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Coating of conducting and insulating threads with porous mof particles through langmuir-blodgett technique

Abstract

The Langmuir-Blodgett (LB) method is a well-known deposition technique for the fabrication of ordered monolayer and multilayer thin films of nanomaterials onto different substrates that plays a critical role in the development of functional devices for various applications. This paper describes detailed studies about the best coating configuration for nanoparticles of a porous metal-organic framework (MOF) onto both insulating or conductive threads and nylon fiber. We design and fabricate customized polymethylmethacrylate sheets (PMMA) holders to deposit MOF layers onto the threads or fiber using the LB technique. Two different orientations, namely, horizontal and vertical, are used to deposit MIL-96(Al) monolayer films onto five different types of threads and nylon fiber. These studies show that LB film formation strongly depends on deposition orientation and the type of threads or fiber. Among all the samples tested, cotton thread and nylon fiber with vertical deposition show more homogenous monolayer coverage. In the case of conductive threads, the MOF particles tend to aggregate between the conductive thread’s fibers instead of forming a continuous monolayer coating. Our results show a significant contribution in terms of MOF monolayer deposition onto single fiber and threads that will contribute to the fabrication of single fiber or thread-based devices in the future. Rauf, S.; Andrés, M.A.; Roubeau, O.; Gascón, I.; Serre, C.; Eddaoudi, M.; Salama, K.N.

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Coating of conducting and insulating threads with porous mof particles through langmuir-blodgett technique

Author: Rauf, S.; Gascón, I.; Roubeau, O.; Salama, K.N.; Eddaoudi, M.; Andrés, M.A.; Serre, C.
Year: 2021
DOI: 10.3390/nano11010160
Source: https://zaguan.unizar.es/record/99170/files/texto_completo.pdf
nanoma e ials
A icle
Coa ing o Conduc ing and Insula ing Th eads wi h Po ous
MOF Pa icles h ough Langmui -Blodge Technique
Sakanda Rau 1,† , Miguel A. And és2,3,† , Oli ie Roubeau 2, Ignacio Gascón2,3,* , Ch is ian Se e 4,
Mohamed Eddaoudi 5and Khaled N. Salama 1,*


Ci a ion: Rau , S.; And és, M.A.;
Roubeau, O.; Gascón, I.; Se e, C.;
Eddaoudi, M.; Salama, K.N. Coa ing
o Conduc ing and Insula ing
Th eads wi h Po ous MOF Pa icles
h ough Langmui -Blodge
Technique. Nanoma e ials 2021,11,
160. h ps://doi.o g/10.3390/
nano11010160
Recei ed: 4 Decembe 2020
Accep ed: 7 Janua y 2021
Published: 10 Janua y 2021
Publishe ’s No e: MDPI s ays neu-
al wi h ega d o ju isdic ional clai-
ms in published maps and ins i u io-
nal a ilia ions.
Copy igh : © 2021 by he au ho s. Li-
censee MDPI, Basel, Swi ze land.
This a icle is an open access a icle
dis ibu ed unde he e ms and con-
di 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/).
1Senso s Lab, Ad anced Memb anes & Po ous Ma e ials Cen e (AMPMC), Compu e , Elec ical,
and Ma hema ical Sciences and Enginee ing (CEMSE) Di ision, King Abdullah Uni e si y o Science and
Technology (KAUST), Thuwal 23955-6900, Saudi A abia; sakanda [email p o ec ed]
2Ins i u o de Nanociencia y Ma e iales de A agón (INMA), CSIC and Uni e sidad de Za agoza,
50009 Za agoza, Spain; mand es@uniza .es (M.A.A.); oubeau@uniza .es (O.R.)
3Depa amen o de Química Física, Uni e sidad de Za agoza, 50009 Za agoza, Spain
4
Ins i u des Ma é iaux Po eux de Pa is, FRE 2000 CNRS Ecole No male Supé ieu e de Pa is, Ecole Supé ieu e
de Physique e de Chimie Indus ielles de Pa is, PSL Resea ch Uni e si y, 75005 Pa is, F ance;
[email p o ec ed]
5Func ional Ma e ials Design, Disco e y & De elopmen Resea ch G oup (FMD3), Ad anced Memb anes &
Po ous Ma e ials Cen e , Di ision o Physical Sciences and Enginee ing, King Abdullah Uni e si y o Science
and Technology (KAUST), Thuwal 23955-6900, Saudi A abia; [email p o ec ed]
*Co espondence: igascon@uniza .es (I.G.); [email p o ec ed] (K.N.S.)
† These au ho s con ibu ed equally.
