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Finite element analysis of silver nanorods, spheres, ellipsoids and core-shell structures for hyperthermia treatment of cancer

Abstract

The finite element analysis technique was used to investigate the suitability of silver nanorods, spheres, ellipsoids and core-shell structures for the hyperthermia treatment of cancer. The temperature of the silver nanostructures was raised from 42 to 46 & DEG;C, in order to kill the cancerous cells. The time taken by the nanostructures to attain this temperature, with external source heating, was also estimated. The heat transfer module in COMSOL Multiphysics was used for the finite element analysis of hyperthermia, based on silver nanostructures. The thermal response of different shapes of silver nanostructures was evaluated by placing them inside the spherical domain of the tumor tissue. The proposed geometries were heated at different time intervals. Optimization of the geometries was performed to achieve the best treatment temperature. It was observed that silver nanorods quickly attain the desired temperature, as compared to other shapes. The silver nanorods achieved the highest temperature of 44.3 & DEG;C among all the analyzed geometries. Moreover, the central volume, used to identify the thermal response, was the maximum for the silver nano-ellipsoids. Thermal equilibrium in the treatment region was attained after 0.5 mu s of heating, which made these structures suitable for hyperthermia treatment.

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Finite element analysis of silver nanorods, spheres, ellipsoids and core-shell structures for hyperthermia treatment of cancer

Author: Daud, Muhammad Usama
Publisher: MDPI
Year: 2022
DOI: 10.3390/ma15051786
Source: https://dspace.vsb.cz/bitstreams/b9f5032a-09a3-46a4-8ad2-f13d26bf4029/download


Ci a ion: Daud, M.U.; Abbas, G.;
A zaal, M.; Naz, M.Y.; Fa ima, N.G.;
Ghu a , A.; I an, M.; Mahnashi,
M.H.; Legu ko, S.; Pe ˚u, J.; e al.
Fini e Elemen Analysis o Sil e
Nano ods, Sphe es, Ellipsoids and
Co e–Shell S uc u es o
Hype he mia T ea men o Cance .
Ma e ials 2022,15, 1786. h ps://
doi.o g/10.3390/ma15051786
Academic Edi o s: We onika
K uszelnicka and
And zej Tompo owski
Recei ed: 21 Decembe 2021
Accep ed: 21 Feb ua y 2022
Published: 26 Feb ua y 2022
Publishe ’s No e: MDPI s ays neu al
wi h ega d o ju isdic ional claims in
published maps and ins i u ional a il-
ia ions.
Copy igh : © 2022 by he au ho s.
Licensee MDPI, Basel, Swi ze land.
This a icle is an open access a icle
dis ibu ed unde he e ms and
condi ions o he C ea i e Commons
A ibu ion (CC BY) license (h ps://
c ea i ecommons.o g/licenses/by/
4.0/).
ma e ials
A icle
Fini e Elemen Analysis o Sil e Nano ods, Sphe es, Ellipsoids
and Co e–Shell S uc u es o Hype he mia T ea men
o Cance
Muhammad Usama Daud 1, Ghulam Abbas 1,*, Muhammad A zaal 1,*, Muhammad Yasin Naz 2,
Nazma Gohe Fa ima 1, Abdul Ghu a 1, Muhammad I an 3, Ma e H. Mahnashi 4, S anislaw Legu ko 5,
Jana Pe ˚u 6, Jiˇ íK a och íl6and Usama Muhammad Niazi 7
1Depa men o Physics, Faisalabad Campus, Riphah In e na ional Uni e si y, Faisalabad 44000, Pakis an;
[email p o ec ed] (M.U.D.); [email p o ec ed] (N.G.F.);
[email p o ec ed] (A.G.)
2Depa men o Physics, Uni e si y o Ag icul u e, Faisalabad 38040, Pakis an; [email p o ec ed]
3Elec ical Enginee ing Depa men , College o Enginee ing, Naj an Uni e si y, Naj an 61441, Saudi A abia;
[email p o ec ed]
4Depa men o Pha maceu ical Chemis y, College o Pha macy, Naj an Uni e si y,
Naj an 11001, Saudi A abia; [email p o ec ed]
5Facul y o Mechanical Enginee ing, Poznan Uni e si y o Technology, 60-965 Poznan, Poland;
s anislaw[email p o ec ed]
6Facul y o Mechanical Enginee ing, VSB—Technical Uni e si y o Os a a, Po uba,
708 00 Os a a, Czech Republic; [email p o ec ed] (J.P.); [email p o ec ed] (J.K.)
7Depa men o Mechanical Enginee ing Technology, Na ional Skills Uni e si y, Islamabad 44000, Pakis an;
[email p o ec ed]
*Co espondence: [email p o ec ed] (G.A.); [email p o ec ed] (M.A.)
Abs ac :
The ini e elemen analysis echnique was used o in es iga e he sui abili y o sil e
nano ods, sphe es, ellipsoids and co e–shell s uc u es o he hype he mia ea men o cance . The
empe a u e o he sil e nanos uc u es was aised om 42 o 46
◦
C, in o de o kill he cance ous
cells. The ime aken by he nanos uc u es o a ain his empe a u e, wi h ex e nal sou ce hea ing,
was also es ima ed. The hea ans e module in COMSOL Mul iphysics was used o he ini e
elemen analysis o hype he mia, based on sil e nanos uc u es. The he mal esponse o di e en
shapes o sil e nanos uc u es was e alua ed by placing hem inside he sphe ical domain o he
umo issue. The p oposed geome ies we e hea ed a di e en ime in e als. Op imiza ion o he
geome ies was pe o med o achie e he bes ea men empe a u e. I was obse ed ha sil e
nano ods quickly a ain he desi ed empe a u e, as compa ed o o he shapes. The sil e nano ods
achie ed he highes empe a u e o 44.3
◦
C among all he analyzed geome ies. Mo eo e , he cen al
olume, used o iden i y he he mal esponse, was he maximum o he sil e nano-ellipsoids.
The mal equilib ium in he ea men egion was a ained a e 0.5
µs
o hea ing, which made hese
s uc u es sui able o hype he mia ea men .
Keywo ds:
COMSOL Mul iphysics; hype he mia; su ace coa ing; ini e elemen analyses;
sil e nanos uc u es
1. In oduc ion
Cance is a mul i ac o ial illness p oduced by a complex combina ion o he edi a y and
en i onmen al a iables [
1
–
3
]. T ea ing cance is he mos challenging heal h issue in he
21s cen u y [
4
–
7
]. The cells o cance a e ound o agg essi ely in ade o he bodily egions.
