TY - JOUR
T1 - Material Engineering Strategies for Efficient Hydrogen Evolution Reaction Catalysts
AU - Luo, Yue
AU - Zhang, Yulong
AU - Zhu, Jiayi
AU - Tian, Xingpeng
AU - Liu, Gang
AU - Feng, Zhiming
AU - Pan, Liwen
AU - Liu, Xinhua
AU - Han, Ning
AU - Tan, Rui
N1 - Publisher Copyright:
© 2024 The Authors. Small Methods published by Wiley-VCH GmbH.
PY - 2024/12/19
Y1 - 2024/12/19
N2 - Water electrolysis, a key enabler of hydrogen energy production, presents significant potential as a strategy for achieving net-zero emissions. However, the widespread deployment of water electrolysis is currently limited by the high-cost and scarce noble metal electrocatalysts in hydrogen evolution reaction (HER). Given this challenge, design and synthesis of cost-effective and high-performance alternative catalysts have become a research focus, which necessitates insightful understandings of HER fundamentals and material engineering strategies. Distinct from typical reviews that concentrate only on the summary of recent catalyst materials, this review article shifts focus to material engineering strategies for developing efficient HER catalysts. In-depth analysis of key material design approaches for HER catalysts, such as doping, vacancy defect creation, phase engineering, and metal-support engineering, are illustrated along with typical research cases. A special emphasis is placed on designing noble metal-free catalysts with a brief discussion on recent advancements in electrocatalytic water-splitting technology. The article also delves into important descriptors, reliable evaluation parameters and characterization techniques, aiming to link the fundamental mechanisms of HER with its catalytic performance. In conclusion, it explores future trends in HER catalysts by integrating theoretical, experimental and industrial perspectives, while acknowledging the challenges that remain.
AB - Water electrolysis, a key enabler of hydrogen energy production, presents significant potential as a strategy for achieving net-zero emissions. However, the widespread deployment of water electrolysis is currently limited by the high-cost and scarce noble metal electrocatalysts in hydrogen evolution reaction (HER). Given this challenge, design and synthesis of cost-effective and high-performance alternative catalysts have become a research focus, which necessitates insightful understandings of HER fundamentals and material engineering strategies. Distinct from typical reviews that concentrate only on the summary of recent catalyst materials, this review article shifts focus to material engineering strategies for developing efficient HER catalysts. In-depth analysis of key material design approaches for HER catalysts, such as doping, vacancy defect creation, phase engineering, and metal-support engineering, are illustrated along with typical research cases. A special emphasis is placed on designing noble metal-free catalysts with a brief discussion on recent advancements in electrocatalytic water-splitting technology. The article also delves into important descriptors, reliable evaluation parameters and characterization techniques, aiming to link the fundamental mechanisms of HER with its catalytic performance. In conclusion, it explores future trends in HER catalysts by integrating theoretical, experimental and industrial perspectives, while acknowledging the challenges that remain.
KW - catalytic materials
KW - design principles
KW - hydrogen evolution reaction
KW - material engineering strategies
KW - noble metal-free catalysts
UR - https://www.scopus.com/pages/publications/85193343034
U2 - 10.1002/smtd.202400158
DO - 10.1002/smtd.202400158
M3 - 文章
C2 - 38745530
AN - SCOPUS:85193343034
SN - 2366-9608
VL - 8
JO - Small Methods
JF - Small Methods
IS - 12
M1 - 2400158
ER -