Abs ac :
The Langmui -Blodge (LB) me hod is a well-known deposi ion echnique o he ab i-
ca ion o o de ed monolaye and mul ilaye hin ilms o nanoma e ials on o di e en subs a es
ha plays a c i ical ole in he de elopmen o unc ional de ices o a ious applica ions. This
pape desc ibes de ailed s udies abou he bes coa ing con igu a ion o nanopa icles o a po ous
me al-o ganic amewo k (MOF) on o bo h insula ing o conduc i e h eads and nylon ibe . We
design and ab ica e cus omized polyme hylme hac yla e shee s (PMMA) holde s o deposi MOF
laye s on o he h eads o ibe using he LB echnique. Two di e en o ien a ions, namely, ho izon al
and e ical, a e used o deposi MIL-96(Al) monolaye ilms on o i e di e en ypes o h eads and
nylon ibe . These s udies show ha LB ilm o ma ion s ongly depends on deposi ion o ien a ion
and he ype o h eads o ibe . Among all he samples es ed, co on h ead and nylon ibe wi h
e ical deposi ion show mo e homogenous monolaye co e age. In he case o conduc i e h eads,
he MOF pa icles end o agg ega e be ween he conduc i e h ead’s ibe s ins ead o o ming a
con inuous monolaye coa ing. Ou esul s show a signi ican con ibu ion in e ms o MOF mono-
laye deposi ion on o single ibe and h eads ha will con ibu e o he ab ica ion o single ibe o
h ead-based de ices in he u u e.
Keywo ds:
me al-o ganic amewo k (MOF); MIL-96(Al); Langmui -Blodge (LB) ilms; ibe ; h ead;
conduc i e h ead; hin ilms; ex ile coa ings; unc ional ex iles
1. In oduc ion
The in e es o he scien i ic communi y in he p epa a ion, cha ac e iza ion, and
s udy o me al-o ganic amewo ks (MOFs) has con inuously g own du ing he las o y
yea s [
1
–
3
]. MOFs possess excep ional chemical e sa ili y and unable po osi y ha make
hem p omising ma e ials o a wide ange o applica ions [
4
], including, among o he s,
sepa a ion science [
5
–
8
], heal h [
9
–
11
], and he en i onmen [
12
]. The de elopmen o
many MOF applica ions ne e heless equi es he o ma ion o uni o m MOF hin ilms
on o app op ia e su aces [
13
–
16
]. In pa icula , he deposi ion o MOF hin coa ings on o
he su ace o ex iles is a challenging a ge ha has been sca cely explo ed. P e ious
s udies ha e shown ha i is possible o in eg a e MOF and ab ics and he use o mixed
Nanoma e ials 2021,11, 160. h ps://doi.o g/10.3390/nano11010160 h ps://www.mdpi.com/jou nal/nanoma e ials
Nanoma e ials 2021,11, 160 2 o 10
ma e ials in a a ie y o applica ions, such as de oxi ying il e s [
17
], p o ec ion agains
sola adia ion [
18
,
19
], and gas sensing [
20
]. Howe e , in gene al, complica ed p ocedu es
ha equi e mo e han wo s eps need o be used o ob ain he desi ed MOF/ ex ile
combina ions: ib oin p ocessing du ing se e al days, ollowed by elec ospinning and
cu ing [
17
]; ibe incuba ion a con olled empe a u e in o di e en solu ions du ing
se e al hou s ollowed by d ying and washing [
18
]; eac an s g inding ollowed by ho -
p essing, cleaning, and d ying [
19
]; ibe imme sion in o he eac ion mix u e, sonica ion,
hea ing a a con olled empe a u e, washing, and d ying [
20
]. Mo eo e , ollowing hese
p ocedu es, MOFs a e no loca ed speci ically on he su ace o he ibe s, bu also inside
hem, which is no always con enien o some applica ions and gene ally equi es he use
o la ge MOF amoun s.
In his con ex , he use o he Langmui -Blodge (LB) echnique [
21
,
22
] o MOF
nanopa icle (NP) deposi ion p esen s some signi ican ad an ages since homogeneous
and dense MOF monolaye s can be deposi ed on he su ace o di e en ma e ials wi hou
any p e- ea men o he subs a e, using only a minimal MOF amoun . P e ious s udies in
he li e a u e ha e deal wi h he deposi ion o colloidal NPs and me allic NPs on o di e en
subs a es using he LB echnique [
23
–
25
]. Recen ly, we ha e shown he ab ica ion o
monolaye ilms o NPs o MIL-101(C ) [
26
,
27
] and MIL-96(Al) [
28
–
30
], wi h sizes o ca.
50 and 200 nm espec i ely, on o subs a es o di e en na u e, including in e digi a ed
ex ile elec odes made o a sil e -coa ed conduc i e h ead on o di e en ab ics, and hei
use as a ex ile humidi y senso [
30
]. In his con ibu ion, we p esen a sys ema ic s udy
abou he di ec ab ica ion o monolaye s o MIL-96(Al) NPs on o di e en comme cially
a ailable ibe s and h eads o explo e wha kind o ex ile ab ics could be mo e sui able
o he de elopmen o MOF-coa ed ex iles. We demons a e ha i is possible o deposi
MOF LB ilms on o di e en ypes o ibe s o h eads, wi hou he need o a mo e o less
elabo a ed p e- ea men ha would modi y he ibe o h ead su ace o could imply
expensi e equipmen (e.g., plasma ea men ).
