MOFs基材料在光催化产氢领域的研究进展

刘依凡1, 侯佳怡1, 李金贵1, 吴昊天1, 雷伟岩2, 沈毅1*

化工新型材料 ›› 2025, Vol. 53 ›› Issue (10) : 1 -6.

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化工新型材料 ›› 2025, Vol. 53 ›› Issue (10) : 1-6. DOI: 10.19817/j.cnki.issn1006-3536.2025.10.021
聚焦MOFs金属有机框架材料

MOFs基材料在光催化产氢领域的研究进展

    刘依凡1, 侯佳怡1, 李金贵1, 吴昊天1, 雷伟岩2, 沈毅1*
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Research progress of MOFs-based materials in the field of photocatalytic hydrogen production

  • Liu Yifan1, Hou Jiayi1, Li Jingui1, Wu Haotian1, Lei Weiyan2, Shen Yi1
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摘要

金属有机骨架(MOFs)具有独特的多孔结构、大的比表面积和丰富的活性位点,在光催化产氢研究中常作为高效助催化剂的载体和分散平台,也成为设计新颖结构的模板牺牲剂。近年来,出现了一些具有窄带隙的MOFs,其自身就可以实现高效产氢,显示出在光催化产氢中的巨大应用潜力。综述了近十年MOFs基材料在光催化产氢方面的研究进展,在总结前人工作的基础上进一步展现了MOFs基材料在光催化产氢应用的潜力,并为未来的研究方向提出建议。

Abstract

Due to its unique porous structure,large specific surface area and rich active sites,the metal-organic frameworks (MOFs) are often used as carriers and dispersion platforms for efficient co-catalysts in the studies of photocatalytic hydrogen production.They have also become template sacrificial agents for designing novel structures.In recent years,some MOFs with narrow band gaps have emerged,which can achieve efficient hydrogen production by themselves,showing the great potential of MOFs in photocatalytic hydrogen production.The research progress of MOFs-based materials in photocatalytic hydrogen production in the past decade was reviewed.On the basis of summarizing the previous works,the potential of MOFs-based materials in photocatalytic hydrogen production was further demonstrated,and suggestions for future research directions were put forward.

关键词

金属有机骨架 / 改性 / 光催化 / 产氢

Key words

metal-organic framework / modification / photocatalysis / hydrogen production

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MOFs基材料在光催化产氢领域的研究进展[J]. 化工新型材料, 2025, 53(10): 1-6 DOI:10.19817/j.cnki.issn1006-3536.2025.10.021

