| Literature DB >> 31427572 |
Zhengkun Yang1, Bingxu Chen2, Wenxing Chen3, Yunteng Qu1, Fangyao Zhou1, Changming Zhao1, Qian Xu4, Qinghua Zhang5, Xuezhi Duan6, Yuen Wu7,8.
Abstract
Single-atom metal catalysts have sparked tremendous attention, but direct transformation of cheap and easily obtainable bulk metal oxide into single atoms is still a great challenge. Here we report a facile and versatile gas-transport strategy to synthesize isolated single-atom copper sites (Cu ISAS/NC) catalyst at gram levels. Commercial copper (I) oxide powder is sublimated as mobile vapor at nearly melting temperature (1500 K) and subsequently can be trapped and reduced by the defect-rich nitrogen-doped carbon (NC), forming the isolated copper sites catalyst. Strikingly, this thermally stable Cu ISAS/NC, which is obtained above 1270 K, delivers excellent oxygen reduction performance possessing a recorded half-wave potential of 0.92 V vs RHE among other Cu-based electrocatalysts. By varying metal oxide precursors, we demonstrate the universal synthesis of different metal single atoms anchored on NC materials (M ISAS/NC, where M refers to Mo and Sn). This strategy is readily scalable and the as-prepared sintering-resistant M ISAS/NC catalysts hold great potential in high-temperature applications.Entities:
Year: 2019 PMID: 31427572 PMCID: PMC6700197 DOI: 10.1038/s41467-019-11796-4
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Synthesis and structural characterizations. a Scheme of the formation isolated copper sites (Cu ISAS/N-C) catalyst. b aberration-corrected high-angle annular dark-field scanning transmission electron microscope (AC HAADF-STEM) image of NC. c AC HAADF-STEM image of Cu ISAS/NC. d Corresponding EDS mapping of Cu ISAS/NC. e Cu K-edge X-ray absorption near-edge structure (XANES) and f FT k3-weighted extended X-ray absorption fine structure (EXAFS) spectra of Cu ISAS/NC and the reference samples. g Corresponding FT-EXAFS fitting curves of Cu ISAS/NC
Fig. 2Electrocatalytic oxygen reduction and Zn-air battery performances. a Linear sweep voltammetry (LSV) curves of NC, Cu ISAS/NC and Pt/C catalysts in 0.1 M KOH solution with a sweep rate of 10 mV s−1 and rotation rate of 1600 rpm. b half-wave potential (E1/2) and kinetic current density (JK) of different catalysts. c Polarization and corresponding power density plots of Cu ISAS/NC and Pt/C-based Zn-air batteries. d The specific capacity of Cu ISAS/NC and Pt/C-based Zn-air batteries at 50 mA cm−2. (Inset: a photograph showing light-emitting diode panel powered by three Cu ISAS/NC-based Zn–air batteries)
Fig. 3DFT calculation. Top view of the optimized structures of the models of a Cu-N3, b Cu-N3-C and c Cu-N3-V. Gray, blue and orange represent C, N, and Cu atoms, respectively. d Free energy diagram for ORR process on these three models at the equilibrium potential (U = 0.40 V vs. NHE or U = 1.23 V vs RHE) at pH = 14. The corresponding charge density difference of e Cu-N3 and f Cu-N3-V, in which light blue and yellow isosurfaces denote a decrease and increase of 0.005 e/Å3 for electronic density, respectively
Fig. 4Atomic structural characterizations AC HAADF-STEM images of a Cu ISAS/N-CNTs, b Cu ISAS/N-rGO, c Mo ISAS/NC, and d Sn ISAS/NC catalysts