2. Ma e ials and Me hods
MIL-96(Al) nanopa icles o size ca. 200 nm we e ob ained ollowing a p ocedu e p e-
iously epo ed [
31
]. De ails on NPs cha ac e iza ion ha e al eady been epo ed by some
o us [
28
,
29
,
31
]. Fi e di e en conduc i e and non-conduc i e h eads and a nylon ibe
we e used in hese s udies o es he deposi ion o MIL-96(Al) NPs. The non-conduc i e
ibe and h eads used we e co on h ead (whi e colo , no b and), nylon ibe (in isible
h ead, 100% nylon om Hemline), and den al loss h ead (den al loss, O ex). Mo eo e ,
co on h ead ea ed wi h ace ic acid was also used in ou expe imen s, ollowing he
ea men p o ocol epo ed by Owyeung e al. [
32
]. Film deposi ion on conduc i e h eads
was pe o med on Kookye sil e conduc i e h ead (Kookye conduc i e h ead, esis ance
2
Ω
/ , Kookye
®
om Pine ee Elec onics L d., Canada), Libe a o 40 Vec an sil e -coa ed
conduc i e h ead (Libe a o 40
®
, esis ance 1
Ω
/ , Syscom Ad anced Ma e ials Inc., USA),
and BCP conduc i e sewing h ead (B and BCP, no esis ance in o ma ion). All o hese
h eads we e pu chased om Amazon USA and used as ecei ed. All he samples used in
hese s udies a e made ou o many single ibe s wis ed o bundled oge he o make a
h ead excep nylon ibe , as his is a single ibe . The e o e, we used he e minology nylon
ibe , and o all o he samples, we used he wo d h ead a he end o each ma e ial name.
The cus om-buil squa e holde s o anspa en polyme hylme hac yla e shee s (PMMA)
(Figu e 1) we e ab ica ed using a CO
2
lase (VLS 3.5 Desk op lase pla o m). These PMMA
holde s we e used o hold he ibe o h eads du ing he LB ilm deposi ion p ocess.
Nanoma e ials 2021,11, 160 3 o 10
Nanoma e ials 2021, 11, x FOR PEER REVIEW 3 o 10
Figu e 1. Schema ic depic ion and pho og aph o he se up used o Langmui -Blodge (LB) deposi ion in ho izon al (a)
and e ical (b) con igu a ions o he ibe o h eads. (c) Dimensions and pic u e o he holde showing e ical and
ho izon al g oo es o ixing he ibe o h eads.
LB ilms we e ab ica ed using a comme cially a ailable KSV-NIMA ough, model
2000-Sys em 3, wi h dimensions 775  ×  120 mm and a symme ical double-ba ie sys em.
Su ace p essu e was egis e ed by means o an elec obalance using he Wilhelmy pla e
me hod. P e ious s udies ha e shown ha dense and homogeneous MIL-96(Al)
monolaye s can be o med a he ai -wa e in e ace ollowing his p ocedu e (see mo e
de ails in p e ious publica ions) [28–30]: a e ough and wa e su ace cleaning, 8 mL o
a MOF dispe sion in chlo o o m (0.2 mg o MOF pe mL) p epa ed h ough p obe
ul asonica ion we e sp ead d op by d op using a Hamil on mic osy inge. Then, a e
sol en e apo a ion, Langmui ilms we e comp essed a 6 cm2/min o achie e he desi ed
ans e p essu e (30 mN/m).
LB ilms we e deposi ed on o samples using he cus om made PMMA holde s. Each
holde inco po a ed di e en ypes o ibe o h eads up o 3 samples (Figu e 1). These
holde s we e ini ially imme sed in he wa e and we e wi hd awn a 1 mm/min a e
eaching he a ge su ace p essu e (30 mN/m). All samples we e allowed o d y in he
ai o e nigh , and hen hey we e s o ed in a desicca o un il cha ac e iza ion was
pe o med. MOF deposi ion on o he ibe s was cha ac e ized using wo ield emission
scanning elec on mic oscope (FE-SEM) ins umen s: an FEI Quan a 3D FEG and an
Inspec F50 sys em, bo h ope a ed wi h an accele a ing ol age o 10 kV. A coa ing o 5
nm hickness o I o P was applied o he samples be o e SEM inspec ion. A leas h ee
di e en samples o each h ead o ibe and deposi ion o ien a ion we e analyzed.
Co e age analysis was pe o med using ImageJ so wa e.
Figu e 1.
Schema ic depic ion and pho og aph o he se up used o Langmui -Blodge (LB) deposi ion in ho izon al
(
a
) and e ical (
b
) con igu a ions o he ibe o h eads. (
c
) Dimensions and pic u e o he holde showing e ical and
ho izon al g oo es o ixing he ibe o h eads.
