Frustrated Lewis Pairs Enable Continuous Short-Range Hydrogen Spillover for Industrial-Scale Hydrogen Evolution

离解(化学) 氢溢流 制氢 催化作用 化学物理 质子 化学 分解水 解吸 纳米技术 氢经济 溢出效应 材料科学 氢燃料 无机化学 化学工程 吸附 能量载体 质子输运 电解水 光化学
作者
Zhaozheng Zhang,Xianbiao Hou,Tengjia Ni,Jian Zhou,Canhui Zhang,Kecheng Tong,Shuixing Dai,Lei Chu,Huanlei Wang,Huang Minghua
出处
期刊:ACS Nano [American Chemical Society]
卷期号:19 (46): 39839-39852
标识
DOI:10.1021/acsnano.5c13246
摘要

Efficient hydrogen evolution reaction (HER) in alkaline and neutral media remains a major challenge due to sluggish water dissociation and limited proton availability. Hydrogen spillover presents a promising strategy to couple proton generation and utilization; yet, its application in single-component catalysts is greatly limited by the absence of effective driving forces for hydrogen migration. Herein, we report an amino-functionalized NiRu-based metal-organic framework (MOF) as a single-component catalyst, wherein spontaneously formed frustrated Lewis pairs (FLPs) composed of Ni sites and amino groups function as cooperative active sites to drive coupled water dissociation and hydrogen spillover, establishing a continuous short-range spillover pathway. Experimental and theoretical results reveal that Ni-NH2 FLPs promote water adsorption and dissociation, generating a locally acidic microenvironment conducive to proton transport. Meanwhile, the amino groups modulate the electronic structure of neighboring Ru sites, lowering the energy barrier for hydrogen desorption and promoting spillover-mediated hydrogen release. As a result, the catalyst achieves Pt-beyond HER activity and durability under alkaline and neutral conditions at industrial current densities. The assembled alkaline electrolyzer further demonstrates a low cell voltage (1.76 V at 0.5 A cm-2), high energy efficiency (71.2%), and hydrogen production cost ($0.94 per GGE) below the U.S. Department of Energy target.
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