纳米片
乙二醇
格式化
氢
乙烯
材料科学
化学工程
无机化学
化学
催化作用
纳米技术
有机化学
工程类
作者
Yi Ma,Huiyao Ge,Yong Zhang,Ning Jian,Jing Yu,Jordi Arbiol,Canhuang Li,Yao Zhong,Luming Li,Hui Kang,Jun Wang,Andreu Cabot,Junshan Li
标识
DOI:10.1021/acssuschemeng.4c10750
摘要
The electrocatalytic oxidation of small organic molecules, such as ethylene glycol (EG), can be paired with the hydrogen evolution reaction (HER) to effectively lower the overall cell voltage, thereby enhancing energy efficiency for hydrogen production. Moreover, the anodic EG oxidation reaction (EGOR) can generate valuable C1 and C2 compounds, offering a sustainable approach to greener chemical production. The industrial viability of this process requires nonprecious metal electrocatalysts that demonstrate high performance at low potential and exhibit high selectivity. In this study, we report on a cost-effective electrocatalyst based on a nickel sulfide phase (Ni3S2) heterogeneously nucleated on the surface of nickel-iron-manganese layered double hydroxide (NiFeMn-LDH) nanosheet arrays and supported on nickel foam (NF), demonstrating exceptional activity for the coupled HER and EGOR in alkaline conditions. This Ni3S2@NiFeMn-LDH/NF catalyst achieves an EG-to-formate faradaic efficiency of up to 90% at 1.5 V, with glycolate and oxalate as minor byproducts. Density functional theory calculations reveal that the EGOR was facilitated by the phase-separated Ni3S2, which lowers the energy barrier of the rate-limiting step. This work presents a promising, sustainable pathway for hydrogen production alongside value-added chemical generation from the electrooxidation of EG.
科研通智能强力驱动
Strongly Powered by AbleSci AI