Wei Helei, Tan Aidong, Xiang Zhipeng, Zhang Jie, Piao Jinhua, Liang Zhenxing, Wan Kai, Fu Zhiyong
Guangdong Provincial Key Laboratory of Fuel Cell Technology, School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou, 510641, P. R. China.
Institute of Energy Power Innovation, North China Electric Power University, Beijing, 102206, P. R. China.
ChemSusChem. 2022 Aug 5;15(15):e202200752. doi: 10.1002/cssc.202200752. Epub 2022 Jun 22.
Electrochemical reduction of CO (CO RR) to value-added chemicals is an effective way to harvest renewable energy and utilize carbon dioxide. However, the electrocatalysts for CO RR suffer from insufficient activity and selectivity due to the limitation of CO activation. In this work, a Ni-doped Bi nanosheet (Ni@Bi-NS) electrocatalyst is synthesized for the electrochemical reduction of CO to HCOOH. Physicochemical characterization methods are extensively used to investigate the composition and structure of the materials. Electrochemical results reveal that for the production of HCOOH, the obtained Ni@Bi-NS exhibits an equivalent current density of 51.12 mA cm at -1.10 V, which is much higher than the pure Bi-NS (18.00 mA cm at -1.10 V). A high Faradaic efficiency over 92.0 % for HCOOH is achieved in a wide potential range from -0.80 to -1.10 V, and particularly, the highest efficiency of 98.4 % is achieved at -0.90 V. Both experimental and theoretical results reveal that the superior activity and selectivity are attributed to the doping effect of Ni on the Bi nanosheet. The density functional theory calculation reveals that upon doping, the charge is transferred from Ni to the adjacent Bi atoms, which shifts the p-orbital electronic density states towards the Fermi level. The resultant strong orbital hybridization between Bi and the π* orbitals of CO facilitates the formation of *OCHO intermediates and favors its activation. This work provides an effective strategy to develop active and selective electrocatalysts for CO RR by modulating the electronic density state.
将一氧化碳电化学还原(CO RR)为高附加值化学品是收集可再生能源和利用二氧化碳的有效途径。然而,由于CO活化的限制,用于CO RR的电催化剂存在活性和选择性不足的问题。在这项工作中,合成了一种镍掺杂的铋纳米片(Ni@Bi-NS)电催化剂,用于将CO电化学还原为HCOOH。广泛使用物理化学表征方法来研究材料的组成和结构。电化学结果表明,对于HCOOH的生产,所制备的Ni@Bi-NS在-1.10 V时表现出51.12 mA cm的等效电流密度,远高于纯Bi-NS(-1.10 V时为18.00 mA cm)。在-0.80至-1.10 V的宽电位范围内,HCOOH的法拉第效率超过92.0%,特别是在-0.90 V时达到最高效率98.4%。实验和理论结果均表明,优异的活性和选择性归因于Ni对铋纳米片的掺杂效应。密度泛函理论计算表明,掺杂后电荷从Ni转移到相邻的Bi原子上,使p轨道电子密度态向费米能级移动。由此产生的Bi与CO的π轨道之间强烈的轨道杂化促进了OCHO中间体的形成并有利于其活化。这项工作为通过调节电子密度态开发用于CO RR的活性和选择性电催化剂提供了一种有效策略。