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Custom-made holey graphene via scanning probe block co-polymer lithography

Oxidative chemical etching of metal nanoparticles (NPs) to produce holey graphene (hG) suffers from the presence of aggregated NPs on the graphene surface triggering heterogeneous etching rates and thereby producing irregular sized holes. To encounter such a challenge, we investigated the use of sca...

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Autores principales: Alsudir, Samar A., Fardous, Roa S., Alsoughayer, Shahla, Almalik, Abdulaziz M., Alsharaeh, Edreese H., Alhasan, Ali H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418674/
https://www.ncbi.nlm.nih.gov/pubmed/36133681
http://dx.doi.org/10.1039/d1na00769f
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author Alsudir, Samar A.
Fardous, Roa S.
Alsoughayer, Shahla
Almalik, Abdulaziz M.
Alsharaeh, Edreese H.
Alhasan, Ali H.
author_facet Alsudir, Samar A.
Fardous, Roa S.
Alsoughayer, Shahla
Almalik, Abdulaziz M.
Alsharaeh, Edreese H.
Alhasan, Ali H.
author_sort Alsudir, Samar A.
collection PubMed
description Oxidative chemical etching of metal nanoparticles (NPs) to produce holey graphene (hG) suffers from the presence of aggregated NPs on the graphene surface triggering heterogeneous etching rates and thereby producing irregular sized holes. To encounter such a challenge, we investigated the use of scanning probe block co-polymer lithography (SPBCL) to fabricate precisely positioned silver nanoparticles (AgNPs) on graphene surfaces with exquisite control over the NP size to prevent their aggregation and consequently produce uniformly distributed holes after oxidative chemical etching. SPBCL experiments were carried out via printing an ink suspension consisting of poly(ethylene oxide-b-2-vinylpyridine) and silver nitrate on a graphene surface in a selected pattern under controlled environmental and instrumental parameters followed by thermal annealing in a gaseous environment to fabricate AgNPs. Scanning electron microscopy revealed the uniform size distribution of AgNPs on the graphene surface with minimal to no aggregation. Four main sizes of AgNPs were obtained (37 ± 3, 45 ± 3, 54 ± 2, and 64 ± 3 nm) via controlling the printing force, z-piezo extension, and dwell time. Energy dispersive X-ray spectroscopy analysis validated the existence of elemental Ag on the graphene surface. Subsequent chemical etching of AgNPs using nitric acid (HNO(3)) with the aid of sonication and mechanical agitation produced holes of uniform size distribution generating hG. The obtained I(D)/I(G) ratios ≤ 0.96 measured by Raman spectroscopy were lower than those commonly reported for GO (I(D)/I(G) > 1), indicating the removal of more defective C atoms during the etching process to produce hG while preserving the remaining C atoms in ordered or crystalline structures. Indeed, SPBCL could be utilized to fabricate uniformly distributed AgNPs of controlled sizes on graphene surfaces to ultimately produce hG of uniform hole size distribution.
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spelling pubmed-94186742022-09-20 Custom-made holey graphene via scanning probe block co-polymer lithography Alsudir, Samar A. Fardous, Roa S. Alsoughayer, Shahla Almalik, Abdulaziz M. Alsharaeh, Edreese H. Alhasan, Ali H. Nanoscale Adv Chemistry Oxidative chemical etching of metal nanoparticles (NPs) to produce holey graphene (hG) suffers from the presence of aggregated NPs on the graphene surface triggering heterogeneous etching rates and thereby producing irregular sized holes. To encounter such a challenge, we investigated the use of scanning probe block co-polymer lithography (SPBCL) to fabricate precisely positioned silver nanoparticles (AgNPs) on graphene surfaces with exquisite control over the NP size to prevent their aggregation and consequently produce uniformly distributed holes after oxidative chemical etching. SPBCL experiments were carried out via printing an ink suspension consisting of poly(ethylene oxide-b-2-vinylpyridine) and silver nitrate on a graphene surface in a selected pattern under controlled environmental and instrumental parameters followed by thermal annealing in a gaseous environment to fabricate AgNPs. Scanning electron microscopy revealed the uniform size distribution of AgNPs on the graphene surface with minimal to no aggregation. Four main sizes of AgNPs were obtained (37 ± 3, 45 ± 3, 54 ± 2, and 64 ± 3 nm) via controlling the printing force, z-piezo extension, and dwell time. Energy dispersive X-ray spectroscopy analysis validated the existence of elemental Ag on the graphene surface. Subsequent chemical etching of AgNPs using nitric acid (HNO(3)) with the aid of sonication and mechanical agitation produced holes of uniform size distribution generating hG. The obtained I(D)/I(G) ratios ≤ 0.96 measured by Raman spectroscopy were lower than those commonly reported for GO (I(D)/I(G) > 1), indicating the removal of more defective C atoms during the etching process to produce hG while preserving the remaining C atoms in ordered or crystalline structures. Indeed, SPBCL could be utilized to fabricate uniformly distributed AgNPs of controlled sizes on graphene surfaces to ultimately produce hG of uniform hole size distribution. RSC 2022-01-31 /pmc/articles/PMC9418674/ /pubmed/36133681 http://dx.doi.org/10.1039/d1na00769f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Alsudir, Samar A.
Fardous, Roa S.
Alsoughayer, Shahla
Almalik, Abdulaziz M.
Alsharaeh, Edreese H.
Alhasan, Ali H.
Custom-made holey graphene via scanning probe block co-polymer lithography
title Custom-made holey graphene via scanning probe block co-polymer lithography
title_full Custom-made holey graphene via scanning probe block co-polymer lithography
title_fullStr Custom-made holey graphene via scanning probe block co-polymer lithography
title_full_unstemmed Custom-made holey graphene via scanning probe block co-polymer lithography
title_short Custom-made holey graphene via scanning probe block co-polymer lithography
title_sort custom-made holey graphene via scanning probe block co-polymer lithography
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418674/
https://www.ncbi.nlm.nih.gov/pubmed/36133681
http://dx.doi.org/10.1039/d1na00769f
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