LB ilms we e ab ica ed using a comme cially a ailable KSV-NIMA ough, model
2000-Sys em 3, wi h dimensions 775
×
120 mm and a symme ical double-ba ie sys em.
Su ace p essu e was egis e ed by means o an elec obalance using he Wilhelmy pla e
me hod. P e ious s udies ha e shown ha dense and homogeneous MIL-96(Al) monolay-
e s can be o med a he ai -wa e in e ace ollowing his p ocedu e (see mo e de ails in
p e ious publica ions) [
28
–
30
]: a e ough and wa e su ace cleaning, 8 mL o a MOF
dispe sion in chlo o o m (0.2 mg o MOF pe mL) p epa ed h ough p obe ul asonica ion
we e sp ead d op by d op using a Hamil on mic osy inge. Then, a e sol en e apo a ion,
Langmui ilms we e comp essed a 6 cm
2
/min o achie e he desi ed ans e p essu e
(30 mN/m).
LB ilms we e deposi ed on o samples using he cus om made PMMA holde s. Each
holde inco po a ed di e en ypes o ibe o h eads up o 3 samples (Figu e 1). These
holde s we e ini ially imme sed in he wa e and we e wi hd awn a 1 mm/min a e
eaching he a ge su ace p essu e (30 mN/m). All samples we e allowed o d y in he ai
o e nigh , and hen hey we e s o ed in a desicca o un il cha ac e iza ion was pe o med.
MOF deposi ion on o he ibe s was cha ac e ized using wo ield emission scanning
elec on mic oscope (FE-SEM) ins umen s: an FEI Quan a 3D FEG and an Inspec F50
sys em, bo h ope a ed wi h an accele a ing ol age o 10 kV. A coa ing o 5 nm hickness o
I o P was applied o he samples be o e SEM inspec ion. A leas h ee di e en samples
o each h ead o ibe and deposi ion o ien a ion we e analyzed. Co e age analysis was
pe o med using ImageJ so wa e.
3. Resul s and Discussion
To allow an e ec i e deposi ion o MOF pa icles on o he ibe o h eads using he
LB me hod, he sample needs o be kep elonga ed du ing he ilm ans e . Fo his, he
Nanoma e ials 2021,11, 160 4 o 10
i s essen ial s ep was designing a cus om holde , shown in Figu e 1. MOF monolaye
ilms o 200 nm MIL-96(Al) pa icles wi h a homogeneous size we e hen deposi ed on o
nylon ibe (insula ing) and i e di e en ypes o h eads, namely wo insula ing (co on
h ead and den al loss h ead) and h ee conduc i e h eads (Kookye conduc i e h ead,
Libe a o 40 conduc i e h ead and BCP conduc i e h ead), all a 30 mN/m using he
LB me hod (see expe imen al sec ion). Two deposi ion o ien a ions, namely, ho izon al
and e ical deposi ion, we e used o he LB coa ing o MIL-96(Al) NPs on o he nylon
ibe and i e o he h eads. In he case o ho izon al deposi ion, he ibe o h eads we e
moun ed on o he ame in he ho izon al di ec ion, and in he case o e ical deposi ion,
he nylon ibe o h eads we e placed in a e ical di ec ion in e e ence o he wa e
su ace whe e he MOF dense monolaye was p e iously o med. The use o cus om made
holde s allows he co e age o mul iple samples in a single un, which is also an exci ing
ea u e o ou me hod in e ms o ge ing highe ou pu in one deposi ion cycle. LB ilms
deposi ed on o he samples we e cha ac e ized using scanning elec on mic oscopy (SEM).
In he case o non-conduc ing samples, single nylon ibe and wo h eads, namely,
co on h ead and den al loss h ead, we e used o LB ilm deposi ion. In he case o
co on h ead, he deposi ion was pe o med on bo h p is ine h eads and h eads ea ed
wi h ace ic acid (Figu e 2). The la e is a common p ocedu e o chemical pu i ica ion o
cellulose [
33
,
34
], ei he in c ude o m o p ocessed as ibe s. The e ec o ace ic acid is he
hyd olysis o he non-c ys alline egions o he cellulose [
35
], and we expec ed a possible
inc ease in he in e ac ion be ween he co on h ead and he MOF pa icles. We ollowed
he p o ocol op imized by Owyeung e al. whe e hey used comme cial co on h ead like
in ou case, and hey epo ed ha ace ic acid ea men inc eased he in e ac ion o a dye
wi h he co on h ead by emo ing any wax o non-cellulosic coa ing on o he ibe s [
32
].
Figu e 2depic s he esul ing coa ings, as obse ed h ough SEM. Addi ional SEM images
can be ound in Supplemen a y Ma e ial, Figu e S1. A e he ace ic acid ea men , a sligh
inc ease in he diame e o he co on h ead was obse ed ( om 352
±
41
µ
m o 392
±
50
µ
m,
Table S1) which is due o he pa ial opening o he h ead ibe s, and hese esul s a e in
ag eemen wi h he p e iously epo ed s udies abou he co on h ead modi ica ion wi h
ace ic acid [32].
