电合成
催化作用
法拉第效率
脱氢
双金属片
化学工程
化学
无机化学
材料科学
环己醇
己二酸
吸附
电解
析氧
浸出(土壤学)
产量(工程)
限制电流
电化学
膜
环己酮
电极
电催化剂
氧化还原
多相催化
可逆氢电极
葡萄糖酸
纳米技术
试剂
作者
Ying Liang,Xianping Liao,Yingshuai Jia,Shiming Guan,W. Zhang,Wenbiao Zhang,Meng Yuying,Yi Tang,Qingsheng Gao
标识
DOI:10.1021/acssuschemeng.5c11960
摘要
Electrooxidation offers a sustainable alternative by utilizing renewable energy to convert biomass-derived cyclohexanol (CHA) to adipic acid (AA), a key industrial chemical for nylon-66 and polyurethane production. While bimetallic Ni-based catalysts enhance the conversion, the role of secondary metals in modulating Ni active-site reconstruction during operation remains unclear, limiting performance optimization. Here, we demonstrate that Cr-doping promoted the dynamic reconstruction of Ni(OH) 2 nanosheets to form NiOOH with abundant Ni 3+ and oxygen vacancies (OVs), significantly boosting AA electrosynthesis. In situ characterizations reveal that Cr-doping accelerates OH – adsorption and promotes NiOOH formation, while subsequent Cr 3+ leaching generates OVs, thus, resolving the long-standing dilemma between stabilizing high-valence Ni and maintaining abundant defects. The optimized catalyst achieves 78.1% AA yield and 85.4% Faradaic efficiency at 1.45 V vs RHE, outperforming undoped Ni(OH) 2 and prior systems. Mechanistic studies identify surface Ni 3+ and OVs-stabilized *OOH species as the keys for CHA dehydrogenation and cyclohexanone oxidation, respectively. Moreover, a membrane electrode assembly electrolyzer was designed for the efficient coproduction of AA (0.078 mmol h –1 cm –2 ) and H 2 (42.9 mL h –1 cm –2 ) at a current density of 100 mA cm –2, demonstrating the scalability. This work clarifies the in situ reconstruction of bimetallic sites and provides a design strategy for the efficient electrosynthesis.
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