• Journal of Semiconductors
  • Vol. 41, Issue 9, 091706 (2020)
Hao Fu and Aiwei Tang
Author Affiliations
  • Key Laboratory of Luminescence and Optical Information, Ministry of Education, School of Science, Beijing Jiaotong University, Beijing 100044, China
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    DOI: 10.1088/1674-4926/41/9/091706 Cite this Article
    Hao Fu, Aiwei Tang. Rational design of multinary copper chalcogenide nanocrystals for photocatalytic hydrogen evolution[J]. Journal of Semiconductors, 2020, 41(9): 091706 Copy Citation Text show less
    (Color online) Schematic illustration and TEM images of the product evolution from Cu1.94S NCs to different types of heterostructured and alloyed NCs[53].
    Fig. 1. (Color online) Schematic illustration and TEM images of the product evolution from Cu1.94S NCs to different types of heterostructured and alloyed NCs[53].
    TEM images and morphology diagrams of 1D, quasi-2D and 2D CuGaS2 NCs[64].
    Fig. 2. TEM images and morphology diagrams of 1D, quasi-2D and 2D CuGaS2 NCs[64].
    (a) TEM images and (b) STEM-EDS elemental mapping images of the L-shaped Cu–Ga–Zn–S NCs. (c) XRD patterns of the products obtained at different reaction time. (d–h) TEM images of wurtzite Cu–Ga–Zn–S NCs synthesized at 240 °C for different reaction time: (d) 7 min, (e) 23 min, (f) 45 min, (g) 60 min, and (h) 120 min[66].
    Fig. 3. (a) TEM images and (b) STEM-EDS elemental mapping images of the L-shaped Cu–Ga–Zn–S NCs. (c) XRD patterns of the products obtained at different reaction time. (d–h) TEM images of wurtzite Cu–Ga–Zn–S NCs synthesized at 240 °C for different reaction time: (d) 7 min, (e) 23 min, (f) 45 min, (g) 60 min, and (h) 120 min[66].
    (Color online) (a) The hydrogen production rate of the Cu1.94S NCs, CuInS2 and CuGaS2 alloyed NCs. (b) The hydrogen production rate of Cu1.94S NCs, Cu1.94S–ZnS, Cu1.94S–CdS and Cu1.94S–MnS heterostructured NCs. (c) The energy level diagram of Cu1.94S NCs (black), CuInS2 alloyed NCs (red), CuGaS2 alloyed NCs (blue), Cu1.94S–ZnS (pink), Cu1.94S–CdS (green) and Cu1.94S–MnS heterostructured NCs (orange)[53].
    Fig. 4. (Color online) (a) The hydrogen production rate of the Cu1.94S NCs, CuInS2 and CuGaS2 alloyed NCs. (b) The hydrogen production rate of Cu1.94S NCs, Cu1.94S–ZnS, Cu1.94S–CdS and Cu1.94S–MnS heterostructured NCs. (c) The energy level diagram of Cu1.94S NCs (black), CuInS2 alloyed NCs (red), CuGaS2 alloyed NCs (blue), Cu1.94S–ZnS (pink), Cu1.94S–CdS (green) and Cu1.94S–MnS heterostructured NCs (orange)[53].
    (Color online) (a) The energy level diagrams of 1D, quasi-2D and 2D CuGaS2 NCs. (b) The photocatalytic hydrogen production rates of 1D, quasi-2D and 2D CuGaS2NCs.
    Fig. 5. (Color online) (a) The energy level diagrams of 1D, quasi-2D and 2D CuGaS2 NCs. (b) The photocatalytic hydrogen production rates of 1D, quasi-2D and 2D CuGaS2NCs.
    (Color online) Schematic models of the (a) (001) surface and (b) (100) surface of stimulated wurtzite CuGaS2 after geometry optimization. Work function for the (c) CuGaS2 (001) surface and (d) (100) surface. The calculated PDOS for (e) CuGaS2 (001) and (f) (100) surfaces, where the PDOS contains the total layer surface, top layer surface and bottom layer surface for simulated every surface[64].
    Fig. 6. (Color online) Schematic models of the (a) (001) surface and (b) (100) surface of stimulated wurtzite CuGaS2 after geometry optimization. Work function for the (c) CuGaS2 (001) surface and (d) (100) surface. The calculated PDOS for (e) CuGaS2 (001) and (f) (100) surfaces, where the PDOS contains the total layer surface, top layer surface and bottom layer surface for simulated every surface[64].
    Photocatalytic hydrogen evolution of binary Cu31S16NCs, ternary CuGaS2 NCs and quaternary L-shaped Cu–Ga–Zn–S nanorods[66].
    Fig. 7. Photocatalytic hydrogen evolution of binary Cu31S16NCs, ternary CuGaS2 NCs and quaternary L-shaped Cu–Ga–Zn–S nanorods[66].
    (Color online) Cycling tests of hydrogen production for (a) Cu1.94S–CdS (red) and Cu1.94S (black) NCs and (b) L-shaped Cu–Ga–Zn–S nanorods under simulated solar illumination[66].
    Fig. 8. (Color online) Cycling tests of hydrogen production for (a) Cu1.94S–CdS (red) and Cu1.94S (black) NCs and (b) L-shaped Cu–Ga–Zn–S nanorods under simulated solar illumination[66].
    Hao Fu, Aiwei Tang. Rational design of multinary copper chalcogenide nanocrystals for photocatalytic hydrogen evolution[J]. Journal of Semiconductors, 2020, 41(9): 091706
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