Li Yue, Jiao Yanqing, Yan Haijing, Yang Ganceng, Liu Yue, Tian Chungui, Wu Aiping, Fu Honggang
Key Laboratory of Functional Inorganic Material Chemistry, Ministry of Education of the People's Republic of China, Heilongjiang University, Harbin, 150080, China.
Angew Chem Int Ed Engl. 2023 Sep 25;62(39):e202306640. doi: 10.1002/anie.202306640. Epub 2023 Jul 11.
Benzylamine electrooxidation reaction (BAOR) is a promising route to produce value-added, easy-separated benzonitrile, and effectively hoist H production. However, achieving excellent performance in low alkaline medium is a huge challenge. The performance is intimately correlated with effective coupling of HER and BAOR, which can be achieved by manipulating the d-electron structure of catalyst to regulate the active species from water. Herein, we constructed a biphasic Mo Ni N-Ni N heterojunction for enhanced bifunctional performance toward HER coupled with BAOR by customizing the d-band centers. Experimental and theoretical calculations indicate that charge transfer in the heterojunction causes the upshift of the d-band centers, which one side facilitates to decrease water activation energy and optimize H* adsorption on Mo Ni N for promoting HER activity, the other side favors to more easily produce and adsorb OH* from water for forming NiOOH on Ni N and optimizing adsorption energy of benzylamine, thus catalyzing BAOR effectively. Accordingly, it shows an industrial current density of 220 mA cm at 1.59 V and high Faradaic efficiencies (>99 %) for H production and converting benzylamine to benzonitrile in 0.1 M KOH/0.5 M Na SO . This work guides the design of excellent bifunctional electrocatalysts for the scalable production of green hydrogen and value-added products.
苄胺电氧化反应(BAOR)是一条生产增值且易于分离的苄腈并有效提高析氢量的有前景的途径。然而,在低碱性介质中实现优异性能是一个巨大挑战。该性能与析氢反应(HER)和BAOR的有效耦合密切相关,这可以通过调控催化剂的d电子结构来调节来自水的活性物种来实现。在此,我们通过定制d带中心构建了一种双相MoNiN-NiN异质结,以增强对HER与BAOR耦合的双功能性能。实验和理论计算表明,异质结中的电荷转移导致d带中心上移,一方面有利于降低水的活化能并优化H在MoNiN上的吸附以促进HER活性,另一方面有利于更轻松地从水中产生并吸附OH以在NiN上形成NiOOH并优化苄胺的吸附能,从而有效催化BAOR。因此,在0.1M KOH/0.5M Na₂SO₄中,它在1.59V时显示出220mA cm⁻²的工业电流密度以及用于析氢和将苄胺转化为苄腈的高法拉第效率(>99%)。这项工作为可扩展生产绿色氢气和增值产品的优异双功能电催化剂的设计提供了指导。