Design and application of metal-organic framework-derived catalysts for oxygen reduction in energy conversion devices

Donghao Xu , Jingjing Jiang , Di Liu , Xiaoxiao Wei , Jiarui Yang , Zechao Zhuang , Yuhai Dou , Xiangwen Liu , Jingui Duan , Dingsheng Wang

Microstructures ›› 2026, Vol. 6 ›› Issue (1) : 2026020

PDF
Microstructures ›› 2026, Vol. 6 ›› Issue (1) :2026020 DOI: 10.20517/microstructures.2025.62
Review
Design and application of metal-organic framework-derived catalysts for oxygen reduction in energy conversion devices
Author information +
History +
PDF

Abstract

The oxygen reduction reaction (ORR) is a clean energy conversion process with the potential to address the current energy crisis and promote the adoption of clean energy sources. Developing high-activity catalysts is essential to accelerate the inherently slow ORR kinetics and improve overall efficiency. Atomic-level oxygen reduction catalysts can be prepared through pyrolysis and solvothermal synthesis, using metal-organic frameworks (MOFs) as precursors or templates. This approach preserves the structural advantages of MOFs while enabling precise, atomic-scale tuning of catalyst composition and structure, thereby optimizing their ORR catalytic performance. Advances in catalyst synthesis and characterization methods have improved the understanding of the dynamic evolution of active centers and ORR performance in real-world devices. This paper provides a comprehensive review of ORR mechanisms, describes MOF-derived ORR catalytic materials with distinct ligands, and classifies them by ligand type to elaborate on the role of ligands in catalyst derivation and their influence on ORR performance. It further discusses the tuning of various MOF-derived catalyst types-single-atom, dual-atom, and cluster configurations-through precise control of metal content and species, exploring the relationship between catalyst architecture and ORR activity. The challenges of real-time monitoring of MOF pyrolysis and of understanding dynamic metal coordination during catalytic processes are also discussed. Finally, it examines the future prospects and challenges of MOF-based catalysts for the ORR.

Keywords

Oxygen reduction reaction / fuel cells / Zn-air batteries / metal-organic frameworks / MOF-derived materials / electrocatalysts

Cite this article

Download citation ▾
Donghao Xu, Jingjing Jiang, Di Liu, Xiaoxiao Wei, Jiarui Yang, Zechao Zhuang, Yuhai Dou, Xiangwen Liu, Jingui Duan, Dingsheng Wang. Design and application of metal-organic framework-derived catalysts for oxygen reduction in energy conversion devices. Microstructures, 2026, 6(1): 2026020 DOI:10.20517/microstructures.2025.62

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Nie Y,Wei Z.Recent advancements in Pt and Pt-free catalysts for oxygen reduction reaction.Chem Soc Rev2015;44:2168-201

[2]

Seh ZW,Dickens CF,Nørskov JK.Combining theory and experiment in electrocatalysis: insights into materials design.Science2017;355:eaad4998

[3]

Fei H,Feng Y.General synthesis and definitive structural identification of MN4C4 single-atom catalysts with tunable electrocatalytic activities.Nat Catal2018;1:63-72

[4]

Wang H,Tsai C.Direct and continuous strain control of catalysts with tunable battery electrode materials.Science2016;354:1031-6

[5]

Shao M,Dodelet JP.Recent advances in electrocatalysts for oxygen reduction reaction.Chem Rev2016;116:3594-657

[6]

Cui H,Chen Y.Dynamics of non-metal-regulated FeCo bimetal microenvironment on oxygen reduction reaction activity and intrinsic mechanism.Nano Res2023;16:2199-208

[7]

Zhang B,Li L.Bead-like cobalt-nitrogen co-doped carbon nanocage/carbon nanofiber composite: a high-performance oxygen reduction electrocatalyst for zinc-air batteries.Nano Res2023;16:545-54

[8]

Huang Z,Yuan Y.Designing natural cell-inspired heme-spurred membrane electrode assembly for fuel cells.J Am Chem Soc2025;147:22818-26

[9]

