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Spontaneous generation of singlet oxygen on microemulsion-derived manganese oxides with rich oxygen vacancies for efficient aerobic oxidation

Developing innovative catalysts for efficiently activating O(2) into singlet oxygen ((1)O(2)) is a cutting-edge field with the potential to revolutionize green chemical synthesis. Despite its potential, practical implementation remains a significant challenge. In this study, we design a series of ni...

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Autores principales: Tang, Jun, Chen, Junbao, Zhang, Zhanyu, Ma, Qincheng, Hu, Xiaolong, Li, Peng, Liu, Zhiqiang, Cui, Peixin, Wan, Chao, Ke, Qingping, Fu, Lei, Kim, Jeonghun, Hamada, Takashi, Kang, Yunqing, Yamauchi, Yusuke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10685315/
https://www.ncbi.nlm.nih.gov/pubmed/38033900
http://dx.doi.org/10.1039/d3sc04418a
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author Tang, Jun
Chen, Junbao
Zhang, Zhanyu
Ma, Qincheng
Hu, Xiaolong
Li, Peng
Liu, Zhiqiang
Cui, Peixin
Wan, Chao
Ke, Qingping
Fu, Lei
Kim, Jeonghun
Hamada, Takashi
Kang, Yunqing
Yamauchi, Yusuke
author_facet Tang, Jun
Chen, Junbao
Zhang, Zhanyu
Ma, Qincheng
Hu, Xiaolong
Li, Peng
Liu, Zhiqiang
Cui, Peixin
Wan, Chao
Ke, Qingping
Fu, Lei
Kim, Jeonghun
Hamada, Takashi
Kang, Yunqing
Yamauchi, Yusuke
author_sort Tang, Jun
collection PubMed
description Developing innovative catalysts for efficiently activating O(2) into singlet oxygen ((1)O(2)) is a cutting-edge field with the potential to revolutionize green chemical synthesis. Despite its potential, practical implementation remains a significant challenge. In this study, we design a series of nitrogen (N)-doped manganese oxides (N(y)-MnO(2), where y represents the molar amount of the N precursor used) nanocatalysts using compartmentalized-microemulsion crystallization followed by post-calcination. These nanocatalysts demonstrate the remarkable ability to directly produce (1)O(2) at room temperature without the external fields. By strategically incorporating defect engineering and interstitial N, the concentration of surface oxygen atoms (O(s)) in the vicinity of oxygen vacancy (O(v)) reaches 51.1% for the N(55)-MnO(2) nanocatalyst. This feature allows the nanocatalyst to expose a substantial number of O(v) and interstitial N sites on the surface of N(55)-MnO(2), facilitating effective chemisorption and activation of O(2). Verified through electron paramagnetic resonance spectroscopy and reactive oxygen species trapping experiments, the spontaneous generation of (1)O(2), even in the absence of light, underscores its crucial role in aerobic oxidation. Density functional theory calculations reveal that an increased O(v) content and N doping significantly reduce the adsorption energy, thereby promoting chemisorption and excitation of O(2). Consequently, the optimized N(55)-MnO(2) nanocatalyst enables room-temperature aerobic oxidation of alcohols with a yield surpassing 99%, representing a 6.7-fold activity enhancement compared to ε-MnO(2) without N-doping. Furthermore, N(55)-MnO(2) demonstrates exceptional recyclability for the aerobic oxidative conversion of benzyl alcohol over ten cycles. This study introduces an approach to spontaneously activate O(2) for the green synthesis of fine chemicals.
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spelling pubmed-106853152023-11-30 Spontaneous generation of singlet oxygen on microemulsion-derived manganese oxides with rich oxygen vacancies for efficient aerobic oxidation Tang, Jun Chen, Junbao Zhang, Zhanyu Ma, Qincheng Hu, Xiaolong Li, Peng Liu, Zhiqiang Cui, Peixin Wan, Chao Ke, Qingping Fu, Lei Kim, Jeonghun Hamada, Takashi Kang, Yunqing Yamauchi, Yusuke Chem Sci Chemistry Developing innovative catalysts for efficiently activating O(2) into singlet oxygen ((1)O(2)) is a cutting-edge field with the potential to revolutionize green chemical synthesis. Despite its potential, practical implementation remains a significant challenge. In this study, we design a series of nitrogen (N)-doped manganese oxides (N(y)-MnO(2), where y represents the molar amount of the N precursor used) nanocatalysts using compartmentalized-microemulsion crystallization followed by post-calcination. These nanocatalysts demonstrate the remarkable ability to directly produce (1)O(2) at room temperature without the external fields. By strategically incorporating defect engineering and interstitial N, the concentration of surface oxygen atoms (O(s)) in the vicinity of oxygen vacancy (O(v)) reaches 51.1% for the N(55)-MnO(2) nanocatalyst. This feature allows the nanocatalyst to expose a substantial number of O(v) and interstitial N sites on the surface of N(55)-MnO(2), facilitating effective chemisorption and activation of O(2). Verified through electron paramagnetic resonance spectroscopy and reactive oxygen species trapping experiments, the spontaneous generation of (1)O(2), even in the absence of light, underscores its crucial role in aerobic oxidation. Density functional theory calculations reveal that an increased O(v) content and N doping significantly reduce the adsorption energy, thereby promoting chemisorption and excitation of O(2). Consequently, the optimized N(55)-MnO(2) nanocatalyst enables room-temperature aerobic oxidation of alcohols with a yield surpassing 99%, representing a 6.7-fold activity enhancement compared to ε-MnO(2) without N-doping. Furthermore, N(55)-MnO(2) demonstrates exceptional recyclability for the aerobic oxidative conversion of benzyl alcohol over ten cycles. This study introduces an approach to spontaneously activate O(2) for the green synthesis of fine chemicals. The Royal Society of Chemistry 2023-10-12 /pmc/articles/PMC10685315/ /pubmed/38033900 http://dx.doi.org/10.1039/d3sc04418a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Tang, Jun
Chen, Junbao
Zhang, Zhanyu
Ma, Qincheng
Hu, Xiaolong
Li, Peng
Liu, Zhiqiang
Cui, Peixin
Wan, Chao
Ke, Qingping
Fu, Lei
Kim, Jeonghun
Hamada, Takashi
Kang, Yunqing
Yamauchi, Yusuke
Spontaneous generation of singlet oxygen on microemulsion-derived manganese oxides with rich oxygen vacancies for efficient aerobic oxidation
title Spontaneous generation of singlet oxygen on microemulsion-derived manganese oxides with rich oxygen vacancies for efficient aerobic oxidation
title_full Spontaneous generation of singlet oxygen on microemulsion-derived manganese oxides with rich oxygen vacancies for efficient aerobic oxidation
title_fullStr Spontaneous generation of singlet oxygen on microemulsion-derived manganese oxides with rich oxygen vacancies for efficient aerobic oxidation
title_full_unstemmed Spontaneous generation of singlet oxygen on microemulsion-derived manganese oxides with rich oxygen vacancies for efficient aerobic oxidation
title_short Spontaneous generation of singlet oxygen on microemulsion-derived manganese oxides with rich oxygen vacancies for efficient aerobic oxidation
title_sort spontaneous generation of singlet oxygen on microemulsion-derived manganese oxides with rich oxygen vacancies for efficient aerobic oxidation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10685315/
https://www.ncbi.nlm.nih.gov/pubmed/38033900
http://dx.doi.org/10.1039/d3sc04418a
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