TY - JOUR
T1 - Non-precious metal electrocatalysts for acidic water splitting
T2 - Progress, challenges, and perspectives
AU - Wu, Qingshuang
AU - Ma, Dandan
AU - Jia, Yufei
AU - Zhang, Jinfan
AU - Feng, Xiangbo
AU - Gao, Yanhong
AU - Li, Jun
AU - Chen, Yu
AU - Shi, Jian Wen
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/9/15
Y1 - 2026/9/15
N2 - Electrocatalytic water splitting can be driven by electricity to convert water into hydrogen (H2) and oxygen (O2), and is considered a critical bridge for clean energy conversion, with the key being the exploration of efficient and stable electrocatalysts. Compared to precious metal electrocatalysts (PMEs), non-precious metal electrocatalysts (NPMEs) inherently offer a cost advantage, and some NPMEs exhibit the same stability and low overpotential as PMEs in acidic electrocatalytic water splitting. In recent decades, a lot of studies has been done on the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) of NPMEs in acidic media. We first summarized the basic principles of OER and HER, and then reviewed the latest developments in NPMEs for HER and OER. Subsequently, the advantages and disadvantages of various types of NPMEs under acidic conditions were analyzed, and their performance in OER, HER, and overall water splitting was compared. Based on this, we summarized cutting-edge approaches to enhance the electrocatalytic performance of NPMEs, including nanostructure design, heteroatom doping, and composite carrier strategies. Finally, we analyzed the current hurdles and the future research avenues for NPMEs. This review helps to understand the basic principles and research progress of electrocatalytic water splitting in acidic media, and clarifies the future direction of this field.
AB - Electrocatalytic water splitting can be driven by electricity to convert water into hydrogen (H2) and oxygen (O2), and is considered a critical bridge for clean energy conversion, with the key being the exploration of efficient and stable electrocatalysts. Compared to precious metal electrocatalysts (PMEs), non-precious metal electrocatalysts (NPMEs) inherently offer a cost advantage, and some NPMEs exhibit the same stability and low overpotential as PMEs in acidic electrocatalytic water splitting. In recent decades, a lot of studies has been done on the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) of NPMEs in acidic media. We first summarized the basic principles of OER and HER, and then reviewed the latest developments in NPMEs for HER and OER. Subsequently, the advantages and disadvantages of various types of NPMEs under acidic conditions were analyzed, and their performance in OER, HER, and overall water splitting was compared. Based on this, we summarized cutting-edge approaches to enhance the electrocatalytic performance of NPMEs, including nanostructure design, heteroatom doping, and composite carrier strategies. Finally, we analyzed the current hurdles and the future research avenues for NPMEs. This review helps to understand the basic principles and research progress of electrocatalytic water splitting in acidic media, and clarifies the future direction of this field.
KW - Acidic media
KW - Electrocatalysis
KW - Hydrogen evolution reaction
KW - Non-precious metal
KW - Oxygen evolution reaction
KW - Water splitting
UR - https://www.scopus.com/pages/publications/105037110294
U2 - 10.1016/j.ccr.2026.218036
DO - 10.1016/j.ccr.2026.218036
M3 - 文献综述
AN - SCOPUS:105037110294
SN - 0010-8545
VL - 563
JO - Coordination Chemistry Reviews
JF - Coordination Chemistry Reviews
M1 - 218036
ER -