Chung HT,Higgins D.Direct atomic-level insight into the active sites of a high-performance PGM-free ORR catalyst.Science2017;357:479-84

[10]

Chen C,Huo Z.Highly crystalline multimetallic nanoframes with three-dimensional electrocatalytic surfaces.Science2014;343:1339-43

[11]

Li M,Cheng T.Ultrafine jagged platinum nanowires enable ultrahigh mass activity for the oxygen reduction reaction.Science2016;354:1414-9

[12]

Liu G,Deng H.Site-specific reactivity of stepped Pt surfaces driven by stress release.Nature2024;626:1005-10

[13]

Ji N,Liu S.Boosting oxygen reduction in acidic media through integration of Pt-Co alloy effect and strong interaction with carbon defects.Nano Res2024;17:7900-8

[14]

Zhang H,He Q.Single Cu atom dispersed on S,N-codoped nanocarbon derived from shrimp shells for highly-efficient oxygen reduction reaction.Nano Res2022;15:5995-6000

[15]

Hu Y,Luo X.Coplanar Pt/C nanomeshes with ultrastable oxygen reduction performance in fuel cells.Angew Chem Int Ed2021;60:6533-8

[16]

Li Q,Wu J.Cation-deficient perovskites greatly enhance the electrocatalytic activity for oxygen reduction reaction.Adv Mater2024;36:2309266

[17]

Jiao L,Richard LL.Chemical vapour deposition of Fe-N-C oxygen reduction catalysts with full utilization of dense Fe-N4 sites.Nat Mater2021;20:1385-91

[18]

Liu S,Zachman MJ.Atomically dispersed iron sites with a nitrogen-carbon coating as highly active and durable oxygen reduction catalysts for fuel cells.Nat Energy2022;7:652-63

[19]

Stamenkovic VR,Mun BS.Improved oxygen reduction activity on Pt3Ni(111) via increased surface site availability.Science2007;315:493-7

[20]

Yuan Y,Luo D.Recent progress on mechanisms, principles, and strategies for high-activity and high-stability non-PGM fuel cell catalyst design.Carbon Energy2024;6:e426

[21]

Chen M.Strong metal-support interaction of Pt-based electrocatalysts with transition metal oxides/nitrides/carbides for oxygen reduction reaction.Microstructures2023;3:2023025

[22]

Wang X,Qu Y.Review of metal catalysts for oxygen reduction reaction: from nanoscale engineering to atomic design.Chem2019;5:1486-511

[23]

Tang B,Ji Q.A Janus dual-atom catalyst for electrocatalytic oxygen reduction and evolution.Nat Synth2024;3:878-90

[24]

Ahmad M,Liu J.Metal-organic framework-based single-atom electro-/photocatalysts: synthesis, energy applications, and opportunities.Carbon Energy2024;6:e382

[25]

Kitagawa S,Noro S.Functional porous coordination polymers.Angew Chem Int Ed2004;43:2334-75

[26]

Lee J,Roberts J,Nguyen ST.Metal-organic framework materials as catalysts.Chem Soc Rev2009;38:1450-9

[27]

Gao Y,Sun F.Ligand-Tuning metallic sites in molecular complexes for efficient water oxidation.Angew Chem Int Ed2025;64:e202415755

[28]

Sui R,Wang X.Silver based single atom catalyst with heteroatom coordination environment as high performance oxygen reduction reaction catalyst.Nano Res2022;15:7968-75

[29]

Liu S,Li X.Metal organic polymers with dual catalytic sites for oxygen reduction and oxygen evolution reactions.Carbon Energy2023;5:e303

[30]

Wu J,Li Q.Enhancing radiation-resistance and peroxidase-like activity of single-atom copper nanozyme via local coordination manipulation.Nat Commun2024;15:6174 PMCID:PMC11263674

[31]

Yang B,Xiang Z.Advanced MOF-based electrode materials for supercapacitors and electrocatalytic oxygen reduction.Nano Res2023;16:1338-61

[32]

Liang C,Sun S.Yolk-shell FeCu/NC electrocatalyst boosting high-performance zinc-air battery.Nano Res2024;17:7918-25

