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Chemically modified nanofoci unifying plasmonics and catalysis

A plasmonic nanofocus, often in the form of a nanogap, is capable of concentrating light in a nanometric volume. The greatly enhanced electromagnetic field offers many opportunities in physics and chemistry. However, the lack of a method to fine-tune the chemical activities of the nanofocus has seve...

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Detalles Bibliográficos
Autores principales: Wang, Yueliang, Fang, Lingling, Gong, Ming, Deng, Zhaoxiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6582755/
https://www.ncbi.nlm.nih.gov/pubmed/31360398
http://dx.doi.org/10.1039/c9sc00403c
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author Wang, Yueliang
Fang, Lingling
Gong, Ming
Deng, Zhaoxiang
author_facet Wang, Yueliang
Fang, Lingling
Gong, Ming
Deng, Zhaoxiang
author_sort Wang, Yueliang
collection PubMed
description A plasmonic nanofocus, often in the form of a nanogap, is capable of concentrating light in a nanometric volume. The greatly enhanced electromagnetic field offers many opportunities in physics and chemistry. However, the lack of a method to fine-tune the chemical activities of the nanofocus has severely limited its application. Here we communicate an intriguing class of chemically modified nanofoci (CMNFs) that are able to address this challenge. Our results successfully demonstrate a possibility to functionalize the nanosized, mass-transport-restricted nanogap (nanofocus) of a dimeric gold nanoparticle assembly with homo-(Au) and heterogeneous (Ag, Pt, and Pd) materials. The as-produced structures with conductive Au and Ag junctions generate a novel form of charge transfer plasmon (CTP) with continuously tunable frequency covering the visible and near-infrared domains. In addition, the Ag materials can be displaced by catalytic Pt and Pd metals while still maintaining a tightly focused electromagnetic field. These hybrid structures with unified catalytic and plasmonic properties enable real-time, on-site probing of catalytic conversions at the nanofocus by plasmon-enhanced Raman scattering. The chemically/optically engineered CMNFs represent the simplest function-integrated nanodevices for plasmonics, sensing, and catalysis. Our work not only realizes chemical CTP reshaping, but also allows chemical functionalization into an intensified plasmonic near-field. The latter may enable unconventional chemical reactions driven by the catalytically functionalized, strongly boosted light field.
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spelling pubmed-65827552019-07-29 Chemically modified nanofoci unifying plasmonics and catalysis Wang, Yueliang Fang, Lingling Gong, Ming Deng, Zhaoxiang Chem Sci Chemistry A plasmonic nanofocus, often in the form of a nanogap, is capable of concentrating light in a nanometric volume. The greatly enhanced electromagnetic field offers many opportunities in physics and chemistry. However, the lack of a method to fine-tune the chemical activities of the nanofocus has severely limited its application. Here we communicate an intriguing class of chemically modified nanofoci (CMNFs) that are able to address this challenge. Our results successfully demonstrate a possibility to functionalize the nanosized, mass-transport-restricted nanogap (nanofocus) of a dimeric gold nanoparticle assembly with homo-(Au) and heterogeneous (Ag, Pt, and Pd) materials. The as-produced structures with conductive Au and Ag junctions generate a novel form of charge transfer plasmon (CTP) with continuously tunable frequency covering the visible and near-infrared domains. In addition, the Ag materials can be displaced by catalytic Pt and Pd metals while still maintaining a tightly focused electromagnetic field. These hybrid structures with unified catalytic and plasmonic properties enable real-time, on-site probing of catalytic conversions at the nanofocus by plasmon-enhanced Raman scattering. The chemically/optically engineered CMNFs represent the simplest function-integrated nanodevices for plasmonics, sensing, and catalysis. Our work not only realizes chemical CTP reshaping, but also allows chemical functionalization into an intensified plasmonic near-field. The latter may enable unconventional chemical reactions driven by the catalytically functionalized, strongly boosted light field. Royal Society of Chemistry 2019-05-06 /pmc/articles/PMC6582755/ /pubmed/31360398 http://dx.doi.org/10.1039/c9sc00403c Text en This journal is © The Royal Society of Chemistry 2019 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Wang, Yueliang
Fang, Lingling
Gong, Ming
Deng, Zhaoxiang
Chemically modified nanofoci unifying plasmonics and catalysis
title Chemically modified nanofoci unifying plasmonics and catalysis
title_full Chemically modified nanofoci unifying plasmonics and catalysis
title_fullStr Chemically modified nanofoci unifying plasmonics and catalysis
title_full_unstemmed Chemically modified nanofoci unifying plasmonics and catalysis
title_short Chemically modified nanofoci unifying plasmonics and catalysis
title_sort chemically modified nanofoci unifying plasmonics and catalysis
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6582755/
https://www.ncbi.nlm.nih.gov/pubmed/31360398
http://dx.doi.org/10.1039/c9sc00403c
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AT gongming chemicallymodifiednanofociunifyingplasmonicsandcatalysis
AT dengzhaoxiang chemicallymodifiednanofociunifyingplasmonicsandcatalysis