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参考文献

[1] Fujishima A,Honda K.Electrochemical photolysis of water at a semiconductor electrode[J].Nature,1972,238:37-38.
[2] Cheng W W,Zhang S N,Wang J,et al.Boosting hydrogen production of a MOF-based multicomponent photocatalyst with clean interface via facile one-pot electrosynthesis[J].Chemistry-A European Journal,2024,30(15):e202303886.
[3] Gui X X,Zhou Y T,Liang Q,et al.Construction of porous ZnS/TiO2 S-scheme heterostructure derived from MOF-on-MOF with boosting photocatalytic H2-generation activity[J].International Journal of Hydrogen Energy,2023,48(97):38237-38250.
[4] Jin P X,Wang L,Ma X l,et al.Construction of hierarchical ZnIn2S4@PCN-224 heterojunction for boosting photocatalytic performance in hydrogen production and degradation of tetracycline hydrochloride[J].Applied Catalysis B:Environmental,2021,284(5):119762.
[5] Qi Y H,Xu J X,Fu Y L,et al.Metal-organic framework templated synthesis of g-C3N4/Fe2O3@FeP composites for enhanced hydrogen production[J].ChemCatChem,2019,11(15):3465-3473.
[6] Zhang J J,Bai T Y,Huang H,et al.Metal-organic-framework-based photocatalysts optimized by spatially separated cocatalysts for overall water splitting[J].Advanced Materials,2020,32(49):2004747.
[7] Zhao X X,Feng J R,Liu J,et al.An efficient,visible-light-driven,hydrogen evolution catalyst NiS/ZnxCd1-xS nanocrystal derived from a metal-organic framework[J].Angewandte Chemie International Edition,2018,57(31):9790-9794.
[8] Xu J,Liu J,Li Z,et al.Synthesis,structure and properties of Pd@MOF-808[J].Journal of Materials Science,2019,54(19):12911-12924.
[9] Pan Y T,Li D D,Jiang H L.Sodium-doped C3N4/MOF heterojunction composites with tunable band structures for photocatalysis:interplay between light harvesting and electron transfer[J].Chemistry-A European Journal,2018,24(69):18403-18407.
[10] Nagakawa H,Nagata M.Highly efficient hydrogen production in the photoreforming of lignocellulosic biomass catalyzed by Cu,In-doped ZnS derived from ZIF-8[J].Advance Materials Interfaces,2022,9(2):2101581.
[11] Zhang L J,Jin Z L,Tsubaki N.Zeolitic Imidazolate framework-67-derived P-doped hollow porous Co3O4 as a photocatalyst for hydrogen production from water[J].ACS Applied Materials & Interfaces,2021,13(43):50996-51007.
[12] Amiri M,Lulich A,Chiu N C,et al.Bismuth-polyoxocation coordination networks:controlling nuclearity and dimension-dependent photocatalysis[J].ACS Applied Materials & Interfaces,2023,15(14):18087-18100.
[13] Luo M J,Wang Y L,Huang T B,et al.Application of an Mn-MOF as a highly efficient catalyst for sunlight-driven hydrogen generation[J].Phase Transitions,2018,91(11):1179-1187.
[14] Xiao L,Zhang Q P,Wang X Z,et al.Synergistic effect of homogeneously dispersed Pt nanoparticles on the surface of self-sensitized porphyrin metal-organic frameworks for effective photocatalytic H2 evolution[J].Applied Surface Science,2024,655:159590.
[15] Liu H,Xu C Y,Li D D,et al.Photocatalytic hydrogen production coupled with selective benzylamine oxidation over MOF composites[J].Angewandte Chemie International Edition,2018,57(19):5379-5383.
[16] Li H N,Yang Y,Jing X,et al.Multi-component metal-organic frameworks significantly boost visible-light-driven hydrogen production coupled with selective organic oxidation[J].Chemistry-An Asian Journal,2021,16(10):1237-1244.
[17] Kumar D P,Choi J,Hong S,et al.Rational synthesis of metal-organic framework-derived noble metal-free nickel phosphide nanoparticles as a highly efficient cocatalyst for photocatalytic hydrogen evolution[J].ACS Sustainable Chemistry & Engineering,2016,4(12):7158-7166.
[18] Shen L J,Luo M B,Liu Y H,et al.Noble-metal-free MoS2 co-catalyst decorated UiO-66/CdS hybrids for efficient photocatalytic H2 production[J].Applied Catalysis B:Environmental,2015,166-167:445-453.
[19] Martinez F M,Albiter E,Alfaro S,et al.Hydrogen production from glycerol photoreforming on TiO2/HKUST-1 composites:effect of preparation method[J].Catalysts,2019,9(4):338.
[20] Jiang X D,Li M,Li H Y,et al.ZIF-9 derived cobalt phosphide and In2O3 as co-catalysts for efficient hydrogen production[J].Molecular Catalysis,2021,507:111551.
[21] Zhang Y M,Luo B,Ai C Q,et al.MOF-derived non-noble metal CoP nanoparticle modified TiO2 for enhanced photocatalytic hydrogen production[J].Industrial & Engineering Chemistry Research,2022,61(45):16653-16661.
[22] Qi S L,Zhu K X,Xu T,et al.Water-stable high-entropy metal-organic framework nanosheets for photocatalytic hydrogen production[J].Advanced Materials,2024,36(26):2403328.
[23] Li R,Wu S K,Wan X Y,et al.Cu/TiO2 octahedral-shell photocatalysts derived from metal-organic framework@semiconductor hybrid structures[J].Inorganic Chemistry Frontiers,2016,3(1):104-110.
[24] Mondal I,Gonuguntla S,Pal U.Photoinduced fabrication of Cu/TiO2 core-shell heterostructures derived from Cu-MOF for solar hydrogen generation:the size of the Cu nanoparticle matters[J].The Journal of Physical Chemistry C,2019,123(43):26073-26081.