These cells ei he o m a umo oge he , o can dissemina e o he blood s eam o lymph
sys em [
8
,
9
]. These cells can me as asize o o he o gans and de elop new umo s in places
a away om he ini ial illness si e. The abili y o cance cells o me as asize o o he a eas
o he body is de e mined by a a ie y o ac o s, including blood low and he ype o cance
Ma e ials 2022,15, 1786. h ps://doi.o g/10.3390/ma15051786 h ps://www.mdpi.com/jou nal/ma e ials
Ma e ials 2022,15, 1786 2 o 13
cells, and also he ini ial loca ion o he cance [
8
–
10
]. The subs an ial ad ancemen s in
cance esea ch ha e esul ed in a be e unde s anding o cance a he gene ic, molecula ,
and cellula le els, allowing o no el he apeu ic a ge s and p ocedu es [
11
]. Cance
ea men s include chemo he apy, su ge y and adia ion he apy [
12
,
13
]. Ano he way o
ea ing cance is by using hype he mia, which in ol es hea ing he umo egion wi hou
damaging he no mal cells [
14
]. Using hype he mia, he empe a u e a he umo loca ion
is aised o a ce ain le el o kill he cance cells [
15
]. The a ge ed umo si es mus a ain a
empe a u e in he ange o 42–46
◦
C o hype he mia o be he apeu ically e ec i e in
cance he apy [
16
]. P o ein dena u a ion occu s when cells a e exposed o his empe a u e
ange, esul ing in a high ac ion o co-agg ega ed dena u ed p o eins [
15
]. Fu he mo e, a
high empe a u e in luences he cellula s uc u e unc ion and al e s in acellula p ocesses,
ul ima ely leading o cance mo ali y [16,17], as illus a ed in Figu e 1.
Ma e ials 2022, 15, x FOR PEER REVIEW 2 o 14
umo s in places a away om he ini ial illness si e. The abili y o cance cells o me as-
asize o o he a eas o he body is de e mined by a a ie y o ac o s, including blood low
and he ype o cance cells, and also he ini ial loca ion o he cance [8–10]. The subs an-
ial ad ancemen s in cance esea ch ha e esul ed in a be e unde s anding o cance a
he gene ic, molecula , and cellula le els, allowing o no el he apeu ic a ge s and p o-
cedu es [11]. Cance ea men s include chemo he apy, su ge y and adia ion he apy
[12,13]. Ano he way o ea ing cance is by using hype he mia, which in ol es hea ing
he umo egion wi hou damaging he no mal cells [14]. Using hype he mia, he em-
pe a u e a he umo loca ion is aised o a ce ain le el o kill he cance cells [15]. The
a ge ed umo si es mus a ain a empe a u e in he ange o 42–46 °C o hype he mia
o be he apeu ically e ec i e in cance he apy [16]. P o ein dena u a ion occu s when
cells a e exposed o his empe a u e ange, esul ing in a high ac ion o co-agg ega ed
dena u ed p o eins [15]. Fu he mo e, a high empe a u e in luences he cellula s uc u e
unc ion and al e s in acellula p ocesses, ul ima ely leading o cance mo ali y [16,17],
as illus a ed in Figu e 1.
Figu e 1. Mechanism o hype he mia he apy o cance cells.
Figu e 2 shows he ollowing wo examples o hype he mia-media ed cance ea -
men : pho o he mal he apy (PTT) and magne ic hype he mia he apy (MHT) [18–21].
Insu icien blood low, nou ishmen and oxygen supply a e es ablished inside he blood
essels in he umo en i onmen , due o he apid empe a u e change in malignan cells;
howe e , umo s a e mo e esis an o empe a u e luc ua ions [18,19]. Hype he mia has
been used in cance he apy o imp o e he he apeu ic e ec i eness.
Whole-body hype he mia, local hype he mia and egional hype he mia a e all
possible h ough hype he mia he apy [7]. Whole-body hype he mia in ol es hea ing
h ough an ex e nal hea sou ce, such as mic owa es o adio equencies, which may
ha e unheal hy side e ec s because o non-selec i e hea ing h ough non-selec i e p o-
cess [21]. Regional hype he mia hea s a la ge a ea o cells, such as a body ca i y, a limb
o an o gan. The egional pe usion echnique, o he con inuous hype he mic pe i oneal
pe usion (CHPP) s a egy, can be used o apply egional hype he mia. D awing blood
om he pa ien ’s body, hea ing i , and hen pumping i back in o he damaged o gan
cons i u es he egional pe usion app oach. The CHPP echnique is used o ea pe i o-
neal cance s, including p ima y pe i oneal meso helioma and s omach cance [22]. I p e-
sen in small a eas, he cance cells a e killed by in oducing hea ca ie s (Fe, Co, Ni, Ag,
Au, e c.) in o he body. This is e e ed o as local body hype he mia, whe e nanopa icles
a e used as hea suscep o s [23].
Figu e 1. Mechanism o hype he mia he apy o cance cells.
Figu e 2shows he ollowing wo examples o hype he mia-media ed cance ea -
men : pho o he mal he apy (PTT) and magne ic hype he mia he apy (MHT) [
18
–
21
].
Insu icien blood low, nou ishmen and oxygen supply a e es ablished inside he blood
essels in he umo en i onmen , due o he apid empe a u e change in malignan cells;
howe e , umo s a e mo e esis an o empe a u e luc ua ions [
18
,
19
]. Hype he mia has
been used in cance he apy o imp o e he he apeu ic e ec i eness.
Whole-body hype he mia, local hype he mia and egional hype he mia a e all
possible h ough hype he mia he apy [
7
]. Whole-body hype he mia in ol es hea ing
h ough an ex e nal hea sou ce, such as mic owa es o adio equencies, which may ha e
unheal hy side e ec s because o non-selec i e hea ing h ough non-selec i e p ocess [
21
].
Regional hype he mia hea s a la ge a ea o cells, such as a body ca i y, a limb o an o gan.
The egional pe usion echnique, o he con inuous hype he mic pe i oneal pe usion
(CHPP) s a egy, can be used o apply egional hype he mia. D awing blood om he
pa ien ’s body, hea ing i , and hen pumping i back in o he damaged o gan cons i u es
he egional pe usion app oach. The CHPP echnique is used o ea pe i oneal cance s,
including p ima y pe i oneal meso helioma and s omach cance [
22
]. I p esen in small
a eas, he cance cells a e killed by in oducing hea ca ie s (Fe, Co, Ni, Ag, Au, e c.) in o
he body. This is e e ed o as local body hype he mia, whe e nanopa icles a e used as
hea suscep o s [23].
