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Manganese vacancy-confined single-atom Ag in cryptomelane nanorods for efficient Wacker oxidation of styrene derivatives

Single-atom catalysts provide a pathway to elucidate the nature of catalytically active sites. However, keeping them stabilized during operation proves to be challenging. Herein, we employ cryptomelane-type octahedral molecular sieve nanorods featuring abundant manganese vacancy defects as a support...

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Autores principales: Yang, Hongling, Zhang, Xun, Yu, Yi, Chen, Zheng, Liu, Qinggang, Li, Yang, Cheong, Weng-Chon, Qi, Dongdong, Zhuang, Zewen, Peng, Qing, Chen, Xin, Xiao, Hai, Chen, Chen, Li, Yadong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8098698/
https://www.ncbi.nlm.nih.gov/pubmed/33996006
http://dx.doi.org/10.1039/d1sc00700a
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author Yang, Hongling
Zhang, Xun
Yu, Yi
Chen, Zheng
Liu, Qinggang
Li, Yang
Cheong, Weng-Chon
Qi, Dongdong
Zhuang, Zewen
Peng, Qing
Chen, Xin
Xiao, Hai
Chen, Chen
Li, Yadong
author_facet Yang, Hongling
Zhang, Xun
Yu, Yi
Chen, Zheng
Liu, Qinggang
Li, Yang
Cheong, Weng-Chon
Qi, Dongdong
Zhuang, Zewen
Peng, Qing
Chen, Xin
Xiao, Hai
Chen, Chen
Li, Yadong
author_sort Yang, Hongling
collection PubMed
description Single-atom catalysts provide a pathway to elucidate the nature of catalytically active sites. However, keeping them stabilized during operation proves to be challenging. Herein, we employ cryptomelane-type octahedral molecular sieve nanorods featuring abundant manganese vacancy defects as a support, to periodically anchor single-atom Ag. The doped Ag atoms with tetrahedral coordination are found to locate at cation substitution sites rather than being supported on the catalyst surface, thus effectively tuning the electronic structure of adjacent manganese atoms. The resulting unique Ag–O–MnO(x) unit functions as the active site. Its turnover frequency reaches 1038 h(−1), one order of magnitude higher than for previously reported catalysts, with 90% selectivity for anti-Markovnikov phenylacetaldehyde. Mechanistic studies reveal that the activation of styrene on the ensemble site of Ag–O–MnO(x) is significantly promoted, which can accelerate the oxidation of styrene and, in particular, the rate-determining step of forming the epoxide intermediate. Such an extraordinary electronic promotion can be extended to other single-atom catalysts and paves the way for their practical applications.
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spelling pubmed-80986982021-05-13 Manganese vacancy-confined single-atom Ag in cryptomelane nanorods for efficient Wacker oxidation of styrene derivatives Yang, Hongling Zhang, Xun Yu, Yi Chen, Zheng Liu, Qinggang Li, Yang Cheong, Weng-Chon Qi, Dongdong Zhuang, Zewen Peng, Qing Chen, Xin Xiao, Hai Chen, Chen Li, Yadong Chem Sci Chemistry Single-atom catalysts provide a pathway to elucidate the nature of catalytically active sites. However, keeping them stabilized during operation proves to be challenging. Herein, we employ cryptomelane-type octahedral molecular sieve nanorods featuring abundant manganese vacancy defects as a support, to periodically anchor single-atom Ag. The doped Ag atoms with tetrahedral coordination are found to locate at cation substitution sites rather than being supported on the catalyst surface, thus effectively tuning the electronic structure of adjacent manganese atoms. The resulting unique Ag–O–MnO(x) unit functions as the active site. Its turnover frequency reaches 1038 h(−1), one order of magnitude higher than for previously reported catalysts, with 90% selectivity for anti-Markovnikov phenylacetaldehyde. Mechanistic studies reveal that the activation of styrene on the ensemble site of Ag–O–MnO(x) is significantly promoted, which can accelerate the oxidation of styrene and, in particular, the rate-determining step of forming the epoxide intermediate. Such an extraordinary electronic promotion can be extended to other single-atom catalysts and paves the way for their practical applications. The Royal Society of Chemistry 2021-03-16 /pmc/articles/PMC8098698/ /pubmed/33996006 http://dx.doi.org/10.1039/d1sc00700a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Yang, Hongling
Zhang, Xun
Yu, Yi
Chen, Zheng
Liu, Qinggang
Li, Yang
Cheong, Weng-Chon
Qi, Dongdong
Zhuang, Zewen
Peng, Qing
Chen, Xin
Xiao, Hai
Chen, Chen
Li, Yadong
Manganese vacancy-confined single-atom Ag in cryptomelane nanorods for efficient Wacker oxidation of styrene derivatives
title Manganese vacancy-confined single-atom Ag in cryptomelane nanorods for efficient Wacker oxidation of styrene derivatives
title_full Manganese vacancy-confined single-atom Ag in cryptomelane nanorods for efficient Wacker oxidation of styrene derivatives
title_fullStr Manganese vacancy-confined single-atom Ag in cryptomelane nanorods for efficient Wacker oxidation of styrene derivatives
title_full_unstemmed Manganese vacancy-confined single-atom Ag in cryptomelane nanorods for efficient Wacker oxidation of styrene derivatives
title_short Manganese vacancy-confined single-atom Ag in cryptomelane nanorods for efficient Wacker oxidation of styrene derivatives
title_sort manganese vacancy-confined single-atom ag in cryptomelane nanorods for efficient wacker oxidation of styrene derivatives
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8098698/
https://www.ncbi.nlm.nih.gov/pubmed/33996006
http://dx.doi.org/10.1039/d1sc00700a
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