电子结构
共价键
化学
分子
化学物理
反应性(心理学)
计算化学
催化作用
密度泛函理论
纳米技术
电子效应
费米能级
材料科学
金属
组合化学
分子电子学
基本电荷
结合能
小分子
限制
过渡金属
作者
Shreedhar Bhat,Anjumun Rasool,Manzoor Ahmad Dar
标识
DOI:10.1021/acs.jpcc.5c04099
摘要
Designing highly efficient catalysts with tunable reactivity and activity for the selective reduction of CO2 is a challenging task that necessitates a thorough understanding of the catalyst electronic structure. In this work, we aim at systematically understanding the impact of single-atom functionalization on the electronic structure and CO2 reduction activity of a hydrazine-based covalent organic framework (HCOF) using first-principles simulations. Our results demonstrate that the hydrazine linkages in the covalent organic framework (COF) are adequate for stabilizing a range of single atoms, resulting in a flexible electronic structure for successful activation of the centrosymmetric CO2 molecule. We show that the single-atom-functionalized HCOF (SA-HCOF) systems bind the CO2 molecule strongly in a selective manner with very high binding energies of −0.38 to −2.98 eV. In addition, through rigorous electronic structure analysis encompassing the distribution of d-states near the Fermi level and Bader charge analysis, we establish robust correlations between the CO2 binding energy and the key electronic properties of the catalysts. The computed reaction pathways indicate that the Cr- and Co-based single-atom catalysts (SACs) show remarkable activity for CO2 reduction to CO and HCOOH with very low limiting potentials of −0.61 and −0.52 V, respectively. Further, the CO2 reduction activity of the COF-stabilized SACs was successfully correlated to the adsorption free energy of CO and HCOO intermediates which in turn depend on electronic properties such as the net Bader charge accumulated on the CO2 molecule and the d-band center of the isolated metal atoms. These findings underscore the pivotal role of the electronic structure of isolated metal atoms stabilized on COFs in modulating the CO2 reactivity and reduction activity, thereby providing crucial insights for the rational design of high-performance catalysts for CO2 utilization.
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