Xia Tian, Yang Jiangrong, Ren Qinghui, Fu Yu, Zhang Zhiyuan, Li Zhenhua, Shao Mingfei, Duan Xue
State Key Laboratory of Chemical Resource Engineering, College of Chemistry, Beijing University of Chemical Technology, Beijing, 100029, China.
Quzhou Institute for Innovation in Resource Chemical Engineering, Quzhou, Zhejiang, 323000, China.
Angew Chem Int Ed Engl. 2025 Feb 24;64(9):e202420992. doi: 10.1002/anie.202420992. Epub 2024 Dec 20.
Electrocatalytic organic oxidation coupled with hydrogen (H) production emerges as a profitable solution to simultaneously reduce overall energy consumption of H 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 HO/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 PdO resulting in performance decay. When a short reduction potential (e.g., 0 V vs. RHE for 5 s) is powered, PdO 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.
电催化有机氧化与制氢相结合,成为一种有利可图的解决方案,可同时降低制氢和合成高价值化学品的整体能耗。贵金属催化剂在氧化反应中是高效的电催化剂,但它们容易失活,削弱了实际生产中的效益。在此,我们报道了一种通用的不对称脉冲电位策略,以实现贵金属在各种醇氧化反应和贵金属催化剂中的长期稳定运行。例如,通过在相对于可逆氢电极(RHE)为0.8 V和0 V之间的脉冲电位,钯(Pd)催化的甘油(GLY)电氧化可以连续进行超过2800 h,甘油酸(GLA)选择性大于70%。然而,在传统的恒电位策略下,Pd电催化剂在反应6 h内几乎失活。实验和理论计算结果表明,在Pd上由HO/OH氧化产生的亲电OH*(表示为Pd-OH*)是GLY氧化的主要活性物种。然而,Pd-OH*容易被氧化为PdO,导致性能下降。当施加短时间的还原电位(例如,相对于RHE为0 V持续5 s)时,PdO可以可逆还原以恢复电流。此外,我们在流动电解槽中测试了该策略的可行性,验证了其实际应用潜力。