TY - JOUR
T1 - Enhanced Visible Photocatalytic Hydrogen Evolution of KN-Based Semiconducting Ferroelectrics via Band-Gap Engineering and High-Field Poling
AU - Lan, Yuchen
AU - Sun, Zhihai
AU - Yuan, Changlai
AU - Xue, Xiaogang
AU - Chen, Jun
AU - Miao, Lei
AU - Guo, Yiping
AU - Zhou, Changrong
AU - Xu, Jiwen
AU - Zhou, Jianhua
AU - Wang, Jiang
AU - Rao, Guanghui
N1 - Funding Information:
Financial support from the Natural Science Foundation of Guangxi Province, China (grants no. 2021GXNSFAA220029) and the National Natural Science Foundation of China (grant no. 52173094) is gratefully acknowledged by the authors.
Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/2/23
Y1 - 2022/2/23
N2 - In various ferroelectric-based photovoltaic materials after low-band-gap engineering, the process by which high-field polarization induces the depolarizing electric field (Edp) to accelerate the electron-hole pair separation in the visible light photocatalytic process is still a great challenge. Herein, a series of semiconducting KN-based ferroelectric catalytic materials with narrow multi-band gaps and high-field polarization capabilities are obtained through the Ba, Ni, and Bi co-doping strategy. Stable Edpcaused by high-field poling enhanced the visible photocatalytic hydrogen evolution in a 0.99KN-0.01BNB sample with a narrow band gap and optimal ferroelectricity, which can be 5.4 times higher than that of the unpoled sample. The enhanced photocatalytic hydrogen evolution rate can be attributed to the synergistic effect of the significant reduction of the band gap and the high-field-polarization-induced Edp. The change in the band position in the poled sample further reveals that high-field poling may accelerate the migration of carriers through band bending. Insights into the mechanism by which catalytic activity is enhanced through high-field-polarization-induced Edpmay pave the way for further development of ferroelectric-based catalytic materials in the photocatalytic field.
AB - In various ferroelectric-based photovoltaic materials after low-band-gap engineering, the process by which high-field polarization induces the depolarizing electric field (Edp) to accelerate the electron-hole pair separation in the visible light photocatalytic process is still a great challenge. Herein, a series of semiconducting KN-based ferroelectric catalytic materials with narrow multi-band gaps and high-field polarization capabilities are obtained through the Ba, Ni, and Bi co-doping strategy. Stable Edpcaused by high-field poling enhanced the visible photocatalytic hydrogen evolution in a 0.99KN-0.01BNB sample with a narrow band gap and optimal ferroelectricity, which can be 5.4 times higher than that of the unpoled sample. The enhanced photocatalytic hydrogen evolution rate can be attributed to the synergistic effect of the significant reduction of the band gap and the high-field-polarization-induced Edp. The change in the band position in the poled sample further reveals that high-field poling may accelerate the migration of carriers through band bending. Insights into the mechanism by which catalytic activity is enhanced through high-field-polarization-induced Edpmay pave the way for further development of ferroelectric-based catalytic materials in the photocatalytic field.
KW - Ba/Ni/Bi-modified KNbO
KW - high-field poling
KW - phase structures
KW - photocatalytic hydrogen evolution
KW - semiconducting ferroelectrics
UR - http://www.scopus.com/inward/record.url?scp=85125099749&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85125099749&partnerID=8YFLogxK
U2 - 10.1021/acsami.1c20448
DO - 10.1021/acsami.1c20448
M3 - Article
C2 - 35138789
AN - SCOPUS:85125099749
SN - 1944-8244
VL - 14
SP - 8916
EP - 8930
JO - ACS applied materials & interfaces
JF - ACS applied materials & interfaces
IS - 7
ER -