Ma e ials 2022,15, 1786 3 o 13
Ma e ials 2022, 15, x FOR PEER REVIEW 3 o 14
Figu e 2. Schema ic o hype he mia u ilizing nanopa icles: (a) pho o he mal ea men wi h lase
i adia ion o he cance si e, and (b) magne ic hype he mia he apy wi h magne ic ield exposu e
[21].
The nanopa icles (NPs) can be hea ed h ough high-in ensi y ocused ul asounds,
magne ic hype he mia, mic owa e/ adio equencies and plasmonic pho o- he mal he -
apy. The hea ing me hod is selec ed by conside ing he gi en condi ions. Since all hype -
he mia ea men echniques ha e d awbacks, he e is a need o de elop new cance
ea men app oaches ha a e mo e e ec i e and less ha m ul o he heal hy cells. When
a magne ic ield, in al e na ing mode, is applied o he NPs in magne ic hype he mia,
elec omagne ic ene gy is ans o med in o hea . The hea ing o NPs is possible due o
h ee mechanisms, namely, ic ional hea ing in an aniso opic magne ic pa icle, eddy
cu en s ha ha e high elec ical conduc i i y [24], and hys e esis [25]. The e ec s o eddy
cu en s a e gene ally negligible, due o he small size o NPs. The hea ing p ocess de-
pends upon he shape, na u e, size and he mal cha ac e is ics o he issue, and he e-
quency and magni ude o he magne ic ield.
In designing NPs o p ac ical use, he majo issue is he biocompa ibiliza ion and
unc ionaliza ion o he su ace coa ing ma e ials, along wi h he selec ion o a sui able
co e. Noble me als, long-chain o ganic ligands, ino ganic polyme s and o ganic polyme s
a e some examples o su ace coa ings. The impo ance o such coa ings is ha hese a e
used o ancho he unc ional g oups, o example, bioma ke s, pep ides and an ibodies.
These coa ings a e also used o p e en clus e ing o NPs, due o in e ac ions be ween
pa icles, which e en ually p o ides s abili y o he colloidal solu ions p epa ed wi h NPs.
Fu he mo e, hese coa ings enhance he biocompa ibili y o NPs o p e en ing he leak-
age o oxic ions om he magne ic co e in o he biological sys em [26,27].
Due o hei s ong magne ic cha ac e is ics, ou s anding biocompa ibili y and low
cos , magne ic i on oxide nanopa icles a e he mos ex ensi ely employed magne ic na-
noma e ials. I on oxide nanopa icles a e being esea ched o hei applica ions in a a-
ie y o ields, including biomedical, en i onmen al science, sensing, elec onic de ices
and ene gy s o age [28,29]. Se e al esea che g oups ha e epo ed he po en ial uses o
i on oxide nanopa icles in hype he mia. Table 1 p o ides a compa ison o pas s udies
on di e en nanos uc u ed ma e ials o he ea men o cance .
Figu e 2.
Schema ic o hype he mia u ilizing nanopa icles: (
a
) pho o he mal ea men wi h
lase i adia ion o he cance si e, and (
b
) magne ic hype he mia he apy wi h magne ic ield
exposu e [21].
The nanopa icles (NPs) can be hea ed h ough high-in ensi y ocused ul asounds,
magne ic hype he mia, mic owa e/ adio equencies and plasmonic pho o- he mal he -
apy. The hea ing me hod is selec ed by conside ing he gi en condi ions. Since all hy-
pe he mia ea men echniques ha e d awbacks, he e is a need o de elop new cance
ea men app oaches ha a e mo e e ec i e and less ha m ul o he heal hy cells. When
a magne ic ield, in al e na ing mode, is applied o he NPs in magne ic hype he mia,
elec omagne ic ene gy is ans o med in o hea . The hea ing o NPs is possible due o h ee
mechanisms, namely, ic ional hea ing in an aniso opic magne ic pa icle, eddy cu en s
ha ha e high elec ical conduc i i y [
24
], and hys e esis [
25
]. The e ec s o eddy cu en s
a e gene ally negligible, due o he small size o NPs. The hea ing p ocess depends upon
he shape, na u e, size and he mal cha ac e is ics o he issue, and he equency and
magni ude o he magne ic ield.
In designing NPs o p ac ical use, he majo issue is he biocompa ibiliza ion and
unc ionaliza ion o he su ace coa ing ma e ials, along wi h he selec ion o a sui able
co e. Noble me als, long-chain o ganic ligands, ino ganic polyme s and o ganic polyme s
a e some examples o su ace coa ings. The impo ance o such coa ings is ha hese a e
used o ancho he unc ional g oups, o example, bioma ke s, pep ides and an ibodies.
These coa ings a e also used o p e en clus e ing o NPs, due o in e ac ions be ween
pa icles, which e en ually p o ides s abili y o he colloidal solu ions p epa ed wi h NPs.
Fu he mo e, hese coa ings enhance he biocompa ibili y o NPs o p e en ing he leakage
o oxic ions om he magne ic co e in o he biological sys em [26,27].
Due o hei s ong magne ic cha ac e is ics, ou s anding biocompa ibili y and low
cos , magne ic i on oxide nanopa icles a e he mos ex ensi ely employed magne ic nano-
ma e ials. I on oxide nanopa icles a e being esea ched o hei applica ions in a a ie y o
ields, including biomedical, en i onmen al science, sensing, elec onic de ices and ene gy
s o age [
28
,
29
]. Se e al esea che g oups ha e epo ed he po en ial uses o i on oxide
nanopa icles in hype he mia. Table 1p o ides a compa ison o pas s udies on di e en
nanos uc u ed ma e ials o he ea men o cance .
Ma e ials 2022,15, 1786 4 o 13
Table 1.
A compa ison o he pas s udies u ilizing nanos uc u ed ma e ials o he ea men
o cance .
S udy Type Pa icle Type and Size Coa ing Resul s and D awbacks Re e ence
Magne ic
Hype he mia
(Expe imen al)
3–4 nm o Fe2O3Dex an
Pos - ea men umo de elopmen
is slowed.
Induces inad e en MF in il a ion.
Jo dan e al. (1997) [30]
Pho o- he mal
hype he mia
( heo e ical)
Silica nano shell o 20 nm
adius Au coa ed
Sui able o ob ain he mal egime.
The e is inconside a ion o he ole o
blood pe usion a e and
me abolic hea .