[33]

Cheng K,Jiang D,Wang Y.Jellyfish bio-inspired Fe@CNT@CuNC derived from ZIF-8 for cathodic oxygen reduction.Nano Res2024;17:2352-9

[34]

Li Q,Wang Z,Cai S.Recent advances in hierarchical porous engineering of MOFs and their derived materials for catalytic and battery: methods and application.Small2024;20:2303473

[35]

Wen S,Zhao X.Synergistic effect of structural and interfacial engineering of metal-organic framework-derived superstructures for energy and environmental applications.Adv Energy Mater2025:2502432

[36]

Xu H,Feng W,Kang DJ.Recent advances in metal-organic frameworks for electrochemical performance of batteries.Nano Res2024;17:3472-92

[37]

Wang X,Yin W.Metal-organic framework-derived phosphide nanomaterials for electrochemical applications.Carbon Energy2022;4:246-81

[38]

Liu J,Cui H,Zhang L.Applications of metal-organic frameworks in heterogeneous supramolecular catalysis.Chem Soc Rev2014;43:6011-61

[39]

Bai J,Deng Y.Simultaneous integration of Fe clusters and NiFe dual single atoms in nitrogen-doped carbon for oxygen reduction reaction.Nano Res2024;17:2291-7

[40]

Liu Y,Zeng Y.Host-guest engineering of dual-metal nitrogen carbides as bifunctional oxygen electrocatalysts for long-cycle rechargeable Zn-air battery.Carbon Energy2025;7:e682

[41]

Xia BY,Li N,Lou XW.A metal-organic framework-derived bifunctional oxygen electrocatalyst.Nat Energy2016;1:15006

[42]

Yin P,Wu Y.Single cobalt atoms with precise N-coordination as superior oxygen reduction reaction catalysts.Angew Chem Int Ed2016;55:10800-5

[43]

Zhang L,Zheng R.Microenvironment regulation of M-N-C single-atom catalysts towards oxygen reduction reaction.Nano Res2023;16:4468-87

[44]

Zhou T,He C.Building Fe atom-cluster composite sites using a site occupation strategy to boost electrochemical oxygen reduction.Carbon Energy2024;6:e477

[45]

Guo W,Zhou H.Multiscale designing principle of M-N-C towards high performance PEMFC.Microstructures2025;5:2025031

[46]

Cheng W,Su H.Lattice-strained metal-organic-framework arrays for bifunctional oxygen electrocatalysis.Nat Energy2019;4:115-22

[47]

Xiong Y,DiSalvo FJ.Metal-organic-framework-derived Co-Fe bimetallic oxygen reduction electrocatalysts for alkaline fuel cells.J Am Chem Soc2019;141:10744-50

[48]

Ma R,Yan J.Thermodynamically controllable synthesis of ZIF-8 exposing different facets and their applications in single atom catalytic oxygen reduction reactions.Nano Res2023;16:9618-24

[49]

Yuan Y,Li Y.Beads-on-string hierarchical structured electrocatalysts for efficient oxygen reduction reaction.Carbon Energy2023;5:e253

[50]

Jiao L,Zhang R,Yu SH.From metal-organic frameworks to single-atom Fe implanted N-doped porous carbons: efficient oxygen reduction in both alkaline and acidic media.Angew Chem Int Ed2018;57:8525-9

[51]

Zhuang Z,Tan X.p-Block-metal bismuth-based electrocatalysts featuring tunable selectivity for high-performance oxygen reduction reaction.Joule2023;7:1003-15

[52]

Chen H,Chi K.Pyrimidine-containing covalent organic frameworks for efficient photosynthesis of hydrogen peroxide via one-step two electron oxygen reduction process.Nano Res2024;17:9498-506

[53]

Luo E,Liu J.Pyrolyzed M-Nx catalysts for oxygen reduction reaction: progress and prospects.Energy Environ Sci2021;14:2158-85

[54]

Zhu X,Xia D.When graphitic nitrogen meets pentagons: selective construction and spectroscopic evidence for improved four-electron oxygen reduction electrocatalysis.Adv Mater2025;37:2414976

