fig. 5b). The structure reveals that DNB is stacked on the surface of the naphthalene ring and is mainly stabilized by p–pstacking distances of 3.473 and 3.449 Å with the P2 1 /cspace group, and intermolecular Fig. 4 Partial 1 H NMR (500 MHz) spectra of FSH upon the inclusion of different equivalents of TNP in CDCl 3 . Paper Materials Advances Open Access Article. Published on 18 October 2023. Downloaded on 4/23/2024 5:27:20 AM. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. View Article Online © 2023 The Author(s). Published by the Royal Society of Chemistry Mater. Adv., 2023, 4, 6259–6270 | 6265 hydrogen bonding is between N–HO (2.626 Å), C–SC (3.540 Å) and C–SH (3.087 Å), C–SO (4.286 Å). The aromatic C–HH (2.263 Å), apart from the methylene group, forms hydrogen bonding interactions with aromatic C–HH (2.912 Å) (Fig. S15c and Table S1, ESI†). Further, in the FSHDNB adduct, the sulphur atom demonstrates the bonding interaction with another molecule phenyl component of the fluoranthene unit with a distance of 3.427 Å. Further, the FSH.DNB adduct displays the S–H four splitting interaction with the phenyl unit of another molecule, fluoranthene. The fluoranthene unit at the position of C(14) displays bonding interaction with DNB situated at C2 with a distance of 3.322 Å. The DNB displays two hydrogen bonding interactions at the positions of N(1)–O(3) and N(1)–O(4) with the phenyl moiety of fluoranthene located at C(25)–H(25) and C(34)– H(34) along with distances of 2.602 and 2.702 Å, respectively. Furthermore, the HRMS spectra of the FSH-adduct exhibited the molecular ion peak 581.2500 [M H] + ,andtheNMR( 1 H, 13 C) investigation confirmed the desired molecular adduct. Based on the NMR and formation of molecular FSH.DNB adduct, a similar kind of molecular interaction occurs between FSH and TNP, resulting in an efficient molecular adduct formation furnishing its selective and sensitive detection. To further understand the mechanism of fluorescence quenching, fluorescence lifetime titration experiments were carried out to ascertain the excited state interactions of fluoranthene with nitro analytes. The fluorescence lifetime of FSH at varying concentrations of TNP solution was demonstrated to be invariant (Fig. 6 and Table S5, ESI†), suggesting the presence of a ground state complex between FSH and TNP in a static manner. At very high concentrations of TNP, dynamic behaviour was observed. The sensing process was investigated between probes and TNP by performing UV-Vis titration experiments, and its isotherms are shown in Fig. S22a–d (ESI†). In THF (Fig. S22a and c, ESI†), the probes FSH and FOH exhibit distinct characteristic absorption bands at 371 nm owing to the p-p* transitions. In addition to different concentrations of TNP (0–20 mM), the absorbance band at B371 nm is gradually increased owing to the strong interaction between fluorophore and TNP. Fig. S22b and d (ESI†) show the UV-Vis isotherm of fluorophore (20 mM) upon the addition of TNP, [TNP]: 0–20 mM. Furthermore, upon increasing the concentration of TNP, the absorbance band at 371 nm gradually increased in both fluorophores. Because each molecule exhibits identical absorption signatures and spectra fluctuations, it indicates that probable donor–acceptor complexes were formed amid p-electron rich fluoranthene ensembles and TNP. Similar absorption changes were observed with the addition of FOH to TNP. The lowest unoccupied molecular orbital (LUMO) levels of the NACs and the highest occupied molecular orbital (HOMO) levels of the luminogen showed critical roles in electron transfer-based fluorescence quenching. Consequently, the frontier molecular orbitals of the fluoranthene molecule were determined by calculation, and the results are illustrated in Fig. 7. Gaussian 09 software was used to optimise the geometry of FSH,FOH and TNP using the B3LYP/6-31g* basis sets. 40 HOMO orbitals of FSH have significantly delocalised on ethane thiol (of fluoranthene unit), while in FOH, it is localised on the fluoranthene. The LUMO orbitals appeared primarily on the fluorophore strand in both instances. Fluorescence fading includes the movement of electrons from the LUMO of the fluoranthene to the LUMO of the nitro analytes in their excited states. Detection limits are determined by the effectiveness of this progression, which can be amended by enhancing NAC–fluoranthene binding interactions and combining the frontier molecular orbital energies of the fluoranthene with the LUMO of the nitrated analytes. As reported in the literature, analyte–fluorophore interactions in which nitrated compounds penetrate the cavities generated by substituting the phenyl group of fluoranthene and are anchored by intense intermolecular Fig. 5 Crystal structure of FSH.DNB adduct (asymmetric units with 30% thermal ellipsoids) and (b) its supramolecular packing arrangement in the crystal lattice. Fig. 6 Fluorescence lifetime decay of FSH (10 mM) with various concentrations of (50, 250, 500 and 1000 mM) TNP. Materials Advances Paper Open Access Article. Published on 18 October 2023. Downloaded on 4/23/2024 5:27:20 AM. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. View Article Online 6266 | Mater. Adv., 2023, 4, 6259–6270 © 2023 The Author(s). Published by the Royal Society of Chemistry interactions and p–pinteractions. 