[25] Wang X L,Xiao Y,Yu H,et al.Noble-metal-free MOF derived ZnS/CeO2 decorated with CuS cocatalyst photocatalyst with efficient photocatalytic hydrogen production character[J].ChemCatChem,2020,12(22):5669-5678.
[26] Huang J M,Chen J M,Liu W X,et al.Copper-doped zinc sulfide nanoframes with three-dimensional photocatalytic surfaces for enhanced solar driven H2 production[J].Chinese Journal of Catalysis,2022,43(3):782-792.
[27] Ding L,Yu Z B,Sun L,et al.Microelectronic structure changes electron utilization:core-shell structure catalysts with electron library and quantum dots for photocatalytic hydrogen production[J].Journal of Colloid and Interface Science,2022,623:660-673.
[28] Mao S M,Shi J W,Sun G T,et al.PdS quantum dots as a hole attractor encapsulated into the MOF@Cd0.5Zn0.5S heterostructure for boosting photocatalytic hydrogen evolution under visible light[J].ACS Applied Materials & Interfaces,2022,14(43):48770-48779.
[29] Xiao J D,Han L L,Luo J,et al.Integration of plasmonic effects and schottky junctions into metal-organic framework composites:steering charge flow for enhanced visible-light photocatalysis[J].Angewandte Chemie International Edition,2018,57(4):1103-1107.
[30] Ng L S,Mogan T R,Lee J K,et al.Surface-degenerate semiconductor photocatalysis for efficient water splitting without sacrificial agents via a reticular chemistry approach[J].Angewandte Chemie,2023,62(47):e202313695.
[31] Xu J,Gao J,Wang C,et al.NH2-MIL-125(Ti)/graphitic carbon nitride heterostructure decorated with NiPd co-catalysts for efficient photocatalytic hydrogen production[J].Applied Catalysis B:Environmental,2017,219(15):101-108.
[32] Bi Y Y,Xu K,Wang Y,et al.Efficient metal-organic framework-based dual co-catalysts system assist CdS for hydrogen production from photolysis of water[J].Journal of Colloid and Interface Science,2024,661(2024):501-511.
[33] Lin R,Shen L J,Ren Z Y,et al.Enhanced photocatalytic hydrogen production activity via dual modification of MOF and reduced graphene oxide on CdS[J].Chemical Communications,2014,50(62):8533-8535.
[34] Ejsmont A,Lewandowska-Andralojc A,Hauza K,et al.In situ modification of Co-MOF with graphene oxide for enhanced photocatalytic hydrogen production[J].International Journal of Hydrogen Energy,2023,48(24):8965-8970.
[35] Xu M L,Li D D,Sun K,et al.Interfacial microenvironment modulation boosting electron transfer between metal nanoparticles and MOFs for enhanced photocatalysis[J].Angewandte Chemie International Edition,2021,60(30):16372-16376.
[36] Zhao T,Wang X,Sun Z,et al.Hollow mesoporous metal organic framework single crystals enabled by growth kinetics control for enhanced photocatalysis[J].Advanced Functional Materials,2023,33(40):2303644.
[37] Leng F C,Liu H,Ding M L,et al.Boosting photocatalytic hydrogen production of porphyrinic MOFs:the metal location in metalloporphyrin matters[J].ACS Catalysis,2018,8(5):4583-4590.
[38] Gong Y N,Mei J H,Liu J W,et al.Manipulating metal oxidation state over ultrastable metal-organic frameworks for boosting photocatalysis[J].Applied Catalysis B:Environmental,2021,292:120156.
[39] Rosen A S,Iyer S M,Ray D,et al.Machine learning the quantum-chemical properties of metal-organic frameworks for accelerated materials discovery[J].Matter,2021,4(5):1578-1597.
[40] Chen X L,Xiao S N,Wang H,et al.MOFs conferred with transient metal centers for enhanced photocatalytic activity[J].Angewandte Chemie International Edition,2020,59(39):17182-17186.
[41] Su W H,Wang F D,Rong Y,et al.Integrating CdS and titanium oxide clusters with molecular redox catalysts into metal-organic frameworks promoting photocatalytic efficient H2 evolution[J].ChemCatChem,2022,14(11):e202200107.
[42] Mohammadnezhad F,Kampouri S,Wolff S K,et al.Tuning the optoelectronic properties of hybrid functionalized MIL-125-NH2 for photocatalytic hydrogen evolution[J].ACS Applied Materials & Interfaces,2021,13(4):5044-5051.
[43] Wang S Y,Ai Z W,Niu X W,et al.Linker engineering of sandwich-structured metal-organic framework composites for optimized photocatalytic H2 production[J].Advanced Materials,2023,35(39):e2302512.
[44] Chen Y F,Zhang W R,Zhang T Y,et al.A special nano-micro hybrid anchored porphyrin metal-organic framework for enhanced photocatalytic hydrogen generation[J].Journal of Alloys and Compounds,2022,926:166980.
[45] Jin Z,Yang H.Exploration of Zr-metal-organic framework as efficient photocatalyst for hydrogen production[J].Nanoscale Research Letters,2017,12(1):539.
[46] Ejsmont A,Lewandowska-Andralojc A,Hauza K,et al.In situ modification of Co-MOF with graphene oxide for enhanced photocatalytic hydrogen production[J].International Journal of Hydrogen Energy,2023,48(24):8965-8970.
[47] Yang S Z,Fan D H,Hu W H,et al.Elucidating charge separation dynamics in a hybrid metal-organic framework photocatalyst for light-driven H2 evolution[J].The Journal of Physical Chemistry C,2018,122(6):3305-3311.

基金资助

国家自然科学基金(51772099,51572069)

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