催化作用
贵金属
电催化剂
电解
氢
制氢
钯
氧化还原
选择性
金属
化学
无机化学
组合化学
电化学
电解质
电极
有机化学
物理化学
作者
Tian Xia,Jiangrong Yang,Qinghui Ren,Yu Fu,Zhiyuan Zhang,Zhenhua Li,Mingfei Shao,Xue Duan
出处
期刊:Angewandte Chemie
[Wiley]
日期:2024-12-08
卷期号:64 (9): e202420992-e202420992
被引量:21
标识
DOI:10.1002/anie.202420992
摘要
Electrocatalytic organic oxidation coupled with hydrogen (H2) production emerges as a profitable solution to simultaneously reduce overall energy consumption of H2 production and synthetic high-value chemicals. Noble metal catalysts are highly efficient electrocatalysts in oxidation reactions, but they deactivate easily weakening the benefit in actual production. Herein, we report a universal asymmetric pulse potential strategy to achieve long-term stable operation of noble metals for various alcohol oxidation reactions and noble metal catalysts. For example, by pulsed potentials between 0.8 V and 0 V vs. RHE, palladium (Pd)-catalyzed glycerol (GLY) electrooxidation can continuously proceed for more than 2800 h with glyceric acid (GLA) selectivity of >70 %. Whereas, Pd electrocatalyst becomes nearly deactivated within 6 h of reaction under conventional potentiostatic strategy. Experimental and theoretical calculation results reveal that the generated electrophilic OH* from H2O/OH- oxidation on Pd (denoted as Pd-OH*) acts as main active species for GLY oxidation. However, Pd-OH* is prone to be oxidized to PdOx resulting in performance decay. When a short reduction potential (e.g., 0 V vs. RHE for 5 s) is powered, PdOx can be reversibly reduced to restore the current. Moreover, we tested the feasibility of this strategy in a flow electrolyzer, verifying the practical application potential.
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