电解水
析氧
分解水
生化工程
计算机科学
设计要素和原则
电解
电
制氢
可再生能源
纳米技术
催化作用
钥匙(锁)
联轴节(管道)
工艺工程
桥(图论)
氢经济
比例(比率)
氢
系统工程
电催化剂
电流(流体)
生产(经济)
材料科学
聚合物电解质膜电解
反应堆设计
多相催化
自上而下和自下而上的设计
系统设计
作者
Yu'an Li,Huiying Li,Jintao Huang,Kailun Wang,Yi Liu,Boxuan Jin,Hanyu Hu,Weijie Kong,Deli Wang
摘要
Electrocatalytic water splitting using renewable electricity is widely regarded as a promising route to sustainable hydrogen production. However, its practical application is hindered by the sluggish kinetics of both the hydrogen evolution reaction (HER) and the oxygen evolution reaction (OER). A critical challenge remains: the lack of electrocatalysts that simultaneously achieve high intrinsic activity, long-term durability, and industrially relevant efficiency. Despite advances in catalyst design, current studies are still dominated by static descriptors and single-dimensional optimization, which fail to address the mismatch between material-level activity and device-level performance. In this review, we propose a six-dimensional coupled design framework for water electrolysis electrocatalysts. Specifically, electronic structure regulation (E), atomic-level active site definition (A), bulk-phase framework engineering (B), interfacial coupling (I), hierarchical architecture design (H), and dynamic evolution (D) are discussed as six mutually constraining dimensions. Altogether, these dimensions cover a hierarchical range, extending from microscopic electronic states at the atomic scale to the operational behavior of macroscopic devices. We first introduce the fundamentals of water electrolysis, including HER/OER mechanisms, thermodynamic and kinetic constraints, and evaluation metrics from intrinsic activity to industrially relevant performance. Subsequently, representative catalyst systems and design strategies are systematically discussed within the E-A-B-I-H-D framework, emphasizing structure-activity relationships and cross-dimensional interconnections. Finally, the key challenges and future directions toward predictive, multidimensional, and industrially relevant catalyst design are highlighted. This review aims to provide an integrative multiscale framework and practical design guidelines for developing high-performance electrocatalysts that bridge fundamental research and industrial water electrolysis.
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