| Literature DB >> 30881645 |
Jian-Xiang Wu1, Shu-Zhen Hou1, Xiang-Da Zhang1, Ming Xu1, Hua-Fei Yang1, Pei-Sheng Cao1, Zhi-Yuan Gu1.
Abstract
An efficient and selective Cu catalyst for CO2 electroreduction is highly desirable since current catalysts suffer from poor selectivity towards a series of products, such as alkenes, alcohols, and carboxylic acids. Here, we used copper(ii) paddle wheel cluster-based porphyrinic metal-organic framework (MOF) nanosheets for electrocatalytic CO2 reduction and compared them with CuO, Cu2O, Cu, a porphyrin-Cu(ii) complex and a CuO/complex composite. Among them, the cathodized Cu-MOF nanosheets exhibit significant activity for formate production with a faradaic efficiency (FE) of 68.4% at a potential of -1.55 V versus Ag/Ag+. Moreover, the C-C coupling product acetate is generated from the same catalyst together with formate at a wide voltage range of -1.40 V to -1.65 V with the total liquid product FE from 38.8% to 85.2%. High selectivity and activity are closely related to the cathodized restructuring of Cu-MOF nanosheets. With the combination of X-ray diffraction, X-ray photoelectron spectroscopy, high resolution transmission electron microscopy and Fourier transform infrared spectroscopy, we find that Cu(ii) carboxylate nodes possibly change to CuO, Cu2O and Cu4O3, which significantly catalyze CO2 to formate and acetate with synergistic enhancement from the porphyrin-Cu(ii) complex. This intriguing phenomenon provides a new opportunity for the rational design of high-performance Cu catalysts from pre-designed MOFs.Entities:
Year: 2018 PMID: 30881645 PMCID: PMC6385528 DOI: 10.1039/c8sc04344b
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1(a) Crystal structure of Cu2(CuTCPP) nanosheets along the c axis. Red is O, blue is N, grey is C and cyan is Cu; (b) CO2 electrochemical reduction system with Cu2(CuTCPP) nanosheets as the catalyst.
Fig. 1(a) XRD pattern of Cu2(CuTCPP) nanosheets; (b) AFM image of the nanosheets, inset: the thickness curve; (c) SEM image of Cu2(CuTCPP) nanosheets; (d) TEM image of Cu2(CuTCPP) nanosheets.
Fig. 2CO2RR performance in CO2-saturated CH3CN solution with 1 M H2O and 0.5 M EMIMBF4. (a) Faradaic efficiencies of Cu2(CuTCPP) nanosheets; (b) faradaic efficiencies of Cu2(CuTCPP) nanosheets at different times; (c) faradaic efficiencies of pre-electrolyzed Cu2(CuTCPP) nanosheets; and (d) total and partial current densities for CO2RR products on pre-electrolyzed Cu2(CuTCPP).
Fig. 3Faradaic efficiencies for formation of different products in the CO2RR with different catalysts: (a) Cu, (b) CuTCPP, (c) CuO, and (d) Cu2O.
Fig. 4(a) XRD of Cu2(CuTCPP) nanosheets on a FTO electrode with different reaction times ([black circle] Cu(HCOO)2; ◆ Cu4O3; ▲ Cu(OH)2; [blacktriangledown] CuO; ★ Cu2O); (b) HRTEM after 5 h reaction; (c) Cu 2p XPS spectra and (d) O 1s XPS spectra of Cu2(CuTCPP) on FTO before and after 5 h reaction. All potentials were set at –1.55 V vs. Ag/Ag+.