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Unleashing non-conjugated polymers as charge relay mediators

The core factors affecting the efficiency of photocatalysis are predominantly centered on controllable modulation of anisotropic spatial charge separation/transfer and regulating vectorial charge transport pathways in photoredox catalysis, yet it still meets with limited success. Herein, we first co...

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Autores principales: Liu, Bi-Jian, Liang, Hao, Mo, Qiao-Ling, Li, Shen, Tang, Bo, Zhu, Shi-Cheng, Xiao, Fang-Xing
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/PMC8730257/
https://www.ncbi.nlm.nih.gov/pubmed/35126982
http://dx.doi.org/10.1039/d1sc04877e
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author Liu, Bi-Jian
Liang, Hao
Mo, Qiao-Ling
Li, Shen
Tang, Bo
Zhu, Shi-Cheng
Xiao, Fang-Xing
author_facet Liu, Bi-Jian
Liang, Hao
Mo, Qiao-Ling
Li, Shen
Tang, Bo
Zhu, Shi-Cheng
Xiao, Fang-Xing
author_sort Liu, Bi-Jian
collection PubMed
description The core factors affecting the efficiency of photocatalysis are predominantly centered on controllable modulation of anisotropic spatial charge separation/transfer and regulating vectorial charge transport pathways in photoredox catalysis, yet it still meets with limited success. Herein, we first conceptually demonstrate the rational design of unidirectional cascade charge transfer channels over transition metal chalcogenide nanosheets (TMC NSs: ZnIn(2)S(4), CdS, CdIn(2)S(4), and In(2)S(3)), which is synergistically enabled by a solid-state non-conjugated polymer, i.e., poly(diallyldimethyl ammonium chloride) (PDDA), and MXene quantum dots (MQDs). In such elaborately designed photosystems, an ultrathin PDDA layer functions as an intermediate charge transport mediator to relay the directional electron transfer from TMC NSs to MQDs that serve as the ultimate electron traps, resulting in a considerably boosted charge separation/migration efficiency. The suitable energy level alignment between TMC NSs and MQDs, concurrent electron-withdrawing capabilities of the ultrathin PDDA interim layer and MQDs, and the charge transport cascade endow the self-assembled TMC/PDDA/MQD heterostructured photosystems with conspicuously improved photoactivities toward anaerobic selective reduction of nitroaromatics to amino derivatives and photocatalytic hydrogen evolution under visible light irradiation. Furthermore, we ascertain that this concept of constructing a charge transfer cascade in such TMC-insulating polymer-MQD photosystems is universal. Our work would afford novel insights into smart design of spatial vectorial charge transport pathways by precise interface modulation via non-conjugated polymers for solar energy conversion.
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spelling pubmed-87302572022-02-04 Unleashing non-conjugated polymers as charge relay mediators Liu, Bi-Jian Liang, Hao Mo, Qiao-Ling Li, Shen Tang, Bo Zhu, Shi-Cheng Xiao, Fang-Xing Chem Sci Chemistry The core factors affecting the efficiency of photocatalysis are predominantly centered on controllable modulation of anisotropic spatial charge separation/transfer and regulating vectorial charge transport pathways in photoredox catalysis, yet it still meets with limited success. Herein, we first conceptually demonstrate the rational design of unidirectional cascade charge transfer channels over transition metal chalcogenide nanosheets (TMC NSs: ZnIn(2)S(4), CdS, CdIn(2)S(4), and In(2)S(3)), which is synergistically enabled by a solid-state non-conjugated polymer, i.e., poly(diallyldimethyl ammonium chloride) (PDDA), and MXene quantum dots (MQDs). In such elaborately designed photosystems, an ultrathin PDDA layer functions as an intermediate charge transport mediator to relay the directional electron transfer from TMC NSs to MQDs that serve as the ultimate electron traps, resulting in a considerably boosted charge separation/migration efficiency. The suitable energy level alignment between TMC NSs and MQDs, concurrent electron-withdrawing capabilities of the ultrathin PDDA interim layer and MQDs, and the charge transport cascade endow the self-assembled TMC/PDDA/MQD heterostructured photosystems with conspicuously improved photoactivities toward anaerobic selective reduction of nitroaromatics to amino derivatives and photocatalytic hydrogen evolution under visible light irradiation. Furthermore, we ascertain that this concept of constructing a charge transfer cascade in such TMC-insulating polymer-MQD photosystems is universal. Our work would afford novel insights into smart design of spatial vectorial charge transport pathways by precise interface modulation via non-conjugated polymers for solar energy conversion. The Royal Society of Chemistry 2021-12-17 /pmc/articles/PMC8730257/ /pubmed/35126982 http://dx.doi.org/10.1039/d1sc04877e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Liu, Bi-Jian
Liang, Hao
Mo, Qiao-Ling
Li, Shen
Tang, Bo
Zhu, Shi-Cheng
Xiao, Fang-Xing
Unleashing non-conjugated polymers as charge relay mediators
title Unleashing non-conjugated polymers as charge relay mediators
title_full Unleashing non-conjugated polymers as charge relay mediators
title_fullStr Unleashing non-conjugated polymers as charge relay mediators
title_full_unstemmed Unleashing non-conjugated polymers as charge relay mediators
title_short Unleashing non-conjugated polymers as charge relay mediators
title_sort unleashing non-conjugated polymers as charge relay mediators
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8730257/
https://www.ncbi.nlm.nih.gov/pubmed/35126982
http://dx.doi.org/10.1039/d1sc04877e
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