[55]

Yeager E.Electrocatalysts for O2 reduction.Electrochim Acta1984;29:1527-37

[56]

Nørskov JK,Logadottir A.Origin of the overpotential for oxygen reduction at a fuel-cell cathode.J Phys Chem B2004;108:17886-92

[57]

Huang X,Cao L.High-performance transition metal-doped Pt3Ni octahedra for oxygen reduction reaction.Science2015;348:1230-4

[58]

Islam MN,Kollath VO,Jankovic J.Designing fuel cell catalyst support for superior catalytic activity and low mass-transport resistance.Nat Commun2022;13:6157 PMCID:PMC9579166

[59]

Hu Y,Hu S.Surface-diffusion-induced amorphization of Pt nanoparticles over Ru oxide boost acidic oxygen evolution.Nano Lett2024;24:5324-31

[60]

Adabi H,Ul Hassan N.High-performing commercial Fe-N-C cathode electrocatalyst for anion-exchange membrane fuel cells.Nat Energy2021;6:834-43

[61]

Mu XQ,Zhang MY.Symmetry-broken ru nanoparticles with parasitic Ru-Co dual-single atoms overcome the volmer step of alkaline hydrogen oxidation.Angew Chem Int Ed2024;63:e202319618

[62]

Guan S,Zhao S.Efficient hydrogen generation from ammonia borane hydrolysis on a tandem ruthenium-platinum-titanium catalyst.Angew Chem Int Ed2024;63:e202408193

[63]

Li Y,Liu P.Ruthenium nanoclusters and single atoms on α-MoC/N-doped carbon achieves low-input/input-free hydrogen evolution via decoupled/coupled hydrazine oxidation.Angew Chem Int Ed2024;63:e202316755

[64]

Hu Y,Li Y.Cooperative Ni(Co)-Ru-P sites activate dehydrogenation for hydrazine oxidation assisting self-powered H2 production.Angew Chem Int Ed2023;62:e202308800

[65]

Chao T,Hu Y.Reversible hydrogen spillover at the atomic interface for efficient alkaline hydrogen evolution.Energy Environ Sci2024;17:1397-406

[66]

Lien HT,Chen PT.Probing the active site in single-atom oxygen reduction catalysts via operando X-ray and electrochemical spectroscopy.Nat Commun2020;11:4233 PMCID:PMC7447817

[67]

Wang Q,Xiao X.Sustainable zinc-air battery chemistry: advances, challenges and prospects.Chem Soc Rev2023;52:6139-90

[68]

Shao W,Zhou M.Carbon-based electrodes for advanced zinc-air batteries: oxygen-catalytic site regulation and nanostructure design.Electrochem Energy Rev2023;6:11

[69]

Zou Y,Yu Y.On the role of Zn and Fe doping in nitrogen-carbon electrocatalysts for oxygen reduction.Nano Res2024;17:9564-72

[70]

Pang M,Zhang H.Synthesis techniques, mechanism, and prospects of high-loading single-atom catalysts for oxygen reduction reactions.Nano Res2024;17:9371-96

[71]

Mun Y,Kim K.Versatile strategy for tuning ORR activity of a single Fe-N4 site by controlling electron-withdrawing/donating properties of a carbon plane.J Am Chem Soc2019;141:6254-62

[72]

Cao S,Li J,Hou C.The cathode catalysts of hydrogen fuel cell: from laboratory toward practical application.Nano Res2023;16:4365-80

[73]

Jiao K,Du Q.Designing the next generation of proton-exchange membrane fuel cells.Nature2021;595:361-9

[74]

Bing Y,Zhang L,Zhang J.Nanostructured Pt-alloy electrocatalysts for PEM fuel cell oxygen reduction reaction.Chem Soc Rev2010;39:2184-202

[75]

Chao T,Zhu M.The promoting effect of interstitial hydrogen on the oxygen reduction performance of PtPd alloy nanotubes for fuel cells.Nano Res2023;16:2366-72

[76]

