| Literature DB >> 32541875 |
Run Shi1, Jiahao Guo1,2, Xuerui Zhang1,2, Geoffrey I N Waterhouse3, Zhaojun Han4, Yunxuan Zhao1,2, Lu Shang1, Chao Zhou1, Lei Jiang5, Tierui Zhang6,7.
Abstract
The electrochemicEntities:
Year: 2020 PMID: 32541875 PMCID: PMC7295780 DOI: 10.1038/s41467-020-16847-9
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Structural characterization of the Au/C electrode.
a SEM image of a PTFE-modified carbon fibre GDL, scale bar: 100 μm. b SEM image of the electrode after coating with an Au/C NPs film, scale bar: 100 μm. Insets in (a–b) show photographs of water droplets on each electrode. c Cross-sectional SEM image of the Au/C electrode, scale bar: 500 nm. d Schematic illustration of the TPC electrochemical cathode. e SEM image of the Au/C electrode at high magnification, scale bar: 50 nm. f Schematic illustration of the gas–liquid–solid three-phase interfaces of a TPC system for electrochemical CO2RR. Source data are provided as a Source data file.
Fig. 2Effect of interfacial wettability on electrochemical CO2RR performance.
a Plot of average water droplet contact angles on different Au/C electrodes and photographs of water droplets on each electrode. b Geometric jCO and CO Faradaic efficiency of Au/C electrodes with various water CAs at −0.3, −0.4 and −0.5 V vs. RHE. Error bars represent the standard deviation of three independent experiments. c Cathode chronopotentiometry tests for Au/C-F, Au/C-P-0.5 and Au/C-P-2.5 in 1 M KOH at a constant current density of 100 mA cm−2 (without iR correction). Source data are provided as a Source data file.
Fig. 3Characterization of gas–liquid–solid interfaces.
a–c Confocal 3D reconstruction images of Au/C-F, Au/C-P-0.5 and Au/C-P-2.5, respectively. d Cross-sectional fluorescence images scanned from labelled regions (black lines) in (a–c), scale bar: 10 μm. From top to bottom are Au/C-F, Au/C-P-0.5 and Au/C-P-2.5, respectively. e Corresponding z axis fluorescence intensity line scans of labelled regions (yellow arrows) in (d). f Statistics of fluorescence decay distance from entire area of the cross-sectional fluorescence images in (d). g Schematic illustration of interfacial structures of Au/C-F (top), Au/C-P-0.5 (middle) and Au/C-P-2.5 (bottom), respectively. Source data are provided as a Source data file.
Fig. 4Electrochemical CO2RR over different interfacial structures.
a LSV of Au/C-P-0.5 electrodes in 1 M KOH for the TPC systems and in CO2-saturated 1 M KHCO3 for the DPC system. b CO production Tafel plot of Au/C-P-0.5 electrodes over exposed TPC, immersed TPC and DPC systems. c Geometric jCO of Au/C-P-0.5 over the three systems versus applied cathodic potentials. Error bars represent the standard deviation of three independent experiments. d Schematic illustration of in situ fluorescence electrochemical spectroscopy measurements. e Colour-modified SEM image of HPTS-labelled gas diffusion layer. Bright green is the CO2-sensitive HPTS gel immobilized on the surface of carbon fibres, scale bar: 20 μm. f Time-dependent [CO2]i during CO2RR at 50 mA cm−2. Time = 0 s represents the start of electrolysis. Source data are provided as a Source data file.
Fig. 5Effect of CO2 transportation on electrochemical CO2RR.
a [CO2]i versus geometric current density showing the best CO2 concentration stability is achieved in the exposed TPC system, especially at high current densities. b Time-dependent [CO2]i recovery after stopping electrolysis. Source data are provided as a Source data file.