Domb o sky e al. (2011) [31]
Theo e ical model Fe3O4o 0.9 mm
The app op ia e dose o nanopa icles
o hype he mia.
The blood essels close o he umo
educe he empe a u e achie ed in he
issue, whe eas he e a e no la ge
blood essels a ound he umo .
Pa el M. e al. (2009) [32]
Theo e ical +
expe imen al Fe3O4o 10 nm
The highes achie able empe a u e
depends on su ace- o- olume a io.
I is possible o desc ibe
pa ien -speci ic models.
Hen ich F., Rahn H. and
Odenbachs. (2015)
[33]
Expe imen al
Pho o he mal
hype he mia
Lipos AuNPs o 5–8 nm Gold coa ed Hyb id NPs (biodeg adable)
o ea men .
Rengan e al. (2015)
[34]
Theo e ical Fe3O4o 18 nm
They ound ha s eady s able
empe a u e achie ed a e 200 s was
a he cen e o he umo .
The empe a u e cu e declines wi h
inc easing dis ance om he cen e a
di e en exposu e imes.
Wu, L., Cheng, J., Liu, W., &
Chen, X. (2015)
[35]
Sil e nanopa icles (AgNPs) s and ou among he me allic nanoma e ials because
o hei uses in heal h-ca e p oduc s, ex iles, consume p oduc s, medical de ices and
biosensing, due o hei unique physical and chemical cha ac e is ics. AgNPs show good
he mal, op ical and elec ical p ope ies and ac i i y agains ungus, bac e ia, and e en
i uses [
36
–
38
]. Recen ly, AgNPs ha e piqued he in e es o esea che s in nanomedicine,
since mul iple s udies ha e shown ha hese NPs can gene a e an i umo al e ec s in
in i o
and
in i o
umo models, po en ially bene i ing a a ie y o onco he apy modali ies
and diagnos ic ools [
25
–
28
]. In addi ion o an ibac e ial p ope ies, AgNPs ha e unique
cy o oxic e ec s agains mammalian cells, making sil e -based nanopa icles po en ially
use ul in umo ea men . The he apeu ic e icacy o AgNPs is based on hei dis inc
way o inducing cell dea h in mammalian cells. Despi e he physical and chemical ea u es,
such as size, shape and he e ogenei y o he capping ma e ial, hei mechanism o ac ion o
p omo e cance cell dea h is qui e de e minis ic [
39
]. AgNPs a e assembled in endosomes
a e being aken up by endocy osis- ela ed p ocesses, and he o ganelles a e subsequen ly
guided o unde go lysosomal usion. The lysosomal acidic en i onmen causes an inc ease
in he elease o sil e ions om AgNPs, which hen unbalances cellula homeos asis and
leads o apop o ic cell dea h, depending on he biological aspec o he a ge ed cell [40].
C ys alline and/o amo phous co e–shell s uc u es ha e dis inc p ope ies, along
wi h hei medical applica ions. The e is g adual deposi ion, acco ding o he S öbe
me hod, o small gold colloids on o he su ace o co es [
41
]. The gold nanopa icles hen
g ow in numbe and consolida e by o ming an isola ed island, o c ea e an impe ec ,
une en coa ing, which e en ually o ms a con inuous comple e shell ha su ounds he
co e. Wu e al. [
35
] conduc ed a heo e ical s udy on magne i e nanopa icles o analyze he
empe a u e dis ibu ion in he umo . They concluded ha he cons an empe a u e was
ob ained a e 200 s, which is a e y long ime. The mo i a ion behind ou wo k was o
achie e he desi ed empe a u e in a sho e ime pe iod, by using AgNPs. A compa a i e
s udy on he hea gene a ion, using a single sil e nanopa icle, nanosphe e, nano od and
Ma e ials 2022,15, 1786 5 o 13
nano-ellipsoid, was conduc ed in he epo ed wo k. The olume o hese shapes is se as
he ollowing:
Vsphe e ∼
=V od ∼
=Vellipsoid i
.
e
.,
Vsphe e =4
3π 3=
33510.32
nm3
,
Vellipsoid =
4
3πabc =
33401.41
nm3
,
V od =4
3π 2( +h)=
33324.96
nm3
. The he mal e ec o hea
p opaga ion in he umo cell, as well as he spa ial– empo al dis ibu ions o empe a u e
du ing he ea men , a e desc ibed in his model. Fu he mo e, he e ec o di e en
coa ing ma e ials, such as gold (Au) and polyme (PEG), is analyzed. The hickness o
he shell is disco e ed o be an essen ial componen ha in luences he he mal esponse
h ough he he mal cha ac e is ics o he ma e ials u ilized in he ea men sys em. Finally,
a ying quan i ies o NPs a e a ached o he co e su ace o simula e an incomple e coa ing
su ace. The hea ans e module in COMSOL Mul iphysics is used o simula e he hea ing
p ocess o he nanos uc u es, using ini e elemen simula ions [42].
2. Me hods
A 0.5
µm
sphe ical domain o issue enclosed he nanopa icle. COMSOL Mul iphysics
was used o iden i y he spa ial and empo al dis ibu ion o empe a u e in his domain.
The majo goal o his esea ch was o examine he he mal esponse o li ing issue when
he hea ing sou ce (sil e nanos uc u e) was o a ious o ms, i.e., nanosphe e, nano od,
nano-ellipsoid and complex co e–shell s uc u e.
Due o di e ences in he s uc u e and unc ion o issues, balancing he mal ene gy in
di e en biological issues is a di icul p ocess. Ene gy balancing is a ec ed by he ela i e
ele ance o a hea ans e echnique, he ele an ime scale o he deposi ed ene gy, and
changes in he bounda y and ini ial condi ions [
43
]. In o de o simula e he undamen al
ea u es o he he mal s a e o he o ganism (o i s componen s), as well as he impac s o
he bounda y and ini ial condi ions, simpli ying assump ions a e equen ly equi ed. The
applica ion o he ene gy conse a ion law o a con ol olume is ypically he i s s ep in
he design o such models.
Qgain =Qs o age +Qloss +W(1)
whe e
Qgain
is he hea gained by he issue,
Qs o age
is he hea s o ed in he issue,
Qloss
is
hea loss by conduc ion and
W
is wo k conduc ed by he issue. Hea loss by conduc ion o
hea exchange wi h lowing luids, as well as he wo k conduc ed by he issue, balance ou
he hea s o age. Hea gain and hea ene gy s o age due o hea gene a ed by uni issue
segmen q( , ) can be ep esen ed as an in eg al o e he con ol olume, as ollows:
Qgain =Zq( , )dV (2)
Qs o age =Zρc∂
∂ T( , )dV (3)
When no ine ia is p esen , he hea conduc ion p ocess is o en ep esen ed using he
Fou ie law o bio-hea ans e p oblems.
