Page 41 - 《精细化工》2022年第12期
P. 41

第 12 期                      张琴琴,等:  钙钛矿型光催化材料的应用现状及进展                                   ·2407·


                 nanocrystalline LaFeO 3: An efficient sol-gel auto-combustion assisted   visible light photocatalytic NO removal[J]. Chemical Engineering
                 visible light  responsive photocatalyst for water decomposition[J].   Journal, 2021, 406: 126740.
                 International Journal of Hydrogen Energy, 2010, 35(22): 12161-   [68]  PENG K, FU  L J,  YANG  H M,  et al. Perovskite LaFeO 3/
                 12168.                                            montmorillonite nanocomposites: Synthesis, interface characteristics
            [51]  WIRANWETCHAYAN O, PROMNOPAS S, PHADUNGDHITIDHADA   and enhanced photocatalytic  activity[J]. Scientific Reports, 2016,
                 S,  et al. Characterization of perovskite LaFeO 3 synthesized by   6(1): 1-10.
                 microwave plasma method for photocatalytic applications[J]. Ceramics   [69]  CHEN X, ZHANG M,  QIN H  W,  et al. Synergy effect between
                 International, 2019, 45(4): 4802-4809.            adsorption and heterogeneous photo-Fenton-like catalysis on
            [52]  LI H Y, GONG H M, HAO X Q, et al. Phosphating MIL-53 (Fe) as   LaFeO 3/lignin-biochar composites for high efficiency degradation of
                 cocatalyst  modified porous NiTiO 3 for  photocatalytic hydrogen   ofloxacin  under visible light[J]. Separation and  Purification
                 production[J]. Renewable Energy, 2022, 188: 132-144.     Technology, 2022, 280: 119751.
            [53]  SOLTANI  T, ZHU X, YAMAMOTO  A,  et al. Effect of transition   [70]  WANG X B, WANG  Y,  GAO W  Y,  et al. Polarization-sensitive
                 metal oxide cocatalyst on the photocatalytic  activity of Ag loaded   halide perovskites for polarized luminescence and detection: Recent
                 CaTiO 3 for CO 2 reduction with water and water splitting[J]. Applied   advances and perspectives[J]. Advanced Materials, 2021, 33(12):
                 Catalysis B: Environmental, 2021, 286: 119899.     2003615.
            [54]  ZHAO X X, GUAN J R, LI J Z, et al. CeO 2/3D g-C 3N 4 heterojunction   [71]  MISHRA R,  BERA S, CHATTERJEE R,  et al. A review on
                 deposited with  Pt cocatalyst for enhanced photocatalytic CO 2   Z/S-scheme heterojunction  for photocatalytic applications  based on
                 reduction[J]. Applied Surface Science, 2021, 537: 147891.     metal halide perovskite materials[J]. Applied Surface Science
            [55]  CHEN K,  ZHAO X,  ZHANG X  J,  et al. Enhanced photocatalytic   Advances, 2022, 9: 100241.
                 CO 2 reduction by  constructing an In 2O 3-CuO heterojunction with   [72]  WANG M  Y,  ZUO Y P, WANG J L,  et al. Remarkably enhanced
                 CuO as a cocatalyst[J]. Catalysis Science and Technology, 2021,   hydrogen generation of organolead halide perovskites  via
                 11(8): 2713-2717.                                 piezocatalysis and photocatalysis[J].  Advanced Energy Materials,
            [56]  XU Y, LI  Y G, WANG P,  et al. Highly efficient  dual cocatalyst-   2019, 9(37): 1901801.
                 modified TiO 2 photocatalyst: RGO as electron-transfer mediator and   [73]  HUYNH K  A,  NGUYEN D  L T,  NGUYEN V H,  et al. Halide
                 MoS x as H 2-evolution active site[J]. Applied Surface Science, 2018,   perovskite photocatalysis: Progress and perspectives[J]. Journal of
                 430: 176-183.                                     Chemical Technology and Biotechnology, 2020, 95(10): 2579-2596.
            [57]  WANG M, YE M,  IOCOZZIA  J,  et al. Plasmon-mediated solar   [74]  MONIRUDDIN M, ILYASSOV B, ZHAO X, et al. Recent progress
                 energy conversion  via photocatalysis in noble metal/semiconductor   on perovskite materials in photovoltaic and water splitting
                 composites[J]. Advanced Science, 2016, 3(6): 1600024.     applications[J]. Materials Today Energy, 2018, 7: 246-259.
            [58]  CARRASCO-JAIM O A, HURRTA-FLORES A M,  TORRES-   [75]  GUAN  Z H, WU  Y Q, WANG P,  et al. Perovskite photocatalyst
                 MARTINEZAM L M, et al. Fast in-situ photodeposition of Ag and   CsPbBr 3–xI x with a bandgap funnel structure for H 2 evolution under
                 Cu nanoparticles onto AgTaO 3 perovskite for an enhanced   visible light[J]. Applied Catalysis B: Environmental, 2019, 245:
                 photocatalytic hydrogen generation[J]. International Journal of   522-527.
