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用于低电池电位下二氧化碳电还原配对的光热辅助生物质氧化

Photothermal Assisted Biomass Oxidation for Pairing Carbon Dioxide Electroreduction with Low Cell Potential.

作者信息

Chen Houjun, Peng Rongcheng, Hu Ting, Tang Naizhuo, Wang Yahan, Zhang Yan, Ni Wenpeng, Zhang Shiguo

机构信息

College of Materials Science and Engineering, Hunan University, 410082, China.

出版信息

ChemSusChem. 2025 Jan 14;18(2):e202400493. doi: 10.1002/cssc.202400493. Epub 2024 Oct 10.

DOI:10.1002/cssc.202400493
PMID:39115016
Abstract

Integrating anodic biomass valorization with carbon dioxide electroreduction (CORR) can produce value-added chemicals on both the cathode and anode; however, anodic oxidation still suffers from high overpotential. Herein, a photothermal-assisted method was developed to reduce the potential of 5-hydroxymethyl furfural (HMF) electrooxidation. Capitalizing on the copious oxygen vacancies, defective CoO (D-CoO) exhibited a stronger photothermal effect, delivering a local temperature of 175.47 °C under near infrared light illumination. The photothermal assistance decreased the oxidation potential of HMF from 1.7 V over pristine CoO to 1.37 V over D-CoO to achieve a target current density of 30 mA cm, with 2,5-furandicarboxylic acid as the primary product. Mechanistic analysis disclosed that the photothermal effect did not change the HMF oxidation route but greatly enhanced the adsorption capacity of HMF. Meanwhile, faster electron transfer for direct HMF oxidation and the surface conversion to cobalt (oxy)hydroxide, which contributed to indirect HMF oxidation, was observed. Thus, rapid HMF conversion was realized, as evidenced by in situ surface-enhanced infrared spectroscopy. Upon coupling cathodic CORR with an atomically dispersed Ni-N/C catalyst, the Faradaic efficiencies of CO (cathode) and 2,5-furandicarboxylic acid (FDCA, anode) exceeded 90.0 % under a low cell potential of 1.77 V.

摘要

将阳极生物质增值与二氧化碳电还原(CORR)相结合,可以在阴极和阳极上都生产出增值化学品;然而,阳极氧化仍然存在高过电位的问题。在此,开发了一种光热辅助方法来降低5-羟甲基糠醛(HMF)电氧化的电位。利用大量的氧空位,缺陷CoO(D-CoO)表现出更强的光热效应,在近红外光照射下局部温度达到175.47°C。光热辅助将HMF的氧化电位从原始CoO上的1.7 V降低到D-CoO上的1.37 V,以实现30 mA cm的目标电流密度,主要产物为2,5-呋喃二甲酸。机理分析表明,光热效应并没有改变HMF的氧化途径,但大大提高了HMF的吸附能力。同时,观察到直接HMF氧化的电子转移更快,以及表面转化为氢氧化钴(氧),这有助于间接HMF氧化。因此,原位表面增强红外光谱证明实现了快速的HMF转化。当阴极CORR与原子分散的Ni-N/C催化剂耦合时,在1.77 V的低电池电位下,CO(阴极)和2,5-呋喃二甲酸(FDCA,阳极)的法拉第效率超过90.0%。

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