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  4. A hybrid niobium-based oxide with bio-based porous carbon as an efficient electrocatalyst in photovoltaics: a general strategy for understanding the catalytic mechanism
 
research article

A hybrid niobium-based oxide with bio-based porous carbon as an efficient electrocatalyst in photovoltaics: a general strategy for understanding the catalytic mechanism

Wang, Chen  
•
Yun, Sining
•
Fan, Qingyang
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June 28, 2019
Journal Of Materials Chemistry A

Developing a high-performance catalyst and establishing a catalytic mechanism for understanding the catalytic activity are crucial to new generation photovoltaic technology. In this work, we present a feasible and general route to synthesize a bio-based porous carbon (BPC) supported ZnNb2O6 hybrid catalyst with a unique network structure, providing an effective means for electron transport between the electrode and the external circuit. Benefitting from the synergistic effect of ZnNb2O6 and BPC, a photovoltaic device assembled with the nanohybrid yields a power conversion efficiency of 8.83%, which is superior to that of pristine ZnNb2O6-based and conventional Pt-based cells (7.15% and 7.14%). Systematic electrochemical evaluations of the hybrid catalysts exhibit promising stability for practical application in photovoltaics. Contraposing the two vital functions of the counter electrode catalyst, collecting electrons and catalyzing I-3(-) reduction, we propose a general strategy to understand the potential catalytic mechanism from the band structure and surface adsorption by using first-principles density functional theory (DFT) calculations. The theoretical investigations clearly indicate that the splendid catalytic performance originates from the zero band-gap of surface metal atoms and the surface chemical adsorption interaction between I-3(-) and exposed metal atoms. The proposed general strategy in this work for synthesizing a hybrid material with a unique network structure and understanding the catalytic mechanism of the electrocatalyst can guide the design of expected catalytic nanohybrids applied in various energy fields.

  • Details
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Type
research article
DOI
10.1039/c9ta03540k
Web of Science ID

WOS:000474712700047

Author(s)
Wang, Chen  
Yun, Sining
Fan, Qingyang
Wang, Ziqi  
Zhang, Yangliang
Han, Feng
Si, Yiming
Hagfeldt, Anders  
Date Issued

2019-06-28

Publisher

ROYAL SOC CHEMISTRY

Published in
Journal Of Materials Chemistry A
Volume

7

Issue

24

Start page

14864

End page

14875

Subjects

Chemistry, Physical

•

Energy & Fuels

•

Materials Science, Multidisciplinary

•

Chemistry

•

Materials Science

•

sensitized solar-cells

•

counter electrode catalysts

•

in-situ growth

•

low-cost

•

charge recombination

•

integrated devices

•

recent progress

•

doped carbon

•

thin-film

•

performance

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
DCL  
LSPM  
Available on Infoscience
July 24, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/159315
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