                 Hydrogen Energy, 2020, 45(16): 9744-9757.     [76]  WU Y Q, WANG P, ZHU X L, et al. Composite of CH 3NH 3PbI 3 with
            [59]  LEE J H, JO D  Y, CHOUNG J W,  et al.  Roles of noble  metals   reduced graphene oxide as a highly efficient and stable visible-light
                 (M=Ag, Au, Pd, Pt and Rh) on CeO 2 in enhancing activity toward   photocatalyst for  hydrogen evolution in aqueous HI solution[J].
                 soot oxidation:  Active oxygen species  and  DFT calculations[J].   Advanced Materials, 2018, 30(7): 1704342.
                 Journal of Hazardous Materials, 2021, 403: 124085.     [77]  EVANS H  A, MAO L, SESHADRI R,  et al. Layered  double
            [60]  JIA T, WU J, XIAO Y X,  et al. Self-grown oxygen vacancies-rich   perovskites[J]. Annual Review of Materials Research, 2021, 51:
                 CeO 2/BiOBr Z-scheme heterojunction decorated with rGO as charge   351-380.
                 transfer channel for enhanced photocatalytic oxidation of elemental   [78]  TAO Q L, XU P C, LI M G, et al. Machine learning for perovskite
                 mercury[J]. Journal of Colloid  and Interface Science, 2021, 587:   materials design and discovery[J]. NPJ Computational  Materials,
                 402-416.                                          2021, 7(1): 1-18.
            [61]  QIAN J,  XUE Y, AO Y H,  et al. Hydrothermal synthesis of   [79]  WU D F, TAO Y, HUANG Y  Y,  et al. High visible-light
                 CeO 2/NaNbO 3 composites with enhanced photocatalytic performance   photocatalytic performance of stable  lead-free Cs 2AgBiBr 6 double
                 [J]. Chinese Journal of Catalysis, 2018, 39(4): 682-692.     perovskite nanocrystals[J]. Journal of Catalysis, 2021, 397: 27-35.
            [62]  MA Z, WANG Y, LU Y, et al. Tackling challenges in perovskite-type   [80]  WANG H S, KONG H, WANG J, et al. Theoretical thermodynamic
                 metal oxide photocatalysts[J]. Energy  Technology, 2021, 9(5):   efficiency limit of isothermal solar fuel generation from H 2O/CO 2
                 2001019.                                          splitting in membrane reactors[J]. Molecules, 2021, 26(22): 7047.
            [63]  TASLEEM S,  TAHIR M. Current trends in strategies to improve   [81]  CHEN P F, ONG W J, SHI Z H, et al. Pb-Based halide perovskites:
                 photocatalytic performance of perovskites materials for solar to   Recent advances in photo (electro) catalytic applications and looking
                 hydrogen production[J]. Renewable and Sustainable Energy Reviews,   beyond[J]. Advanced Functional Materials, 2020, 30(30): 1909667.
                 2020, 132: 110073.                            [82]  WU B, NING W H, XU Q, et al. Strong self-trapping by deformation
            [64]  AHMADI M, DORRAJI M S S, HAJIMIRI I, et al. The main role of   potential limits photovoltaic performance in bismuth double
                 CuO loading against electron-hole recombination  of SrTiO 3:   perovskite[J]. Science Advances, 2021, 7(8): eabd3160.
                 Improvement and investigation of photocatalytic activity, modeling   [83]  LI X Y,  YAO Z  F, ZHANG  L  Y,  et al. Generation of oxygen
                 and optimization by response surface  methodology[J]. Journal of   vacancies on Sr 2FeMoO 6 to improve its photocatalytic performance
                 Photochemistry and Photobiology A: Chemistry, 2021, 404: 112886.     through a novel preparation method involving pH adjustment and use
            [65]  LI D, ZHAO H P, LI L H, et al. Graphene-sensitized perovskite oxide   of surfactant[J]. Applied Surface Science, 2019, 480: 262-275.
                 monolayer nanosheets for efficient photocatalytic reaction[J].   [84]  ZHAO H, LIU J, LI C F,  et al. Meso-microporous  nanosheet-
                 Advanced Functional Materials, 2018, 28(52): 1806284.     constructed 3DOM perovskites for remarkable photocatalytic hydrogen
            [66]  LI X Z, YAN X Y, LU X W, et al. Photo-assisted selective catalytic   production[J]. Advanced Functional Materials, 2022: 2112831.
                 reduction of NO by  Z-scheme natural clay based photocatalyst:   [85]  GUO Q Y, WU J H, YANG Y Q, et al. Low-temperature processed
                 Insight into the effect of graphene coupling[J]. Journal of Catalysis,   rare-earth doped brookite TiO 2 scaffold for UV stable, hysteresis-free
                 2018, 357: 59-68.                                 and high-performance perovskite solar cells[J]. Nano Energy, 2020,
            [67]  HUO B J, YANG J, BIAN Y,  et al. Amino-mediated  anchoring of   77: 105183.
                 FAPbBr 3 perovskite quantum dots on silica spheres for efficient   [86]  MATTEOCCI F, VESCE L, KOSASIH F U, et al. Fabrication and
   36   37   38   39   40   41   42   43   44   45   46