Zeng Xianshi, Xiao Chuncai, Liao Luliang, Tu Zongxing, Lai Zhangli, Xiong Kai, Wen Yufeng
School of Mathematical Sciences and Physics, Jinggangshan University, Ji'an 343009, China.
Institute for Advanced Study, School of Physics and Materials Science, Nanchang University, Nanchang 330031, China.
Nanomaterials (Basel). 2022 Nov 17;12(22):4049. doi: 10.3390/nano12224049.
The resource utilization of CO2 is one of the essential avenues to realize the goal of "double carbon". The metal-organic framework (MOF) has shown promising applications in CO2 catalytic reduction reactions due to its sufficient pore structure, abundant active sites and functionalizability. In this paper, we investigated the electrocatalytic carbon dioxide reduction reactions of single-atom catalysts created by MOF two-dimensional coordination network materials constructed from transition metal-tetrahydroxybenzoquinone using density function theory calculations. The results indicate that for 10 transition metals, TM-THQ single levels ranging from Sc to Zn, the metal atom binding energy to the THQ is large enough to allow the metal atoms to be stably dispersed in the THQ monolayer. The Ni-THQ catalyst does not compete with the HER reaction in an electrocatalytic CO2 reduction. The primary product of reduction for Sc-THQ is HCOOH, but the major product of Co-THQ is HCHO. The main product of Cu-THQ is CO, while the main product of six catalysts, Ti, V, Cr, Mn, Fe, and Zn, is CH4. The limit potential and overpotential of Ti-THQ are the highest, 1.043 V and 1.212 V, respectively. The overpotentials of the other monolayer catalysts ranged from 0.172 to 0.952 V, and they were all relatively low. Therefore, we forecast that the TM-HQ monolayer will show powerful activity in electrocatalytic carbon dioxide reduction, making it a prospective electrocatalyst for carbon dioxide reduction.
二氧化碳的资源利用是实现“双碳”目标的重要途径之一。金属有机框架(MOF)因其具有足够的孔结构、丰富的活性位点和功能可调节性,在二氧化碳催化还原反应中显示出广阔的应用前景。在本文中,我们使用密度泛函理论计算研究了由过渡金属 - 四羟基苯醌构建的MOF二维配位网络材料制备的单原子催化剂的电催化二氧化碳还原反应。结果表明,对于从Sc到Zn的10种过渡金属,TM - THQ单原子层中,金属原子与THQ的结合能足够大,使得金属原子能够稳定地分散在THQ单分子层中。Ni - THQ催化剂在电催化二氧化碳还原中不与析氢反应竞争。Sc - THQ还原的主要产物是HCOOH,但Co - THQ的主要产物是HCHO。Cu - THQ的主要产物是CO,而Ti、V、Cr、Mn、Fe和Zn这六种催化剂的主要产物是CH4。Ti - THQ的极限电位和过电位最高,分别为1.043 V和1.212 V。其他单分子层催化剂的过电位范围为0.172至0.952 V,且均相对较低。因此,我们预测TM - HQ单分子层在电催化二氧化碳还原中将表现出强大的活性,使其成为一种有前景的二氧化碳还原电催化剂。