| Literature DB >> 30872473 |
Pengzuo Chen1,2,3, Nan Zhang4, Sibo Wang1,2,3, Tianpei Zhou1,2,3, Yun Tong1,2,3, Chengcheng Ao4, Wensheng Yan4, Lidong Zhang4, Wangsheng Chu4, Changzheng Wu5,2,3, Yi Xie1,2,3.
Abstract
Electrocatalytic N2 reduction reaction (Entities:
Keywords: NH3 electrosynthesis; bridging bonds; cobalt sulfides; general strategy; interfacial engineering
Year: 2019 PMID: 30872473 PMCID: PMC6452708 DOI: 10.1073/pnas.1817881116
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205
Fig. 1.Characterization of CoS/NS-G hybrids. (A) TEM image and corresponding HRTEM image (Inset) of CoS2/NS-G. (B) Elemental mapping images of the CoS2/NS-G hybrid. High-resolution XPS spectra of Co 2p (C) and S 2p (D) for the CoS2/NS-G and CoS/NS-G hybrid products.
Fig. 2.Local chemical configuration and electronic state of CoS/NS-G hybrid catalysts. (A) Co L-edge XANES spectra of the CoS/NS-G and CoS2/NS-G hybrids. S L-edge (B), C K-edge (C), and N K-edge (D) XANES spectra of CoS/NS-G, CoS2/NS-G, and NS-G materials.
Fig. 3.Electrochemical characterization of CoS/NS-G hybrids. (A) Linear sweep voltammetry tests of CoS2/NS-G in Ar- and N2-saturated 0.05 M H2SO4 under ambient conditions. Polarization curves (B) and corresponding Nyquist plots (C) of different catalysts in N2-saturated 0.05 M H2SO4 solution. (D) Chronoamperometric results of the CoS2/NS-G hybrid at the different potentials.
Fig. 4.Catalytic performance of CoS/NS-G during the electrocatalytic N2 reduction process. (A) NH3 yield rate and Faradaic efficiency of CoS2/NS-G at each given potential. (B) NMR spectra of 1H for the electrolytes after NRR test by using 15N2 and 14N2 as feeding gas. (C) Comparison of NH3 yield rate at −0.2 V and particle size for CoS2/NS-G hybrids which was synthesized by different amounts of cobalt salt. (D) Faradaic efficiency of well-developed NRR electrocatalysts at room temperature and atmospheric pressure ().