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Isomerization-induced enhancement of luminescence in Au(28)(SR)(20) nanoclusters

Understanding the origin and structural basis of the photoluminescence (PL) phenomenon in thiolate-protected metal nanoclusters is of paramount importance for both fundamental science and practical applications. It remains a major challenge to correlate the PL properties with the atomic-level struct...

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Autores principales: Chen, Yuxiang, Zhou, Meng, Li, Qi, Gronlund, Harrison, Jin, Rongchao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163317/
https://www.ncbi.nlm.nih.gov/pubmed/34123088
http://dx.doi.org/10.1039/d0sc01270j
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author Chen, Yuxiang
Zhou, Meng
Li, Qi
Gronlund, Harrison
Jin, Rongchao
author_facet Chen, Yuxiang
Zhou, Meng
Li, Qi
Gronlund, Harrison
Jin, Rongchao
author_sort Chen, Yuxiang
collection PubMed
description Understanding the origin and structural basis of the photoluminescence (PL) phenomenon in thiolate-protected metal nanoclusters is of paramount importance for both fundamental science and practical applications. It remains a major challenge to correlate the PL properties with the atomic-level structure due to the complex interplay of the metal core (i.e. the inner kernel) and the exterior shell (i.e. surface Au(i)-thiolate staple motifs). Decoupling these two intertwined structural factors is critical in order to understand the PL origin. Herein, we utilize two Au(28)(SR)(20) nanoclusters with different –R groups, which possess the same core but different shell structures and thus provide an ideal system for the PL study. We discover that the Au(28)(CHT)(20) (CHT: cyclohexanethiolate) nanocluster exhibits a more than 15-fold higher PL quantum yield than the Au(28)(TBBT)(20) nanocluster (TBBT: p-tert-butylbenzenethiolate). Such an enhancement is found to originate from the different structural arrangement of the staple motifs in the shell, which modifies the electron relaxation dynamics in the inner core to different extents for the two nanoclusters. The emergence of a long PL lifetime component in the more emissive Au(28)(CHT)(20) nanocluster reveals that its PL is enhanced by suppressing the nonradiative pathway. The presence of long, interlocked staple motifs is further identified as a key structural parameter that favors the luminescence. Overall, this work offers structural insights into the PL origin in Au(28)(SR)(20) nanoclusters and provides some guidelines for designing luminescent metal nanoclusters for sensing and optoelectronic applications.
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spelling pubmed-81633172021-06-11 Isomerization-induced enhancement of luminescence in Au(28)(SR)(20) nanoclusters Chen, Yuxiang Zhou, Meng Li, Qi Gronlund, Harrison Jin, Rongchao Chem Sci Chemistry Understanding the origin and structural basis of the photoluminescence (PL) phenomenon in thiolate-protected metal nanoclusters is of paramount importance for both fundamental science and practical applications. It remains a major challenge to correlate the PL properties with the atomic-level structure due to the complex interplay of the metal core (i.e. the inner kernel) and the exterior shell (i.e. surface Au(i)-thiolate staple motifs). Decoupling these two intertwined structural factors is critical in order to understand the PL origin. Herein, we utilize two Au(28)(SR)(20) nanoclusters with different –R groups, which possess the same core but different shell structures and thus provide an ideal system for the PL study. We discover that the Au(28)(CHT)(20) (CHT: cyclohexanethiolate) nanocluster exhibits a more than 15-fold higher PL quantum yield than the Au(28)(TBBT)(20) nanocluster (TBBT: p-tert-butylbenzenethiolate). Such an enhancement is found to originate from the different structural arrangement of the staple motifs in the shell, which modifies the electron relaxation dynamics in the inner core to different extents for the two nanoclusters. The emergence of a long PL lifetime component in the more emissive Au(28)(CHT)(20) nanocluster reveals that its PL is enhanced by suppressing the nonradiative pathway. The presence of long, interlocked staple motifs is further identified as a key structural parameter that favors the luminescence. Overall, this work offers structural insights into the PL origin in Au(28)(SR)(20) nanoclusters and provides some guidelines for designing luminescent metal nanoclusters for sensing and optoelectronic applications. The Royal Society of Chemistry 2020-07-17 /pmc/articles/PMC8163317/ /pubmed/34123088 http://dx.doi.org/10.1039/d0sc01270j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chen, Yuxiang
Zhou, Meng
Li, Qi
Gronlund, Harrison
Jin, Rongchao
Isomerization-induced enhancement of luminescence in Au(28)(SR)(20) nanoclusters
title Isomerization-induced enhancement of luminescence in Au(28)(SR)(20) nanoclusters
title_full Isomerization-induced enhancement of luminescence in Au(28)(SR)(20) nanoclusters
title_fullStr Isomerization-induced enhancement of luminescence in Au(28)(SR)(20) nanoclusters
title_full_unstemmed Isomerization-induced enhancement of luminescence in Au(28)(SR)(20) nanoclusters
title_short Isomerization-induced enhancement of luminescence in Au(28)(SR)(20) nanoclusters
title_sort isomerization-induced enhancement of luminescence in au(28)(sr)(20) nanoclusters
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163317/
https://www.ncbi.nlm.nih.gov/pubmed/34123088
http://dx.doi.org/10.1039/d0sc01270j
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