Yu H,Lei Y.Strategic secondary coordination implantation towards efficient and stable Fe-N-C electrocatalysts for the oxygen reduction reaction in PEMFCs.Angew Chem Int Ed2025;64:e202508141

[77]

Tang B,Zhang X.Symmetry breaking of FeN4 Moiety via edge defects for acidic oxygen reduction reaction.Angew Chem Int Ed2025;64:e202424135

[78]

Chen N.Anion exchange polyelectrolytes for membranes and ionomers.Prog Polym Sci2021;113:101345

[79]

Zeng R,Shi Z.Origins of enhanced oxygen reduction activity of transition metal nitrides.Nat Mater2024;23:1695-703

[80]

Sun K,Sun H.Co(CN)3 catalysts with well-defined coordination structure for the oxygen reduction reaction.Nat Catal2023;6:1164-73

[81]

Li Z,Zhao S.Alkoxy side chain engineering in metal-free covalent organic frameworks for efficient oxygen reduction.Adv Mater2025;2501603

[82]

Wu R,Fu C.Enhancing rechargeable zinc-air batteries with atomically dispersed zinc iron cobalt planar sites on porous nitrogen-doped carbon.ACS Nano2025;19:20215-24

[83]

Guo Y,Zhang N.Advanced design strategies for Fe-based metal-organic framework-derived electrocatalysts toward high-performance Zn-air batteries.Energy Environ Sci2024;17:1725-55

[84]

Zhang H,Zhong H.Bulk preparation of free-standing single-iron-atom catalysts directly as the air electrodes for high-performance zinc-air batteries.Carbon Energy2023;5:e289

[85]

Sun C,Lv Z.Coordination-environment regulation of atomic Co-Mn dual-sites for efficient oxygen reduction reaction.Nano Res2024;17:6841-8

[86]

Li J,Fang Y.The manipulation of rectifying contact of Co and nitrogen-doped carbon hierarchical superstructures toward high-performance oxygen reduction reaction.Carbon Energy2024;6:e529

[87]

Man H,Wang F.Entropy engineering activates Cu-Fe inertia center from prussian blue analogs with micro-strains for oxygen electrocatalysis in Zn-air batteries.Carbon Energy2025;7:e693

[88]

Cui K,Xu X,Lyu P.Crystalline dual-porous covalent triazine frameworks as a new platform for efficient electrocatalysis.Angew Chem Int Ed2024;63:e202317664

[89]

Zhang B,Li H.Orderly stacked “Tile” architecture with single-atom iron boosts oxygen reduction in liquid and solid-state Zn-air batteries.Adv Funct Mater2025, 2502834

[90]

Wang Y,Fan X.Anchoring Fe species on the highly curved surface of S and N Co-doped carbonaceous nanosprings for oxygen electrocatalysis and a flexible zinc-air battery.Angew Chem Int Ed2024;63:e202313034

[91]

Wang S,Mu X,Wang D.Atomically dispersed multi-site catalysts: bifunctional oxygen electrocatalysts boost flexible zinc-air battery performance.Energy Environ Sci2024;17:4847-70

[92]

Khan IA,Badshah A,Zhao D.Highly porous carbon derived from MOF-5 as a support of ORR electrocatalysts for fuel cells.ACS Appl Mater Interfaces2016;8:17268-75

[93]

Zhao S,Du L.Carbonized nanoscale metal-organic frameworks as high performance electrocatalyst for oxygen reduction reaction.ACS Nano2014;8:12660-8

[94]

Chen Y,Cheng M.Single-atom catalysts originated from metal-organic frameworks for sulfate radical-based advanced oxidation processes: critical insights into mechanisms.Adv Funct Mater2024;34:2309223

[95]

Chai L,Wang X.Cube-shaped metal-nitrogen-carbon derived from metal-ammonia complex-impregnated metal-organic framework for highly efficient oxygen reduction reaction.Carbon2020;158:719-27

[96]

Zhang S,Liu J.Multiple active cobalt species embedded in microporous nitrogen-doped carbon network for the selective production of hydrogen peroxide.J Colloid Interface Sci2023;631:101-13

