TY - JOUR
T1 - Failure Mechanism Analysis and Emerging Strategies for Enhancing the Photoelectrochemical Stability of Photoanodes
AU - Zhang, Yingjuan
AU - Liu, Boyan
AU - Xu, Liangcheng
AU - Ding, Zeran
AU - Yang, Rui
AU - Wang, Songcan
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/1/14
Y1 - 2025/1/14
N2 - The development of efficient and stable photoanode materials is essential for driving the possible practical application of photoelectrochemical water splitting. This article begins with a basic understanding of the fundamentals of photoelectrochemical devices and photoanodes. State-of-the-art strategies for designing photoanodes with long-term stability are highlighted, including insertion of hole transport layers, construction of protective/passivation layers, loading of co-catalysts, construction of heterojunctions, and modification of the electrolyte. Based on the insights gained from these effective strategies, we present an outlook for addressing key aspects of the challenges of stabilizing photoanodes development in the future work. Widespread adoption of stability assessment criteria will facilitate reliable comparisons of results from different laboratories. In addition, deactivation of photoanode is defined as a 50 % reduction in productivity. An in-depth understanding of the deactivation mechanism is essential for the design and development of efficient and stable photoanodes. This work will provide insights into the stability assessment of photoanode and facilitate the production of practical solar fuels.
AB - The development of efficient and stable photoanode materials is essential for driving the possible practical application of photoelectrochemical water splitting. This article begins with a basic understanding of the fundamentals of photoelectrochemical devices and photoanodes. State-of-the-art strategies for designing photoanodes with long-term stability are highlighted, including insertion of hole transport layers, construction of protective/passivation layers, loading of co-catalysts, construction of heterojunctions, and modification of the electrolyte. Based on the insights gained from these effective strategies, we present an outlook for addressing key aspects of the challenges of stabilizing photoanodes development in the future work. Widespread adoption of stability assessment criteria will facilitate reliable comparisons of results from different laboratories. In addition, deactivation of photoanode is defined as a 50 % reduction in productivity. An in-depth understanding of the deactivation mechanism is essential for the design and development of efficient and stable photoanodes. This work will provide insights into the stability assessment of photoanode and facilitate the production of practical solar fuels.
KW - Electrolyte conditioning
KW - Failure mechanism
KW - Intrinsic modification
KW - Photoanode stability
KW - Surface engineering
UR - http://www.scopus.com/inward/record.url?scp=85207667062&partnerID=8YFLogxK
U2 - 10.1002/cssc.202401420
DO - 10.1002/cssc.202401420
M3 - 文献综述
C2 - 39171780
AN - SCOPUS:85207667062
SN - 1864-5631
VL - 18
JO - ChemSusChem
JF - ChemSusChem
IS - 2
M1 - e202401420
ER -