Qconduc ion =−k
∆L
A (T1−T2),T1>T2(4)
whe e
k
is he he mal conduc i i y o issue, wi h dimensions [W/m*K]. I is based on
he biological ma e ials’ mic oscopic s uc u es. The di e en ial o m o he conduc ion
componen o hea lux is as ollows:
qcond.=−k ∂
∂xT (x, )(5)
The con ec ion e m is exp essed as ollows:
qcon .=hTw−T luid(6)

Ma e ials 2022,15, 1786 6 o 13
whe e his known as he coe icien o hea ans e , and i depends upon luid eloci y. The
hea ans e due o luid low should con ibu e o blood pe usion and low dis ibu ion
in he biological issue, due o he di e si y o li ing s uc u es. The low is p opo ional o
he di e ence in a e y (Ta o Ta) and enous (T en) blood empe a u e.
qb=ωbρbcb(Ta −T en)(7)
I is possible ha blood lows ex emely slowly in capilla y beds o achie e pe ec he -
mal equilib ium wi h he issues. The e o e, he hea lux ela ed o pe usion
(Equa ion (7))
can be app oxima ed as ollows:
qb=ωbρbcb(Ta −T )(8)
Unde hese condi ions, he ans e o ene gy by he s eam o blood h oughou he
en i e olume is as ollows:
Qb=Zωbρbcb[Ta ( , )−T ( , )]dV (9)
E en hough i is commonly obse ed in model o mula ions, he esul o Equa ion (9)
is no uncondi ional; in la ge a e ies, i would be in alid, owing o in ense blood mixing.
By analyzing he a ious hea ansmission modes, i is possible o c ea e a he mal ene gy
balance by igno ing he wo k conduc ed by he issue ac oss an a bi a y olume elemen ,
as ollows:
Zρ c ∂
∂ T ( , )dV =Z−k ∇T ( , )dV +Zωbρbcb[Ta ( , )−T ( , )]dV +ZQm( , )dV (10)
We ob ain, in a one-dimensional scena io wi h a homogenously dis ibu ed sou ce o
me abolic hea , Qm.
ρ c ∂
∂ T (x, )=k ∂2
∂x2T (x, )+ωbρbcb[Ta ( , )−T ( , )] +Qm(11)
This is he mos common o m o he hea ans e equa ion o li ing o ganisms,
also known as he bio-hea ans e equa ion. Th ough scaling and dimensional analysis,
we seek o examine i s componen s and assump ions, which may al e depending on he
condi ions imposed by he modelled i em, as well as he con ibu ion o he anspo
mechanism in ol ed. The empe a u e dis ibu ion in he umo cell can be modeled using
he Fou ie hea equa ion, as ollows:
ρCp∂T
∂ +ρCpu.∇T+∇.q=Q+Qbio (12)
whe e,
q=−k∇T(13)
Qbio =ρbCp,bwb(Tb−T)+Qme (14)
which esul s in he ollowing:
δ zρCp∂T
∂ +∇.(−k∇T)=ρbCbωb(Tb−T)+Qme +Qex (15)
whe e
Cp
is issue-speci ic hea capaci y a cons an p essu e,
ρ
is issue densi y,
k
is cell
he mal conduc i i y,
ρb
is blood densi y, which is 1000
kg/m3
,
Cb
is speci ic hea o blood,
which is 4180
J/(kg ∗K)
,
ωb
is blood pe usion a e o alue 0.0064 1
/s
,
Tb
is a e ial blood
empe a u e, which is app oxima ely equal o co e body empe a u e, i.e., 37
°C
[
44
], Tis
he local empe a u e, and
Q=
10
16 W/m3
is hea dissipa ed by he nanopa icles in he
olume o he cell [
45
],
Qme =
5790
W/m3
o cance ous cells [
46
–
50
] and
Qex
is he hea
Ma e ials 2022,15, 1786 7 o 13
gene a ed by loss powe s. Ini ially, he empe a u e o he issue was aken as no mal o
he human body (Ti=37 °C). Ti( , 0)=T0i,∂Ti( ,0)
∂ =0, while i=1, 2.
The geome y, which consis ed o he issue and nanopa icle, was disc e ized on all
domains by ee e ahed al elemen s, as shown in Figu e 3. The e we e 60,246 meshing
domain elemen s a e meshing he geome y, while he elemen al size was chosen as ine .
The ollowing bounda y condi ions we e applied o comple e he p ocedu e:
1. The umo cell ecei es he hea lux om he pa icle in i s en i e y, i.e., con inui y.
2. The empe a u e o he ou e su ace o he issue is main ained a T=T0=37 °C.
Ma e ials 2022, 15, x FOR PEER REVIEW 7 o 14
whe e 𝐶 is issue-speci ic hea capaci y a cons an p essu e, 𝜌 is issue densi y, 𝑘 is
cell he mal conduc i i y, 𝜌 is blood densi y, which is 1000 kg/m, 𝐶 is speci ic hea
o blood, which is 4180 𝐽/(kg ∗ 𝐾), 𝜔 is blood pe usion a e o alue 0.0064 1/𝑠, 𝑇 is
a e ial blood empe a u e, which is app oxima ely equal o co e body empe a u e, i.e.,
37 ℃ [44], T is he local empe a u e, and 𝑄 =10 (W/m) is hea dissipa ed by he na-
nopa icles in he olume o he cell [45], 𝑄 =5790 W/m o cance ous cells [46–50]
and 𝑄 is he hea gene a ed by loss powe s. Ini ially, he empe a u e o he issue was
aken as no mal o he human body (𝑇=37 ℃). 𝑇(𝑟,0)=𝑇,(,)
 =0,while 𝑖=1,2.
The geome y, which consis ed o he issue and nanopa icle, was disc e ized on all
domains by ee e ahed al elemen s, as shown in Figu e 3. The e we e 60,246 meshing
domain elemen s a e meshing he geome y, while he elemen al size was chosen as
ine . The ollowing bounda y condi ions we e applied o comple e he p ocedu e:
1. The umo cell ecei es he hea lux om he pa icle in i s en i e y, i.e., con inui y.
2. The empe a u e o he ou e su ace o he issue is main ained a 𝑇=𝑇=37 ℃.
Figu e 3. The disc e ized geome y o issue and nanopa icle.
