Qi Pengwei, Zhao Liang, Deng Zhao, Sun Hao, Li Hailong, Liu Qi, Li Xiang, Lian Yuebin, Cheng Jian, Guo Jun, Cui Yi, Peng Yang
Soochow Institute for Energy and Materials Innovations, College of Energy, Soochow University, Suzhou 215006, P. R. China.
Key Laboratory of Advanced Carbon Materials and Wearable Energy Technologies of Jiangsu Province, Suzhou 215006, P. R. China.
J Phys Chem Lett. 2021 Apr 29;12(16):3941-3950. doi: 10.1021/acs.jpclett.1c00588. Epub 2021 Apr 19.
Oxide-derived Cu (OD-Cu) has been viewed as a highly active form for catalyzing the multielectron transfer of electrochemical CO reduction, but the underlying catalytic mechanism is still controversial. In the current study, the crystalline and valency factors that influence the COR activities of OD-Cu are revisited by employing single crystal Cu(111) foils that exclude convolutions from initial morphological and crystallographic heterogeneity. We observe that the overall COR performance, especially the CH selectivity, correlates well with the initial oxidation level of the Cu(111) foil, of which the surface oxide layer is reduced into small fragments comprising rich grain boundaries and diversely orientated facets. Nonetheless, we find that the polycrystallinity and grain boundaries of OD-Cu, in this circumstance, are not the major causes of the observed activity enhancement. Instead, a transition state between the initial oxide and the finally reduced copper phases, as well as its longevity, dictates the catalytic property of OD-Cu in electrochemical CO reduction. Consequently, this work furnishes further evidence and in-depth understanding to help clarify the catalytic mechanism of OD-Cu in COR.
氧化物衍生铜(OD-Cu)被视为催化电化学CO还原多电子转移的高活性形式,但其潜在的催化机制仍存在争议。在当前研究中,通过使用单晶Cu(111)箔重新审视了影响OD-Cu的COR活性的晶体和价态因素,该单晶箔排除了初始形态和晶体学不均匀性带来的复杂性。我们观察到,整体COR性能,尤其是CH选择性,与Cu(111)箔的初始氧化水平密切相关,其表面氧化层被还原成包含丰富晶界和不同取向小平面的小碎片。尽管如此,我们发现在这种情况下,OD-Cu的多晶性和晶界并不是观察到的活性增强的主要原因。相反,初始氧化物和最终还原铜相之间的过渡态及其寿命决定了OD-Cu在电化学CO还原中的催化性能。因此,这项工作提供了进一步的证据和深入理解,有助于阐明OD-Cu在COR中的催化机制。