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Vacancy-defect modulated pathway of photoreduction of CO2 on single atomically thin AgInP2S6 sheets into olefiant gas
by
Li, Shi
, Gao, Wa
, Cheng, Zhenxiang
, Li, Xiaoning
, Wang, Jinlan
, Zhou, Yong
, He, Huichao
, Shen, Qing
, Zou, Zhigang
, Wang, Xiaoyong
, Xiong, Yujie
, Yang, Yong
in
639/4077/4057
/ 639/4077/909/4101/4102
/ 639/638/77/890
/ Carbon dioxide
/ Catalysts
/ Climate change
/ Conversion
/ Coupling (molecular)
/ Crystal defects
/ Etching
/ Ethene
/ Ethylene
/ Global warming
/ Humanities and Social Sciences
/ Hydrocarbon fuels
/ Hydrogen peroxide
/ Intermediates
/ multidisciplinary
/ Photochemical reactions
/ Photoreduction
/ Photosynthesis
/ Science
/ Science (multidisciplinary)
/ Selectivity
/ Sulfur
/ Thickness
/ Vacancies
2021
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Vacancy-defect modulated pathway of photoreduction of CO2 on single atomically thin AgInP2S6 sheets into olefiant gas
by
Li, Shi
, Gao, Wa
, Cheng, Zhenxiang
, Li, Xiaoning
, Wang, Jinlan
, Zhou, Yong
, He, Huichao
, Shen, Qing
, Zou, Zhigang
, Wang, Xiaoyong
, Xiong, Yujie
, Yang, Yong
in
639/4077/4057
/ 639/4077/909/4101/4102
/ 639/638/77/890
/ Carbon dioxide
/ Catalysts
/ Climate change
/ Conversion
/ Coupling (molecular)
/ Crystal defects
/ Etching
/ Ethene
/ Ethylene
/ Global warming
/ Humanities and Social Sciences
/ Hydrocarbon fuels
/ Hydrogen peroxide
/ Intermediates
/ multidisciplinary
/ Photochemical reactions
/ Photoreduction
/ Photosynthesis
/ Science
/ Science (multidisciplinary)
/ Selectivity
/ Sulfur
/ Thickness
/ Vacancies
2021
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Vacancy-defect modulated pathway of photoreduction of CO2 on single atomically thin AgInP2S6 sheets into olefiant gas
by
Li, Shi
, Gao, Wa
, Cheng, Zhenxiang
, Li, Xiaoning
, Wang, Jinlan
, Zhou, Yong
, He, Huichao
, Shen, Qing
, Zou, Zhigang
, Wang, Xiaoyong
, Xiong, Yujie
, Yang, Yong
in
639/4077/4057
/ 639/4077/909/4101/4102
/ 639/638/77/890
/ Carbon dioxide
/ Catalysts
/ Climate change
/ Conversion
/ Coupling (molecular)
/ Crystal defects
/ Etching
/ Ethene
/ Ethylene
/ Global warming
/ Humanities and Social Sciences
/ Hydrocarbon fuels
/ Hydrogen peroxide
/ Intermediates
/ multidisciplinary
/ Photochemical reactions
/ Photoreduction
/ Photosynthesis
/ Science
/ Science (multidisciplinary)
/ Selectivity
/ Sulfur
/ Thickness
/ Vacancies
2021
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Vacancy-defect modulated pathway of photoreduction of CO2 on single atomically thin AgInP2S6 sheets into olefiant gas
Journal Article
Vacancy-defect modulated pathway of photoreduction of CO2 on single atomically thin AgInP2S6 sheets into olefiant gas
2021
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Overview
Artificial photosynthesis, light-driving CO
2
conversion into hydrocarbon fuels, is a promising strategy to synchronously overcome global warming and energy-supply issues. The quaternary AgInP
2
S
6
atomic layer with the thickness of ~ 0.70 nm were successfully synthesized through facile ultrasonic exfoliation of the corresponding bulk crystal. The sulfur defect engineering on this atomic layer through a H
2
O
2
etching treatment can excitingly change the CO
2
photoreduction reaction pathway to steer dominant generation of ethene with the yield-based selectivity reaching ~73% and the electron-based selectivity as high as ~89%. Both DFT calculation and
in-situ
FTIR spectra demonstrate that as the introduction of S vacancies in AgInP
2
S
6
causes the charge accumulation on the Ag atoms near the S vacancies, the exposed Ag sites can thus effectively capture the forming *CO molecules. It makes the catalyst surface enrich with key reaction intermediates to lower the C-C binding coupling barrier, which facilitates the production of ethene.
CO
2
conversion driven by light is a promising strategy to synchronously overcome global warming and energy-supply issues. Here the authors show that the sulfur defect engineering on a quaternary AgInP2S6 atomic layer can excitingly change the CO
2
photoreduction reaction pathway to the generation of ethene.
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