Sil e nanos uc u es o di e en shapes (sphe e, od and ellipsoid) we e analyzed,
as shown in Figu e 4. Fi s ly, he sphe ical o m o sil e , wi h a adius o 20 nm, was
analyzed. The olume o he pa icle was kep he same as he o he shapes by compu ing
he dimensions o he od and ellipsoid. Fo he nano od, he leng h o he cylinde was
aken as 𝐿 =73 nm, adius o he hemisphe ical caps 𝑅 =𝑅 =11 nm, and he di-
mensions o he ellipsoid we e aken as 12 −15 − 44.3 nm. To s udy he coa ing e ec ,
he hickness o he Au and PEG polyme coa ing was se as 5, 10, 20, 30 and 40 nm. The
co e–shell s uc u e, wi h a adius o 20 nm, was chosen o he pu pose o analyzing he
he mal e olu ion o he p oposed s uc u e. Th ee di e en coa ing su aces (one sphe -
ical and wo ellipsoidal) we e also simula ed on he sil e nanopa icle co e o compa e
he he mal esponses o he ellipsoidal and sphe ical su ace coa ings. A sil e nanopa -
icle, which p o ided a co e wi h a adius o 20 nm, was coa ed wi h gold. The simula ion
g ow h o gold nanopa icles on he co e o AgNP can be obse ed in Figu e 5. The he -
mal p ope ies o a ious ma e ials used in his wo k a e gi en in Table 2.
Figu e 3. The disc e ized geome y o issue and nanopa icle.
Sil e nanos uc u es o di e en shapes (sphe e, od and ellipsoid) we e analyzed,
as shown in Figu e 4. Fi s ly, he sphe ical o m o sil e , wi h a adius o 20 nm, was
analyzed. The olume o he pa icle was kep he same as he o he shapes by compu ing
he dimensions o he od and ellipsoid. Fo he nano od, he leng h o he cylinde was
aken as
Lcyl =
73
nm
, adius o he hemisphe ical caps
Rcyl =Rcap =
11
nm
, and he
dimensions o he ellipsoid we e aken as 12
−
15
−
44.3
nm
. To s udy he coa ing e ec ,
he hickness o he Au and PEG polyme coa ing was se as 5, 10, 20, 30 and 40 nm. The
co e–shell s uc u e, wi h a adius o 20 nm, was chosen o he pu pose o analyzing he
he mal e olu ion o he p oposed s uc u e. Th ee di e en coa ing su aces (one sphe ical
and wo ellipsoidal) we e also simula ed on he sil e nanopa icle co e o compa e he
he mal esponses o he ellipsoidal and sphe ical su ace coa ings. A sil e nanopa icle,
which p o ided a co e wi h a adius o 20 nm, was coa ed wi h gold. The simula ion
g ow h o gold nanopa icles on he co e o AgNP can be obse ed in Figu e 5. The he mal
p ope ies o a ious ma e ials used in his wo k a e gi en in Table 2.
Ma e ials 2022, 15, x FOR PEER REVIEW 8 o 14
Figu e 4. Di e en shapes used in simula ions: (a) nano-ellipsoid, (b) nano od and (c) nano-
sphe e.
Figu e 5. The co e–shell s uc u e simula ed in COMSOL Mul iphysics: (a) naked co e wi h adius
o 20 nm, wi h AgNPs wi h 4 nm adius a ached o he co e su ace, (b) co e (0 NP) and (c–e) 10, 40
and 70 nanopa icles a ached o co e, ( ) comple e shell (100 NPs).
Table 2. The mal esponse o sou ce ma e ials used in his wo k.
The mal
Conduc i i y
[W/m*k] Mass Densi y [kg/m3]
Speci ic Hea Ca-
paci y [J/kg*K]
Tissue [46] 0.512 1000 3800
Tumo [47] 71 21,500 132
Gold [48] 317 19,300 129
Sil e [49] 429 10,500 235
Polyme [48] 0.2 1000 1000
3. Resul s and Discussion
To in es iga e he po en ial use o sil e nanos uc u es, wi h di e en shapes, in hy-
pe he mia, a nano od, nano-ellipsoid and nanosphe e we e placed in a umo wi h a
sphe ical shape and a 500 nm adius. Thei hea ing e ec was simula ed o kill he umo
cells. The i s simula ion showed he maximum empe a u e o all geome ies in he is-
sue, when hea ed using an ex e nal sou ce. The hea ing o he nanopa icles caused he
empe a u e and he mal equilib ium o he umo al cell o change o e ime, as obse ed
in Figu e 6. The empe a u es a ained by using a ious simula ed o ms di e ed no ably.
The a ia ion in empe a u es can be explained by he di e ence in he p opo iona e su -
ace o each o m, gi en ha he he mal esponse is de e mined om he hea gene a ion
mul iplied by he olume and su ace (𝑄=10 (W/m). The maximum empe a u e, a -
ained using he nanosphe e, was 43 ℃. Simila ly, he nano-ellipsoid and nano od e-
sul ed in maximum a ainable empe a u es o 43.1 ℃ and 44.3 ℃, espec i ely. These
empe a u e alues we e aken om he cen e o he pa icles, which hen p opaga ed
in o he su ounding medium, as shown in Figu e 7. The he mal ield dis ibu ion o an
ellipse is la ge han ha o a sphe e o a od.
Figu e 4. Di e en shapes used in simula ions: (a) nano-ellipsoid, (b) nano od and (c) nano-sphe e.
Ma e ials 2022,15, 1786 8 o 13
Ma e ials 2022, 15, x FOR PEER REVIEW 8 o 14
Figu e 4. Di e en shapes used in simula ions: (a) nano-ellipsoid, (b) nano od and (c) nano-
sphe e.
Figu e 5. The co e–shell s uc u e simula ed in COMSOL Mul iphysics: (a) naked co e wi h adius
o 20 nm, wi h AgNPs wi h 4 nm adius a ached o he co e su ace, (b) co e (0 NP) and (c–e) 10, 40
and 70 nanopa icles a ached o co e, ( ) comple e shell (100 NPs).
Table 2. The mal esponse o sou ce ma e ials used in his wo k.