25 Further, in our previous report, alkyl chain substitution on the peripheral position of fluoranthene plays a vital role in analyte–fluorophore binding interaction. 27 From energy level distribution, we could determine that the optical energy band gaps differ slightly depending on the nature of different functional groups present on the fluoranthene unit, ranging from 3.80 (thiol) to 3.76 eV (alcohol). The optical band gap of FOH is lower than that of FSH because of variations in functional groups. Moreover, the LUMO energy of FOH and FSH is near that of TNP, which may be the driving factor for electron transfer from fluorophore to nitrated analytes. To illustrate the real-time and field applicability of FSH and FOH, latent fingerprint fluorescence imaging was measured. Handprints are an essential type of physical documentation because fingerprints play a significant role in person identifiable information and thus are distinct and everlasting for everyone. The LFPs were generated (5 mg of FSH dissolved in 10 mL of acetonitrile) by pressing the left and right thumbs against four surfaces, including glass, tiles, aluminium and cellophane tape (Fig. 8a–d). The fluorescence images of the developed fingerprints after air-blowing on the solid of FSH appeared blue under UV illumination (365 nm) and demonstrated an extremely good distinction amid the fluorophore ridges and non-fluorescent furrows. To illustrate the versatility of the progress of LFPs, LFPs from three diverse persons (two females and one male) were studied. LFPs were recorded with three unique people (left and right thumb), two females (Fig. 8e–h) and one male (Fig. 8i and j) and were investigated to demonstrate the adaptability to produce LFPs. However, three individuals placed their left and right thumbs on the cellophane tape, allowing for the recording of the frequency of visually distinct fingerprints under prolonged UV irradiation at 365 nm. In general, three major variations in fingerprint identification were used to identify a person. As shown in Fig. 8k, the first-level characteristics of core information are utilised primarily for pattern identification. Further, the second-level features (minutia points such as ridge ending, island and bifurcation) are unique, stable and are extensively utilised to distinguish the fingerprint. The characteristics of type-2 identification were shown in Fig. 8k–p, and their photographs of the core (k), bifurcation (l), lake (m), island (n), ridge dot (o), and ridge end (p) indicate high-resolution photos. Furthermore, the type-3 features (sweat pores and ridge contours) are measured from the ridges that provide exact and consistent specifics for particular fingerprint detection. As shown in Fig. 8q, the sweat pore image of level 3 was magnified and demonstrated the identification of a person without any inconsistency, verifying real-time analysis. The above exemplifies the advantages of the current approach for the small organic molecule progress of LFPs. In addition, the significance of the on-site rapid detection of explosives was afforded by the visual variation in fluorescence intensity. As shown in Fig. 8(1a–f) and (2a–f), FSH (1) and FOH (2) were examined to analyze different concentrations of TNP (ranging from 10 1 Mto10 9 M). 5 mg of the FSH and 10 mL of 0.1 M of TNP were mixed and touched, followed by pressing in a cellophane tape and capturing the photograph. A similar procedure was performed for various concentrations of TNP, ranging from 10 3 Mto10 9 M with FSH. The image demonstrated with the 10 6 M concentration of the TNP with FSH shows the brightness of the fingerprint diminished (Fig. 8(1c)). However, upon treatment with a 10 6 M concentration of TNP with FOH, the core part of the fingerprint completely Fig. 7 HOMO and LUMO energy level diagrams of FSH,FOH, TNP and its adduct form of FSHTNP, FOHTNP obtained using B3LYP/6-31g* basis set in Gaussian 09. Fig. 8 LFPs of a right thumb created on various substrates, including glass, tiles, aluminium and cellophane tab, using FSH fluorophore (a)–(d). LFPs of the left and right thumbs of two females (e)–(h). LFPs of the left and right thumbs of one male (i) and (j). The latent fingerprint of the female left thumb is observed under long UV illumination (365 nm) to measure the type-2 particulars, such as (k) core, (l) bifurcation, (m) lake, (n) island, (o) ridge dot, (p) ridge ends and the type-3 details, (q) sweat pores. The image was established before and after the mixing of different concentrations of TNP with FSH (1a–f) and FOH (2a–f) molecules under the illumination of 365 nm light. Paper Materials Advances Open Access Article. Published on 18 October 2023. Downloaded on 4/23/2024 5:27:20 AM. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. View Article Online © 2023 The Author(s). Published by the Royal Society of Chemistry Mater. Adv., 2023, 4, 6259–6270 | 6267 disappeared with inconsistency (Fig. 8(2c)). Fig. 8(1f) and (2f) displays the fluorescence response of FSH and FOH with the treatment of 0.1 M concentrations of TNP at 365 nm illumination. Towards environmental drinking water pollution, the sensing response observed in drinking and river water trials spiked with TNP, and the variation in the emission behaviour was evaluated to determine the real-world application of FSH. The samples of drinkable water were taken from a single source point at SRMIST, and the samples of river water were taken from the banks of the Palar River in Chengalpattu, Tamil Nadu. We observed no substantial variations in emission spectra after introducing drinking water to FSH, demonstrating that intake water comprises no trace of TNP. Fig. S23a and b, ESI,† illustrates that the stock of TNP (0.1 mM) solution was created with river water and recorded emission spectra of FSH with the incremental additions of TNP. Upon the addition of 10 mM TNP, we observed B24% of fluorescence quenching efficiency. Further injection of 25 mM of TNP, resulted in a 54% quenching response of FSH. However, the detection limit of the real sample observed for FSH towards TNP is B76 ppm (Table S4, ESI†). Moreover, Table S6, ESI,†displays the successful analysis for the determination of TNP in real samples (river water) with 76–80% recovery. Further, towards real-time applicability, we carried out the fluorescence studies in H 2 O:THF, as shown in Fig. S23c and d, ESI.†The change was observed as a function of increasing the concentration of TNP with FSH and FOH. Increasing the concentration of TNP systematically decreases the emission intensity at B455 nm. The FSH in the THF : H 2 O (1:1 v/v) mixture (quenching efficiency = 95%) exhibits a higher response towards TNP detection than in the THF medium (quenching efficiency = 84%). Similarly, in the case of FOH, the detection of TNP is higher in the THF : H 2 O (1 : 1 v/v) mixture (quenching efficiency = 95%) than in the THF environment (quenching efficiency = 71%). Therefore, both fluorophores demonstrated sensing behaviour towards the detection of TNP in THF and THF:H 2 O mixtures to develop real-time applications. Furthermore, FSH and FOH were evaluated in relation to electron donating targets, such as toluene and xylene, as demonstrated in Fig. S24a–d, ESI.†It has been observed that FSH and FOH are more successful at detecting electron-withdrawing targets, such as TNP and DNP, than electron-donating analytes, such as toluene and xylene. However, in the presence of metal ions, such as Na + ,Fe 3+ ,Mn 2+ and Zn 2+ , our fluorophores are highly sensitive and selective for TNP detection (Fig. S25a and b, ESI†), making them an effective real-time sensor. The outcome of the research reveals that FSH exhibits good sensitivity to the identification of TNP, which renders this compound unique in practical analysis and onsite applications. Further, our fluorophores were tested on the model organism zebrafish to determine its real-time applicability. The zebrafish was choosen owing to their rapid growth, tiny stature, transparency and accessibility of use in behavioral experiments. The present investigation focused on the ability of zebrafish natural fluorescence to detect aquatic nitro analytes. To assess the developmental toxicity of FOH,FSH and TNP zebrafish embryos were tested following OECD fish embryo toxicity guidelines for 96 hours. 44 A range of concentrations, such as 10, 20, 40, 60, 80, and 100 mgmL 1 was used to obtain the median lethal concentration. Subsequently, the hatching rate of zebrafish embryos was also assessed from 48 h onwards until 96 h. In a separate set of experiments, 72 hpf zebrafish larvae were used to assess the fluorescence emitted by FSH, FOH and their quenching by TNP (Fig. 9a–d and Fig. S26a–d, ESI†). The lowest tested concentration of 10 mgmL 1 was chosen to study fluorescence activity on live zebrafish larvae. The fluorescence images were captured using Nikon Eclipse Ti2, New York, USA, along with their respective control images and analyzed through Image J software. Acute behavioural toxicity of FSH and FOH on adult zebrafish with a concentration of 10 mg L 1 to assess the swimming response, as demonstrated in Fig. S27a–c and S28a–c, ESI.†In addition, research on 4 hpf zebrafish embryos by the FOH and FSH demonstrates that they are less harmful. The percent mortality at the maximum concentration of 100 mgmL 1 exhibits 20–30% compared to control groups. However, a concentrationdependent delay in hatching was observed compared to the controls during the experiment. As shown in Fig. S26a and b, ESI,†we found that the fluorescence percentage increased by B13.78% compared to the DMSO control. After adding TNP to the 24 well plates containing the larvae already treated with FOH, the percentage reduction in fluorescence compared to the FOH control is found to be only 3.018% (Fig. S26c and d, ESI†). Moreover, in thecaseofFig.9a-b,theFSH percentage increase of fluorescence is 4.99% compared to DMSO-treated zebrafish larvae. After adding TNP to the 24 well plates containing the larvae treated with FSH, the percentage reduction in fluorescence compared to the FSH control is found to be only 3.014% (Fig. 9c and d, ESI†). Acute behavior of zebrafish exposed to FOH shows bottom dwelling, with no mirror biting, responding to sound and fearful like normal fish. However,inthecaseofFSH, mirror biting and bottom dwelling Fig. 9 FSH fluorescence quantification on 72 hpf zebrafish larvae: (a) water control, (b) DMSO and (c) FSH (d) FSH + TNP. Materials Advances Paper Open Access Article. Published on 18 October 2023. Downloaded on 4/23/2024 5:27:20 AM. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. View Article Online