I can be seen ha o he p is ine co on h ead, e ical deposi ion o ien a ion gi es
he bes monolaye co e age o MIL-96(Al) (70–99%), he h ead being only pa ially coa ed
in he case o ho izon al deposi ion (60–80%). Howe e , e en o he mo e a o able e ical
con igu a ion, ull co e age o he h eads was no obse ed. On he con a y, in he case
o ace ic acid- ea ed co on h ead, he ho izon al deposi ion gi es much be e esul s
han he e ical deposi ion (89–94% s. 30–45%). This di e ence may be asc ibed o he
di e en in e ac ions unde lying each ans e ype. While ho izon al deposi ion simply
occu s by he emo al o ma e ial om he ai -wa e in e ace du ing h ead wi hd awal
om inside he wa e , e ical deposi ion implies he o ma ion o a conca e meniscus. The
ace ic acid ea men pa ially opens he h ead ibe s inc easing he inhomogenei y on he
su ace o he h ead and he o uosi y o indi idual ibe s. This inhomogenei y p obably
dis up s he ilm in he meniscus zone leading o a poo e in e ac ion and co e age. The
obse ed coa ing o ho izon al deposi ion is also signi ican ly be e han on p is ine co on
h ead, wi h a mo e homogenous and comple e co e age o he h ead. This can easonably
be asc ibed o he emo al o species po en ially p esen on he su ace o he co on h ead
h ough he ace ic acid p e- ea men . The e o e no only he su ace oughness bu also he
physical and chemical homogenei y play a key ole in he deposi ion o LB ilms o NPs.
Nanoma e ials 2021,11, 160 5 o 10
Nanoma e ials 2021, 11, x FOR PEER REVIEW 5 o 10
Figu e 2. Rep esen a i e SEM images o ho izon al and e ical deposi ion o me al-o ganic amewo k (MOF)
nanopa icles (NPs) on o p is ine co on h ead (le , a) and co on h ead ea ed wi h ace ic acid ( igh , b). F om op o
bo om, each column shows he inc eased magni ica ion o he h eads.
The deposi ion o MIL-96(Al) NPs on o he nylon ibe and den al loss h ead is
depic ed in Figu e 3. Addi ional SEM images a e included in Supplemen a y Ma e ial,
Figu e S2. We used a comme cially a ailable den al loss h ead, consis ing o a bundle o
nylon ibe s winded oge he , ha ing a wax coa ing. O e all, a good coa ing o he ibe s
is ob ained in all cases, o bo h nylon ibe and den al loss h ead, and using ei he
ho izon al o e ical deposi ions. The highes su ace co e age is ob ained on nylon ibe
using e ical deposi ion (84–97%), wi h a dense and mo e homogeneous coa ing han
ho izon al deposi ion (80–96%). This high co e age is achie ed wi hou he need o any
special p e- ea men , such as he plasma ea men o PMMA op ical ibe s p io o silica
NPs deposi ion epo ed by Kohou ek e al. [25]. Mo eo e , he nylon ibe diame e (126
 8.3 µm, Table S1, Supplemen a y Ma e ial) is signi ican ly smalle han he alue
epo ed o hose PMMA op ical ibe s (ca. 3 mm). Conce ning he homogenei y o he
MOF deposi s, almos no agg ega es a e obse ed in nylon ibe samples. SEM images in
Supplemen a y Ma e ial, Figu e S3 illus a e his monolaye cha ac e o he MOF coa ing.
On he o he hand, some unco e ed a eas, as well as some egions wi h mo e han one
laye o MOF NPs, can be obse ed in he case o den al loss h ead, he la e especially
when he e ical deposi ion was used. The e o e al hough a good coa ing can be ob ained
on den al loss h ead (66–94% and 70–75% o e ical and ho izon al ans e ), g ea e
ex en s o deposi ion a e achie able on single nylon ibe s. This could be asc ibed o ei he
o bo h he bundled na u e and he wax coa ing o den al loss h ead.
Figu e 2.
Rep esen a i e SEM images o ho izon al and e ical deposi ion o me al-o ganic ame-
wo k (MOF) nanopa icles (NPs) on o p is ine co on h ead (le ,
a
) and co on h ead ea ed
wi h ace ic acid ( igh ,
b
). F om op o bo om, each column shows he inc eased magni ica ion o
he h eads.
