Proton‐Coupled Electron Transfer on Cu2O/Ti3C2Tx MXene for Propane (C3H8) Synthesis from Electrochemical CO2 Reduction

Author:

Kim Jun Young1,Hong Won Tae1,Phu Thi Kim Cuong1,Cho Seong Chan1,Kim Byeongkyu1,Baeck Unbeom1,Oh Hyung‐Suk2,Koh Jai Hyun2,Yu Xu3,Choi Chang Hyuck45,Park Jongwook6,Lee Sang Uck1ORCID,Chung Chan‐Hwa1,Kim Jung Kyu17ORCID

Affiliation:

1. School of Chemical Engineering Sungkyunkwan University (SKKU) 2066, Seobu‐ro, Jangan‐gu Suwon 16419 Republic of Korea

2. Clean Energy Research Center Korea Institute of Science and Technology (KIST) Hwarang‐ro 14‐gil 5, Seongbuk‐gu Seoul 02792 Republic of Korea

3. School of Chemistry and Chemical Engineering Yangzhou University Yangzhou 225002 P. R. China

4. Department of Chemistry Pohang University of Science and Technology (POSTECH) Pohang 37673 Republic of Korea

5. Institute of Convergence Research and Education in Advanced Technology (I‐CREATE) Yonsei University Seoul 03722 Republic of Korea

6. Integrated Engineering Department of Chemical Engineering Kyung Hee University Gyeonggi 17104 South Korea

7. SKKU Advanced Institute of Nano Technology (SAINT) Sungkyunkwan University 2066 Seobu‐ro Suwon 16419 Republic of Korea

Abstract

AbstractElectrochemical CO2 reduction reaction (CO2RR) to produce value‐added multi‐carbon chemicals has been an appealing approach to achieving environmentally friendly carbon neutrality in recent years. Despite extensive research focusing on the use of CO2 to produce high‐value chemicals like high‐energy‐density hydrocarbons, there have been few reports on the production of propane (C3H8), which requires carbon chain elongation and protonation. A rationally designed 0D/2D hybrid Cu2O anchored‐Ti3C2Tx MXene catalyst (Cu2O/MXene) is demonstrated with efficient CO2RR activity in an aqueous electrolyte to produce C3H8. As a result, a significantly high Faradaic efficiency (FE) of 3.3% is achieved for the synthesis of C3H8 via the CO2RR with Cu2O/MXene, which is ≈26 times higher than that of Cu/MXene prepared by the same hydrothermal process without NH4OH solution. Based on in‐situ attenuated total reflection‐Fourier transform infrared spectroscopy (ATR‐FTIR) and density functional theory (DFT) calculations, it is proposed that the significant electrocatalytic conversion originated from the synergistic behavior of the Cu2O nanoparticles, which bound the *C2 intermediates, and the MXene that bound the *CO coupling to the C3 intermediate. The results disclose that the rationally designed MXene‐based hybrid catalyst facilitates multi‐carbon coupling as well as protonation, thereby manipulating the CO2RR pathway.

Funder

Gyeonggi-do Regional Research Center

Korea Electric Power Corporation

Ministry of Science and ICT, South Korea

Publisher

Wiley

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