| Literature DB >> 33522009 |
Leily Majidi1, Alireza Ahmadiparidari1, Nannan Shan2, Saurabh N Misal1, Khagesh Kumar3, Zhehao Huang4, Sina Rastegar1, Zahra Hemmat1, Xiaodong Zou4, Peter Zapol2, Jordi Cabana3, Larry A Curtiss2, Amin Salehi-Khojin1.
Abstract
Metal-organic frameworks (MOFs) are promising materials for electrocatalysis; however, lack of electrical conductivity in the majority of existing MOFs limits their effective utilization in the field. Herein, an excellent catalytic activity of a 2D copper (Cu)-based conductive MOF, copper tetrahydroxyquinone (CuTHQ), is reported for aqueous CO2 reduction reaction (CO2 RR) at low overpotentials. It is revealed that CuTHQ nanoflakes (NFs) with an average lateral size of 140 nm exhibit a negligible overpotential of 16 mV for the activation of this reaction, a high current density of ≈173 mA cm-2 at -0.45 V versus RHE, an average Faradaic efficiency (F.E.) of ≈91% toward CO production, and a remarkable turnover frequency as high as ≈20.82 s-1 . In the low overpotential range, the obtained CO formation current density is more than 35 and 25 times higher compared to state-of-the-art MOF and MOF-derived catalysts, respectively. The operando Cu K-edge X-ray absorption near edge spectroscopy and density functional theory calculations reveal the existence of reduced Cu (Cu+ ) during CO2 RR which reversibly returns to Cu2+ after the reaction. The outstanding CO2 catalytic functionality of conductive MOFs (c-MOFs) can open a way toward high-energy-density electrochemical systems.Entities:
Keywords: CO2 reduction reaction; conductive metal-organic frameworks; electrocatalysis
Year: 2021 PMID: 33522009 DOI: 10.1002/adma.202004393
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849