The deposi ion o MIL-96(Al) NPs on o he nylon ibe and den al loss h ead is
depic ed in Figu e 3. Addi ional SEM images a e included in Supplemen a y Ma e ial,
Figu e S2. We used a comme cially a ailable den al loss h ead, consis ing o a bundle
o nylon ibe s winded oge he , ha ing a wax coa ing. O e all, a good coa ing o he
ibe s is ob ained in all cases, o bo h nylon ibe and den al loss h ead, and using ei he
ho izon al o e ical deposi ions. The highes su ace co e age is ob ained on nylon
ibe using e ical deposi ion (84–97%), wi h a dense and mo e homogeneous coa ing
han ho izon al deposi ion (80–96%). This high co e age is achie ed wi hou he need o
any special p e- ea men , such as he plasma ea men o PMMA op ical ibe s p io o
silica NPs deposi ion epo ed by Kohou ek e al. [
25
]. Mo eo e , he nylon ibe diame e
(126
±
8.3
µ
m, Table S1, Supplemen a y Ma e ial) is signi ican ly smalle han he alue
epo ed o hose PMMA op ical ibe s (ca. 3 mm). Conce ning he homogenei y o he
MOF deposi s, almos no agg ega es a e obse ed in nylon ibe samples. SEM images in
Supplemen a y Ma e ial, Figu e S3 illus a e his monolaye cha ac e o he MOF coa ing.
On he o he hand, some unco e ed a eas, as well as some egions wi h mo e han one
laye o MOF NPs, can be obse ed in he case o den al loss h ead, he la e especially
when he e ical deposi ion was used. The e o e al hough a good coa ing can be ob ained
on den al loss h ead (66–94% and 70–75% o e ical and ho izon al ans e ), g ea e
ex en s o deposi ion a e achie able on single nylon ibe s. This could be asc ibed o ei he
o bo h he bundled na u e and he wax coa ing o den al loss h ead.

Nanoma e ials 2021,11, 160 6 o 10
Nanoma e ials 2021, 11, x FOR PEER REVIEW 6 o 10
Figu e 3. Rep esen a i e SEM images o ho izon al and e ical deposi ion o MOF NPs on o nylon ibe (le , a) and
den al loss h ead ( igh , b). F om op o bo om, each column shows inc eased magni ica ion.
Thus, among he non-conduc i e samples, bo h co on h ead and nylon ibe wi h
e ical deposi ion ga e simila esul s in e ms o homogenei y and ilm quali y, wi h
nylon ibe pe o ming he bes in co e age deg ee. The ac ha ace ic acid ea men o
co on h ead esul s in an imp o ed coa ing, while ha on nylon ibe is be e han on
den al loss h ead in which a wax su ace coa ing is p esen , may be associa ed wi h he
necessi y o clean he su ace o he h ead. To summa ize hese esul s, Table S1 in
Supplemen a y Ma e ial includes all he co e age alues o he non-conduc i e ibe and
h eads deduced om he analysis o SEM images.
To u he e alua e he applica ion o ou coa ing s a egy, we coa ed MIL-96(Al)
on o h ee di e en comme cially a ailable conduc i e h eads wi h di e en diame e s
(Table S2, Supplemen a y Ma e ial), again using ho izon al and e ical deposi ion
o ien a ions. Figu e 4 shows he SEM mic og aphs o he conduc i e h eads be o e and
a e he deposi ion o he MOF NPs laye . Addi ional SEM images a e included in
Supplemen a y Ma e ial, Figu e S4. I is impo an o no e ha hese conduc i e h eads
al eady ha e a coa ing o me al nanopa icles (Ag), esul ing in a ough su ace. In some
cases, i was no easy o clea ly dis inguish MOF NPs om he conduc i e coa ing. Fo
ha pu pose, back-sca e ed elec on de ec o (BSE) p o ed o be use ul (Supplemen a y
Ma e ial, Figu e S5), whe e MOF coa ed a eas appea ed as da ke zones in he images due
o he smalle a omic numbe o he me allic cen e (Al, Z = 13) in compa ison o he Ag
NPs (Z = 47).
The BCP conduc i e h ead showed he poo es deposi ion o MOF pa icles, wi h
only a ew small a eas co e ed in he ho izon al and e ical deposi ion. Mo eo e ,
esis ance showed an inc ease compa ed o he uncoa ed h ead ( om 500 Ω o 2000 Ω),
which can be easoned by a pa ial loss o he conduc i e coa ing du ing Langmui ilm
ab ica ion. None heless, he conduc i i y o Kookye and Libe a o 40 conduc i e h eads
emained unchanged a e MOF LB deposi ion (3.0 Ω o Kookye conduc i e h ead and
0.5 Ω o conduc i e h ead), which demons a es he po en ial applica ions o LB ilms
di ec ly deposi ed on o conduc i e h eads o applica ion in chemical senso s (e.g., as
Figu e 3.
Rep esen a i e SEM images o ho izon al and e ical deposi ion o MOF NPs on o nylon ibe (le ,
a
) and den al
loss h ead ( igh , b). F om op o bo om, each column shows inc eased magni ica ion.