The mal
Conduc i i y
[W/m*k] Mass Densi y [kg/m3]
Speci ic Hea Ca-
paci y [J/kg*K]
Tissue [46] 0.512 1000 3800
Tumo [47] 71 21,500 132
Gold [48] 317 19,300 129
Sil e [49] 429 10,500 235
Polyme [48] 0.2 1000 1000
3. Resul s and Discussion
To in es iga e he po en ial use o sil e nanos uc u es, wi h di e en shapes, in hy-
pe he mia, a nano od, nano-ellipsoid and nanosphe e we e placed in a umo wi h a
sphe ical shape and a 500 nm adius. Thei hea ing e ec was simula ed o kill he umo
cells. The i s simula ion showed he maximum empe a u e o all geome ies in he is-
sue, when hea ed using an ex e nal sou ce. The hea ing o he nanopa icles caused he
empe a u e and he mal equilib ium o he umo al cell o change o e ime, as obse ed
in Figu e 6. The empe a u es a ained by using a ious simula ed o ms di e ed no ably.
The a ia ion in empe a u es can be explained by he di e ence in he p opo iona e su -
ace o each o m, gi en ha he he mal esponse is de e mined om he hea gene a ion
mul iplied by he olume and su ace (𝑄=10 (W/m). The maximum empe a u e, a -
ained using he nanosphe e, was 43 ℃. Simila ly, he nano-ellipsoid and nano od e-
sul ed in maximum a ainable empe a u es o 43.1 ℃ and 44.3 ℃, espec i ely. These
empe a u e alues we e aken om he cen e o he pa icles, which hen p opaga ed
in o he su ounding medium, as shown in Figu e 7. The he mal ield dis ibu ion o an
ellipse is la ge han ha o a sphe e o a od.
Figu e 5.
The co e–shell s uc u e simula ed in COMSOL Mul iphysics: (
a
) naked co e wi h adius o
20 nm, wi h AgNPs wi h 4 nm adius a ached o he co e su ace, (
b
) co e (0 NP) and (
c
–
e
) 10, 40 and
70 nanopa icles a ached o co e, ( ) comple e shell (100 NPs).
Table 2. The mal esponse o sou ce ma e ials used in his wo k.
The mal Conduc i i y
[W/m*k]
Mass Densi y
[kg/m3]
Speci ic Hea
Capaci y [J/kg*K]
Tissue [46] 0.512 1000 3800
Tumo [47] 71 21,500 132
Gold [48] 317 19,300 129
Sil e [49] 429 10,500 235
Polyme [48] 0.2 1000 1000
3. Resul s and Discussion
To in es iga e he po en ial use o sil e nanos uc u es, wi h di e en shapes, in
hype he mia, a nano od, nano-ellipsoid and nanosphe e we e placed in a umo wi h a
sphe ical shape and a 500 nm adius. Thei hea ing e ec was simula ed o kill he umo
cells. The i s simula ion showed he maximum empe a u e o all geome ies in he
issue, when hea ed using an ex e nal sou ce. The hea ing o he nanopa icles caused he
empe a u e and he mal equilib ium o he umo al cell o change o e ime, as obse ed in
Figu e 6. The empe a u es a ained by using a ious simula ed o ms di e ed no ably. The
a ia ion in empe a u es can be explained by he di e ence in he p opo iona e su ace
o each o m, gi en ha he he mal esponse is de e mined om he hea gene a ion
mul iplied by he olume and su ace (
Q=
10
8W/m2
. The maximum empe a u e,
a ained using he nanosphe e, was 43
°C
. Simila ly, he nano-ellipsoid and nano od
esul ed in maximum a ainable empe a u es o 43.1
°C
and 44.3
°C
, espec i ely. These
empe a u e alues we e aken om he cen e o he pa icles, which hen p opaga ed in o
he su ounding medium, as shown in Figu e 7. The he mal ield dis ibu ion o an ellipse
is la ge han ha o a sphe e o a od.
Ma e ials 2022, 15, x FOR PEER REVIEW 9 o 14
Figu e 6. 2D spa ial empe a u e dis ibu ions in umo al cell using (a) nano-ellipsoid, (b) nano od
and (c) nanosphe e. The empe a u e dis ibu ions we e ob ained a e 0.5 µm o hea ing.
A unc ional su ace is p o ided by he NPs coa ed wi h a ious ma e ials in hype -
he mia applica ions. The in luence o he coa ing su ace on he mal dissipa ion in he
su ounding medium was in es iga ed using simula ions. The sil e magne ic co e was
used as a hea sou ce, wi h a polyme - o gold-like shell. The he mal conduc i i y coe i-
cien s o he wo simula ed shell ma e ials esul ed in opposing hea dissipa ion e ec s
in ela ion o he shell hickness. The he mal conduc i i y o gold dec eased, while i
inc eased o he polyme .
Figu e 7. The ime-dependen and adial– empo al dis ibu ion o h ee di e en shapes: (a) em-
pe a u e e olu ion a he cen e o umo (x = 0) and (b) he adial dis ibu ion a e 3 µs o hea ing
p ocess.
The hype he mia p ocess can be ela ed o he unc ionali y o co e–shell s uc u es.
To achie e he maximum empe a u e, a sphe e, wi h a adius o 20 nm, was chosen o
he assigned nanopa icles. In his simula ion, he co e o AgNP was co e ed by he shell
o gold o PEG polyme , and hen he empe a u e induced by he co e was analyzed.
Di e en alues o shell hickness we e conside ed, and he e ec o he empe a u e in-
duced by he co e o he nanopa icle is gi en in Figu e 8. The empe a u e alls wi h an
inc ease in he hickness o he Au shell, and ises wi h an inc ease in he hickness o he
PEG polyme shell. As he he mal conduc i i y o gold is high, i apidly ans e s he
hea o i s su oundings. While he polyme , which has low he mal conduc i i y, p e-
se es mo e hea inside he pa icle, which esul s in a ise in empe a u e. The e ec and
in luence o he hea di ec ly depend on he conduc i i y. These indings clea ly show he
possibili y o con olling he empe a u e by changing he hickness o he shell. In
Figu e 6.
2D spa ial empe a u e dis ibu ions in umo al cell using (
a
) nano-ellipsoid, (
b
) nano od
and (c) nanosphe e. The empe a u e dis ibu ions we e ob ained a e 0.5 µm o hea ing.
Ma e ials 2022,15, 1786 9 o 13
A unc ional su ace is p o ided by he NPs coa ed wi h a ious ma e ials in hy-
pe he mia applica ions. The in luence o he coa ing su ace on he mal dissipa ion in
he su ounding medium was in es iga ed using simula ions. The sil e magne ic co e
was used as a hea sou ce, wi h a polyme - o gold-like shell. The he mal conduc i i y
coe icien s o he wo simula ed shell ma e ials esul ed in opposing hea dissipa ion
e ec s in ela ion o he shell hickness. The he mal conduc i i y o gold dec eased, while
i inc eased o he polyme .
