双金属片
材料科学
联轴节(管道)
结晶学
冶金
金属
化学
作者
Jiayong Xiao,Jofrey J. Masana,Ming Qiu,Ying Yu
标识
DOI:10.1016/j.mtphys.2024.101565
摘要
Hampered by sluggish C−C coupling kinetics, the low selectivity and efficiency have limited industrial applications of CO 2 reduction into valuable multi-carbon products. A direct coupling of CO molecules or their coupling after hydrogenation, followed by the final synthesis of C 2 products, can help to overcome these limitations potentially. In this study, a detailed high-throughput screening of bimetallic site catalysts comprising copper (Cu) and 28 other metal (M) atoms was conducted. The metal atoms Cu and M were anchored on a carbon nanotube (CNT) with six nitrogen (N 6 ) defects (CuMN 6 @CNT), which possesses effective dual active sites for C−C coupling. The calculated results demonstrate that the CuGaN 6 @CNT catalyst exhibited favorable selectivity, with low theoretical overpotentials of −0.23 and −0.34 eV for ethanol and ethylene, respectively, surpassing most reported catalysts. The synergistic effect of Ga and Cu sites, along with their p - d states hybridization, results in an enhancement of Cu's d state dispersion and energy barriers reduction for C−C coupling. Additionally, the strain effect of the substrate CNT exhibits a direct correlation with the catalytic performance of CuGaN 6 @CNT by adjusting the d -band center of the Cu site and p -band center of the Ga site. These findings provide a novel insights into the electrocatalytic reduction of CO into valuable C 2 products using bimetallic single atom catalyst, offering significant guidance for future research endeavors in this field.
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