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通过阴离子诱导的分子活化和吸附增强糠醛的电催化氢化反应

Enhancing the Electrocatalytic Hydrogenation of Furfural via Anion-Induced Molecular Activation and Adsorption.

作者信息

Xia Zhongcheng, Xu Leitao, Ma Chongyang, An Qizheng, Bu Chenyu, Fan Yun, Lu Yuxuan, Pan Yuping, Xie Dianke, Liu Qinghua, Wang Shuangyin, Zou Yuqin

机构信息

State Key Laboratory of Chem/Bio-Sensing and Chemometrics, Provincial Hunan Key Laboratory for Graphene Materials and Devices, College of Chemistry and Chemical Engineering, the National Supercomputer Centers in Changsha, Hunan University, Changsha 410082, P. R. China.

Greater Bay Area Institute for Innovation, Hunan University, Guangzhou 511340, P. R. China.

出版信息

J Am Chem Soc. 2024 Sep 4;146(35):24570-24579. doi: 10.1021/jacs.4c07979. Epub 2024 Aug 21.

Abstract

The electrocatalytic hydrogenation (ECH) of furfural (FF) to furfuryl alcohol, which does not require additional hydrogen or high pressure, is a green and promising production route. In this study, we explore the effects of anions on FF ECH in two buffer electrolytes (KHCO and phosphate-buffered saline [PBS]). Anions influence the yield of furfuryl alcohol through molecular activation and adsorption. Molecular dynamics simulations show that bicarbonate is present in the first shell layer of the FF molecule and induces strong hydrogen bonding interactions. In contrast, hydrogen phosphate is present only in the second shell layer, resulting in weak hydrogen bonding interactions. Owing to the interfacial anions and hydrogen bonding, FF molecules exhibit strong flat adsorption on the electrode surface in the KHCO solution, while weak adsorption is observed in the PBS solution, as confirmed by operando synchrotron-radiation Fourier-transform infrared spectroscopy and in situ Raman spectroscopy. Density-functional theory calculations reveal that the overall anionic hydrogen bonding network promotes the activation of the carbonyl group in the FF molecule in KHCO, whereas electrophilic activity is inhibited in PBS. Consequently, FF ECH demonstrates much faster kinetics in KHCO, while it exhibits sluggish ECH kinetics and a severe hydrogen evolution reaction in PBS. This work introduces a new strategy to optimize the catalytic process through the modulation of the microenvironment.

摘要

糠醛(FF)电催化加氢制糠醇是一种绿色且有前景的生产路线,该过程无需额外氢气或高压。在本研究中,我们探究了两种缓冲电解质(KHCO和磷酸盐缓冲盐水 [PBS])中的阴离子对FF电催化加氢的影响。阴离子通过分子活化和吸附作用影响糠醇的产率。分子动力学模拟表明,碳酸氢根存在于FF分子的第一壳层,并诱导出强烈的氢键相互作用。相比之下,磷酸氢根仅存在于第二壳层,导致氢键相互作用较弱。由于界面阴离子和氢键的存在,通过原位同步辐射傅里叶变换红外光谱和原位拉曼光谱证实,FF分子在KHCO溶液中在电极表面表现出强烈的平面吸附,而在PBS溶液中观察到较弱的吸附。密度泛函理论计算表明,整体阴离子氢键网络促进了KHCO中FF分子羰基的活化,而在PBS中亲电活性受到抑制。因此,FF电催化加氢在KHCO中的动力学要快得多,而在PBS中则表现出缓慢的电催化加氢动力学和严重的析氢反应。这项工作引入了一种通过调节微环境来优化催化过程的新策略。

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