Ma e ials 2022, 15, x FOR PEER REVIEW 9 o 14
Figu e 6. 2D spa ial empe a u e dis ibu ions in umo al cell using (a) nano-ellipsoid, (b) nano od
and (c) nanosphe e. The empe a u e dis ibu ions we e ob ained a e 0.5 µm o hea ing.
A unc ional su ace is p o ided by he NPs coa ed wi h a ious ma e ials in hype -
he mia applica ions. The in luence o he coa ing su ace on he mal dissipa ion in he
su ounding medium was in es iga ed using simula ions. The sil e magne ic co e was
used as a hea sou ce, wi h a polyme - o gold-like shell. The he mal conduc i i y coe i-
cien s o he wo simula ed shell ma e ials esul ed in opposing hea dissipa ion e ec s
in ela ion o he shell hickness. The he mal conduc i i y o gold dec eased, while i
inc eased o he polyme .
Figu e 7. The ime-dependen and adial– empo al dis ibu ion o h ee di e en shapes: (a) em-
pe a u e e olu ion a he cen e o umo (x = 0) and (b) he adial dis ibu ion a e 3 µs o hea ing
p ocess.
The hype he mia p ocess can be ela ed o he unc ionali y o co e–shell s uc u es.
To achie e he maximum empe a u e, a sphe e, wi h a adius o 20 nm, was chosen o
he assigned nanopa icles. In his simula ion, he co e o AgNP was co e ed by he shell
o gold o PEG polyme , and hen he empe a u e induced by he co e was analyzed.
Di e en alues o shell hickness we e conside ed, and he e ec o he empe a u e in-
duced by he co e o he nanopa icle is gi en in Figu e 8. The empe a u e alls wi h an
inc ease in he hickness o he Au shell, and ises wi h an inc ease in he hickness o he
PEG polyme shell. As he he mal conduc i i y o gold is high, i apidly ans e s he
hea o i s su oundings. While he polyme , which has low he mal conduc i i y, p e-
se es mo e hea inside he pa icle, which esul s in a ise in empe a u e. The e ec and
in luence o he hea di ec ly depend on he conduc i i y. These indings clea ly show he
possibili y o con olling he empe a u e by changing he hickness o he shell. In
Figu e 7.
The ime-dependen and adial– empo al dis ibu ion o h ee di e en shapes: (
a
) empe a-
u e e olu ion a he cen e o umo (x = 0) and (
b
) he adial dis ibu ion a e 3
µ
s o hea ing p ocess.
The hype he mia p ocess can be ela ed o he unc ionali y o co e–shell s uc u es.
To achie e he maximum empe a u e, a sphe e, wi h a adius o 20 nm, was chosen o
he assigned nanopa icles. In his simula ion, he co e o AgNP was co e ed by he shell
o gold o PEG polyme , and hen he empe a u e induced by he co e was analyzed.
Di e en alues o shell hickness we e conside ed, and he e ec o he empe a u e
induced by he co e o he nanopa icle is gi en in Figu e 8. The empe a u e alls wi h an
inc ease in he hickness o he Au shell, and ises wi h an inc ease in he hickness o he
PEG polyme shell. As he he mal conduc i i y o gold is high, i apidly ans e s he hea
o i s su oundings. While he polyme , which has low he mal conduc i i y, p ese es
mo e hea inside he pa icle, which esul s in a ise in empe a u e. The e ec and in luence
o he hea di ec ly depend on he conduc i i y. These indings clea ly show he possibili y
o con olling he empe a u e by changing he hickness o he shell. In addi ion, he
ma e ial and shell hickness de e mine he equi ed empe a u e o hype he mia, which
is dependen on he speci ic loca ion o use in he human body.
Ma e ials 2022, 15, x FOR PEER REVIEW 10 o 14
addi ion, he ma e ial and shell hickness de e mine he equi ed empe a u e o hype -
he mia, which is dependen on he speci ic loca ion o use in he human body.
Figu e 8. (a) The co e–shell s uc u e, (b) maximum empe a u e ob ained by coa ing o gold and
PEG polyme shell o hickness 5, 10, 20, 30 and 40 nm.
The shape o he coa ing su ace plays an impo an ole in he unc ionali y o
nanos uc u es. To s udy he e ec o he coa ing su ace, wo o ms o coa ing su aces,
namely, sphe ical (30 nm adius) and wo ellipsoids ( 𝑒𝑙𝑙𝑖𝑝𝑠𝑜𝑖𝑑:25−25−
43.2 nm,𝑒𝑙𝑙𝑖𝑝𝑠𝑜𝑖𝑑:22− 25 − 49 nm), we e conside ed. F om Figu e 9, i is clea ha he e
is no majo di e ence in he empe a u e o he coa ing su aces, which shows ha aniso -
opy o coa ing su aces is no impo an o he hype he mia p ocess, since gold nano-
pa icles g ow and o m an isola ed island, o c ea e an incomple e i egula coa ing,
which is hen ans o med in o a comple e shell o co e he co e. Fo his pu pose, small
AuNPs, wi h a 4 nm adius, we e a ached o he co e su ace o AgNPs, wi h a adius o
20 nm, which was hen embedded in o issue wi h a 0.5 µm adius. The olume co e age
a io o AuNPs, compa ed o he olume o he ull shell, was de e mined o desc ibe he
empe a u e p o ile o incomple ely co e ed nanopa icles wi h a ying amoun s o na-
nopa icles a ached, as shown in Figu e 10. I is obse ed ha he maximum empe a u e
a he cen e o he nanopa icle was 42.3 ℃ o he naked co e, while he e was a g adual
dec ease in empe a u e wi h an inc ease in he amoun o su ace coa ing. The minimum
empe a u e a he cen e o he nanopa icle was 39.9 ℃ when a comple e shell was
o med.
Figu e 9. Radial empe a u e dis ibu ions o di e en coa ed shapes.
Figu e 8.
(
a
) The co e–shell s uc u e, (
b
) maximum empe a u e ob ained by coa ing o gold and
PEG polyme shell o hickness 5, 10, 20, 30 and 40 nm.
The shape o he coa ing su ace plays an impo an ole in he unc ionali y o nanos-
uc u es. To s udy he e ec o he coa ing su ace, wo o ms o coa ing su aces, namely,
sphe ical (30 nm adius) and wo ellipsoids (
ellipsoid1
: 25
−
25
−
43.2
nm
,
ellipsoid2
: