• Journal of Inorganic Materials
  • Vol. 36, Issue 9, 901 (2021)
Yunpeng LIU1, Weifan SHENG1、2, and Zhonghua WU1、2、*
Author Affiliations
  • 11. Beijing Synchrotron Radiation Facility, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, China
  • 22. School of Nuclear Science and Technology, University of Chinese Academy of Sciences, Beijing 100049, China
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    DOI: 10.15541/jim20200703 Cite this Article
    Yunpeng LIU, Weifan SHENG, Zhonghua WU. Synchrotron Radiation and Its Applications Progress in Inorganic Materials[J]. Journal of Inorganic Materials, 2021, 36(9): 901 Copy Citation Text show less
    In situ high pressure XRD patterns of (BA)4AgBiBr8 and schematic illustration of crystal structure changes[33]
    1. In situ high pressure XRD patterns of (BA)4AgBiBr8 and schematic illustration of crystal structure changes[33]
    Relevant SR-XRD patterns of β-CsPbI3[11]
    2. Relevant SR-XRD patterns of β-CsPbI3[11]
    In-situ high temperature XRD patterns of n-type (a) and p-type (b) SnSe[39]
    3. In-situ high temperature XRD patterns of n-type (a) and p-type (b) SnSe[39]
    High-resolution SR-XRD pattern of CaCO3·1/2H2O and its crystal structure model[9]
    4. High-resolution SR-XRD pattern of CaCO3·1/2H2O and its crystal structure model[9]
    Sketch map of the diffusion-coalescence mechanism of Ag nanoparticles[43]
    5. Sketch map of the diffusion-coalescence mechanism of Ag nanoparticles[43]
    Sketch of the growth process of PVP-coated silver nanoparticles[45]
    6. Sketch of the growth process of PVP-coated silver nanoparticles[45]
    Time-resolved SAXS results and schematic illustration of the formation mechanism for NiP[46]
    7. Time-resolved SAXS results and schematic illustration of the formation mechanism for NiP[46]
    In-situ SAXS technique applied on the study for the orientation of suspended Na2Ti3O7 nanofiber induced by applied electric field[47]
    8. In-situ SAXS technique applied on the study for the orientation of suspended Na2Ti3O7 nanofiber induced by applied electric field[47]
    Structural evolution of Fe3O4@SiO2 nanorods under magnetic field studied by SAXS[48]
    9. Structural evolution of Fe3O4@SiO2 nanorods under magnetic field studied by SAXS[48]
    Experimental evidence for the stable presence of nanoparticles in molten inorganic salts provided by SAXS technique[49]
    10. Experimental evidence for the stable presence of nanoparticles in molten inorganic salts provided by SAXS technique[49]
    In situ XAFS measurements of the 1cFe-Pt/SiO2 catalyst and its schematic illustration of catalytic mechanism[54]
    11. In situ XAFS measurements of the 1cFe-Pt/SiO2 catalyst and its schematic illustration of catalytic mechanism[54]
    XAFS spectra of NaFePO4 and schematic illustrations for Na diffusive mechanism[55]
    12. XAFS spectra of NaFePO4 and schematic illustrations for Na diffusive mechanism[55]
    Fitting of the Fourier transforms of k3 weighted EXAFS oscillations at Se K-edge of SnS1-xSex[57]
    13. Fitting of the Fourier transforms of k3 weighted EXAFS oscillations at Se K-edge of SnS1-xSex[57]
    Electronic structure and interfacial interaction of 2D Sn/Bi2Te3 material studied by SR-XRS[59]
    14. Electronic structure and interfacial interaction of 2D Sn/Bi2Te3 material studied by SR-XRS[59]
    Electronic structure of p-SnSe resolved by ARPES[60]
    15. Electronic structure of p-SnSe resolved by ARPES[60]
    Persistent luminescence properties of CaSi10-nAl2+nOnN16-n:xEu2+ material studied by VUV-UV spectra[61]
    16. Persistent luminescence properties of CaSi10-nAl2+nOnN16-n:xEu2+ material studied by VUV-UV spectra[61]
    Structural defects and formation process of Zn4Si2O7(OH)2·H2O particles studied by SR-XRI[66]
    17. Structural defects and formation process of Zn4Si2O7(OH)2·H2O particles studied by SR-XRI[66]
    3D element distribution of particles analyzed by X-ray tomography technique[67]
    18. 3D element distribution of particles analyzed by X-ray tomography technique[67]
    3D distributions of chemical components and valence states of LiNi0.4Mn0.4Co0.2O2 battery particles studied by X-ray spectro-microscopy[68]
    19. 3D distributions of chemical components and valence states of LiNi0.4Mn0.4Co0.2O2 battery particles studied by X-ray spectro-microscopy[68]
    Yunpeng LIU, Weifan SHENG, Zhonghua WU. Synchrotron Radiation and Its Applications Progress in Inorganic Materials[J]. Journal of Inorganic Materials, 2021, 36(9): 901
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