Thus, among he non-conduc i e samples, bo h co on h ead and nylon ibe wi h
e ical deposi ion ga e simila esul s in e ms o homogenei y and ilm quali y, wi h
nylon ibe pe o ming he bes in co e age deg ee. The ac ha ace ic acid ea men
o co on h ead esul s in an imp o ed coa ing, while ha on nylon ibe is be e han
on den al loss h ead in which a wax su ace coa ing is p esen , may be associa ed wi h
he necessi y o clean he su ace o he h ead. To summa ize hese esul s, Table S1 in
Supplemen a y Ma e ial includes all he co e age alues o he non-conduc i e ibe and
h eads deduced om he analysis o SEM images.
To u he e alua e he applica ion o ou coa ing s a egy, we coa ed MIL-96(Al)
on o h ee di e en comme cially a ailable conduc i e h eads wi h di e en diame e s
(Table S2, Supplemen a y Ma e ial), again using ho izon al and e ical deposi ion o ien a-
ions. Figu e 4shows he SEM mic og aphs o he conduc i e h eads be o e and a e he
deposi ion o he MOF NPs laye . Addi ional SEM images a e included in Supplemen a y
Ma e ial, Figu e S4. I is impo an o no e ha hese conduc i e h eads al eady ha e a
coa ing o me al nanopa icles (Ag), esul ing in a ough su ace. In some cases, i was no
easy o clea ly dis inguish MOF NPs om he conduc i e coa ing. Fo ha pu pose, back-
sca e ed elec on de ec o (BSE) p o ed o be use ul (Supplemen a y Ma e ial, Figu e S5),
whe e MOF coa ed a eas appea ed as da ke zones in he images due o he smalle a omic
numbe o he me allic cen e (Al, Z = 13) in compa ison o he Ag NPs (Z = 47).
Nanoma e ials 2021,11, 160 7 o 10
Nanoma e ials 2021, 11, x FOR PEER REVIEW 7 o 10
in e digi a ed elec odes in ex ile senso s [30]). The Kookye conduc i e h ead also
showed a a he poo MOF pa icle deposi ion in bo h deposi ion o ien a ions, al hough
much be e han he BCP conduc i e h ead. Indeed, a eas co e ed wi h a con inuous
ilm o MOF pa icles can be obse ed bu sepa a ed by la ge a eas wi h no coa ing
p esen . A mo e e icien deposi ion o MOF NPs was ob ained in he case o Libe a o 40
conduc i e h ead, he ilms being mo e con inuous and homogeneous in heigh in he
e ical con igu a ion as compa ed o he ho izon al deposi ion. Howe e , e en in his
mo e a o able case, he deposi ion does no occu as a monolaye , as ob ained in he case
o non-conduc i e co on h ead and nylon ibe . The ed a ow in Figu e 4 highligh s ha
he MOF pa icles deposi p e e en ially a he ibe junc ions o he g oo es be ween he
small conduc i e ibe s inside he ibe bundle o he conduc i e h ead. Con a y o he
insula ing ibe and h eads, deposi ion on he conduc i e h eads esul s in a mul ilaye
coa ing wi h he MOF pa icles. The ini ial oughness o he conduc i e h eads is one o
he mos likely pa ame e s a he o igin o his. The bundle na u e o he conduc i e
h eads also plays a ole in hei ela i ely poo coa ing, bu since a easonable coa ing
was ob ained o he bundle o nylon ibe s in den al loss h ead, his is likely only
compa a i ely less ele an .
Figu e 4. SEM images o he h ee conduc i e h eads s udied, as indica ed, p io o deposi ion (le ), a e LB deposi ion
o MOF NPs in ho izon al (middle) and e ical ( igh ) con igu a ions. The ed and whi e a ows highligh he MOF NPs
deposi s.
Figu e 4.
SEM images o he h ee conduc i e h eads s udied, as indica ed, p io o deposi ion (
le
), a e LB deposi ion
o MOF NPs in ho izon al (
middle
) and e ical (
igh
) con igu a ions. The ed and whi e a ows highligh he MOF
NPs deposi s.
The BCP conduc i e h ead showed he poo es deposi ion o MOF pa icles, wi h only
a ew small a eas co e ed in he ho izon al and e ical deposi ion. Mo eo e , esis ance
showed an inc ease compa ed o he uncoa ed h ead ( om 500
Ω
o 2000
Ω
), which can
be easoned by a pa ial loss o he conduc i e coa ing du ing Langmui ilm ab ica ion.
