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Quasi-graphitic carbon shell-induced Cu confinement promotes electrocatalytic CO2 reduction toward C2+ products

Title
Quasi-graphitic carbon shell-induced Cu confinement promotes electrocatalytic CO2 reduction toward C2+ products
Author(s)
Kim, Ji-YongHong, DeokgiLee, Jae-ChanKim, Hyoung GyunLee, SungwooShin, SangyongKim, BeomilLee, HyunjooKim, MiyoungOh, JihunLee, Gun-DoNam, Dae-HyunJoo, Young-Chang
DGIST Authors
Kim, Ji-YongHong, DeokgiLee, Jae-ChanKim, Hyoung GyunLee, SungwooShin, SangyongKim, BeomilLee, HyunjooKim, MiyoungOh, JihunLee, Gun-DoNam, Dae-HyunJoo, Young-Chang
Issued Date
2021-06
Type
Article
Keywords
TOTAL-ENERGY CALCULATIONSELECTROREDUCTIONNANOPARTICLESCHALLENGESCOVERAGEETHYLENE
ISSN
2041-1723
Abstract
For steady electroconversion to value-added chemical products with high efficiency, electrocatalyst reconstruction during electrochemical reactions is a critical issue in catalyst design strategies. Here, we report a reconstruction-immunized catalyst system in which Cu nanoparticles are protected by a quasi-graphitic C shell. This C shell epitaxially grew on Cu with quasi-graphitic bonding via a gas–solid reaction governed by the CO (g) - CO2 (g) - C (s) equilibrium. The quasi-graphitic C shell-coated Cu was stable during the CO2 reduction reaction and provided a platform for rational material design. C2+ product selectivity could be additionally improved by doping p-block elements. These elements modulated the electronic structure of the Cu surface and its binding properties, which can affect the intermediate binding and CO dimerization barrier. B-modified Cu attained a 68.1% Faradaic efficiency for C2H4 at −0.55 V (vs RHE) and a C2H4 cathodic power conversion efficiency of 44.0%. In the case of N-modified Cu, an improved C2+ selectivity of 82.3% at a partial current density of 329.2 mA/cm2 was acquired. Quasi-graphitic C shells, which enable surface stabilization and inner element doping, can realize stable CO2-to-C2H4 conversion over 180 h and allow practical application of electrocatalysts for renewable energy conversion. © 2021, The Author(s).
URI
http://hdl.handle.net/20.500.11750/15481
DOI
10.1038/s41467-021-24105-9
Publisher
Nature Publishing Group
Related Researcher
  • 남대현 Nam, Dae-Hyun 에너지공학과
  • Research Interests Carbon dioxide reduction; Water splitting; Energy conversion; Electrochemistry; Materials Science
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Appears in Collections:
Department of Energy Science and Engineering Renewable Energy Conversion Materials Laboratory 1. Journal Articles

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