Efficient CO 2 reduction to CO + CH 4 at CuCo@NC cathode integrated with CH 3 OH oxidation to methylal at Pt anode in an ionic liquid electrolyte
Electroreduction of CO 2 to energy chemicals in aqueous electrolytes is usually limited by logy OER at the anode and competing HER at the cathode. An N-doped carbon encapsulated Cu–CoO composite (CuCo@NC) fabricated by the facile pyrolysis of Cu and Co salts and melamine mixture was used as a cathod...
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Veröffentlicht in: | New journal of chemistry 2024-05, Vol.48 (21), p.9672-9679 |
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Hauptverfasser: | , , , , , |
Format: | Artikel |
Sprache: | eng |
Online-Zugang: | Volltext |
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Zusammenfassung: | Electroreduction of CO
2
to energy chemicals in aqueous electrolytes is usually limited by logy OER at the anode and competing HER at the cathode. An N-doped carbon encapsulated Cu–CoO composite (CuCo@NC) fabricated by the facile pyrolysis of Cu and Co salts and melamine mixture was used as a cathode for CO
2
reduction to CO and CH
4
, coupled with the anodic oxidation of CH
3
OH to dimethoxymethane in an ionic liquid-methanol medium to boost the anode reaction. The electrolytic system exhibits efficient redox activity with a higher average FE
DMM
(58.7%) within 48 h and high instantaneous FE
C1
(99.1%) for CO + CH
4
at 24 h. Simultaneous production of the high-value chemicals DMM and CO + CH
4
in an electrolysis cell is achieved. The surface composition and structure of this composite with higher saturation magnetization, specifically the contribution of the Cu, CuO
x
, and CoO
x
crystallines to the catalytic performance of CO
2
eRR and magnetic properties, were explored. The catalytic system achieves high activity within 72 h of continuous electrolysis, and the electrode and ionic liquid can remain intact after being used three times, indicating the high operational stability of the CO
2
eRR system. |
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ISSN: | 1144-0546 1369-9261 |
DOI: | 10.1039/D4NJ00762J |