None heless, he conduc i i y o Kookye and Libe a o 40 conduc i e h eads emained
unchanged a e MOF LB deposi ion (3.0
Ω
o Kookye conduc i e h ead and 0.5
Ω
o
conduc i e h ead), which demons a es he po en ial applica ions o LB ilms di ec ly
deposi ed on o conduc i e h eads o applica ion in chemical senso s (e.g., as in e digi a ed
elec odes in ex ile senso s [
30
]). The Kookye conduc i e h ead also showed a a he poo
MOF pa icle deposi ion in bo h deposi ion o ien a ions, al hough much be e han he
BCP conduc i e h ead. Indeed, a eas co e ed wi h a con inuous ilm o MOF pa icles
can be obse ed bu sepa a ed by la ge a eas wi h no coa ing p esen . A mo e e icien
deposi ion o MOF NPs was ob ained in he case o Libe a o 40 conduc i e h ead, he
ilms being mo e con inuous and homogeneous in heigh in he e ical con igu a ion
as compa ed o he ho izon al deposi ion. Howe e , e en in his mo e a o able case,
he deposi ion does no occu as a monolaye , as ob ained in he case o non-conduc i e
co on h ead and nylon ibe . The ed a ow in Figu e 4highligh s ha he MOF pa icles
deposi p e e en ially a he ibe junc ions o he g oo es be ween he small conduc i e
ibe s inside he ibe bundle o he conduc i e h ead. Con a y o he insula ing ibe
and h eads, deposi ion on he conduc i e h eads esul s in a mul ilaye coa ing wi h he
Nanoma e ials 2021,11, 160 8 o 10
MOF pa icles. The ini ial oughness o he conduc i e h eads is one o he mos likely
pa ame e s a he o igin o his. The bundle na u e o he conduc i e h eads also plays a
ole in hei ela i ely poo coa ing, bu since a easonable coa ing was ob ained o he
bundle o nylon ibe s in den al loss h ead, his is likely only compa a i ely less ele an .
4. Conclusions
This wo k epo s he di ec deposi ion o MOF LB ilms on o con en ional and
conduc i e h eads wi h diame e s below 1 mm and o di e en na u e, also using di e en
o ien a ions in he deposi ion p ocess. O e all, he deposi ion p ocess we epo does no
equi e any special p e- ea men o he samples and is ep oducible, ei he o he nylon
ibe o a ious h eads o each deposi ion ba ch o om deposi ion ba ch o deposi ion
ba ch. I has been demons a ed ha he chemical na u e, su ace oughness, and ype o
ibe o h ead, ei he single- ibe o bundles, as well as deposi ion o ien a ion all appea
o in luence he abili y o ob ain a monolaye coa ing o MOF pa icles. Mo eo e , in he
case o conduc i e h eads, he na u e o bo h ibe and conduc i e coa ing plays a key
ole in LB deposi ion o a oid he leaching o he me allic NPs by imme sion in o he
wa e subphase. The deposi ion o small amoun s o MOF NPs using he LB echnique
did no al e he h ead conduc i i y, which is essen ial o implemen ing hese h eads
in o elec onic de ices. Mo eo e , he MOF ilms we e no emo ed by bending he nylon
ibe o h eads. Fu he s udies o hese MOF LB coa ed ibe s will pa e he way o he
design o single- ibe o h ead-based de ices ha could be in eg a ed in o chemical o gas
senso s. Pa icula ly, ab asion esis ance and imme sion s abili y, among o he p ope ies,
would ha e o be add essed o he design o hese de ices.
Supplemen a y Ma e ials:
The ollowing a e a ailable online a h ps://www.mdpi.com/2079-499
1/11/1/160/s1, Figu e S1 o Figu e S5: Addi ional SEM images o ho izon al and e ical deposi ion,
Table S1: Diame e o nylon ibe , co on h ead and den al loss h ead and co e age (in %) ob ained
om SEM images, Table S2: Diame e o conduc i e h eads.
Au ho Con ibu ions:
The manusc ip was w i en h ough he con ibu ions o all au ho s. S.R. and
K.N.S. concei ed and discussed he idea o he p ojec . S.R. and M.A.A. designed he expe imen al
me hodology, conduc ed he SEM analysis and analyzed and discussed he esul s. C.S. p o ided
he MOF NPs. M.A.A. pe o med he hin ilm deposi ion expe imen s. K.N.S., M.E., I.G. and O.R.
acqui ed unding and supe ised he p ojec . S.R., I.G., O.R. and M.A.A. w o e and e ised he
manusc ip wi h he help o K.N.S., M.E. and C.S. All au ho s ha e ead and ag eed o he published
e sion o he manusc ip .
Funding:
We acknowledge he inancial suppo om King Abdullah Uni e si y o Science and
Technology (KAUST), Saudi A abia. K.N. Salama would like o acknowledge he unding om
AMPM cen e unde he CCF g an . We hank he KAUST Senso Ini ia i e and KAUST isi ing
s uden p og am o suppo ing his wo k. Also, he esea ch leading o hese esul s has ecei ed
unding om Spanish MINECO and FEDER (p ojec s MAT2016-78257-R and MAT2017-86826-R),
and he A agón Go e nmen (DGA) and FEDER ( esea ch g oup E31_17R).
Ins i u ional Re iew Boa d S a emen : No applicable.
In o med Consen S a emen : No applicable.
Da a A ailabili y S a emen : Da a is con ained wi hin he a icle o supplemen a y ma e ial.
Con lic s o In e es : The au ho s decla e no con lic o in e es .
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