[97]

Yang Y,Xue J.MOF-derived N-doped carbon nanosticks coupled with Fe phthalocyanines for efficient oxygen reduction.Chem Eng J2023;464:142668

[98]

Chai L,Kumar A.Bimetallic-MOF derived carbon with single Pt anchored C4 atomic group constructing super fuel cell with ultrahigh power density and self-change ability.Adv Mater2024;36:2308989

[99]

Du M,Wang Q.Dual Fe/I single-atom electrocatalyst for high-performance oxygen reduction and wide-temperature quasi-solid-state Zn-air batteries.Adv Mater2024;36:2412978

[100]

Liu D,Ma F.Fe species anchored N, S-doped carbon as nonprecious catalyst for boosting oxygen reduction reaction.J Alloys Compd2023;937:168496

[101]

Zhang H,Wu T.Rational design of porous Fex-N@MOF as a highly efficient catalyst for oxygen reduction over a wide pH range.J Alloys Compd2023;944:169039

[102]

Zhang H,Yang X.Modulator directed synthesis of size-tunable mesoporous MOFs and their derived nanocarbon-based electrocatalysts for oxygen reduction.Chem Eng J2024;486:150088

[103]

Liang Z,Tan H.Constructing Co4(SO4)4 clusters within metal-organic frameworks for efficient oxygen electrocatalysis.Adv Mater2024;36:2408094

[104]

Li H,Zhou W,Jin W.Ultrathin 2D catalysts with N-coordinated single Co atom outside Co cluster for highly efficient Zn-air battery.Chem Eng J2021;421:129719

[105]

Rong J,Gao E.Design of atomically dispersed CoN4 sites and Co clusters for synergistically enhanced oxygen reduction electrocatalysis.Small2024;20:2402323

[106]

Huang Y,Xu M.Catalysts by pyrolysis: Transforming metal-organic frameworks (MOFs) precursors into metal-nitrogen-carbon (M-N-C) materials.Mater Today2023;69:66-78

[107]

Zitolo A,Armel V.Identification of catalytic sites for oxygen reduction in iron-and nitrogen-doped graphene materials.Nature Mater2015;14:937-42

[108]

Arafat Y,Zhong Y,Tadé MO.Advances in zeolite imidazolate frameworks (ZIFs) derived bifunctional oxygen electrocatalysts and their application in zinc-air batteries.Adv Energy Mater2021;11:2100514

[109]

Nguyen QH,Oh S.Metal-organic framework-polymer complex-derived single-atomic oxygen reduction catalyst for anion exchange membrane fuel cells.Chem Eng J2024;481:148508

[110]

Yang Y,Zhao Y.Ice-templating co-assembly of dual-MOF superstructures derived 2D carbon nanobelts as efficient electrocatalysts.Chem Eng J2023;477:146900

[111]

Li X,Zhu W.Directional construction of low-coordination Fe-N3 coupled with intrinsic carbon defects for high-efficiency oxygen reduction.ACS Nano2024;18:24505-14

[112]

Bao G,Fan Q.A ZIF-derived hollow carbon nanoframework loaded with FeCu alloy nanoparticles for efficient oxygen reduction reaction and zinc-air batteries.J Mater Chem A2024;12:6623-33

[113]

Xie M,Wu D.MOF-mediated synthesis of novel PtFeCoNiMn high-entropy nano-alloy as bifunctional oxygen electrocatalysts for zinc-air battery.Nano Res2024;17:5288-97

[114]

Liao PQ,Zhang JP.Metal-organic frameworks for electrocatalysis.Coord Chem Rev2018;373:22-48

[115]

Pan Y,Li Y.Constructing nitrogen-doped carbon hierarchy structure derived from metal-organic framework as high-performance ORR cathode material for Zn-air battery.Small2024;20:2304594

[116]

Liu M,Dong H.Electrodeposition of Ni/Cu bimetallic conductive metal-organic frameworks electrocatalysts with boosted oxygen reduction activity for zinc-air batteries.Small2024;20:2405309

[117]

Jena R,Bothra N,Pati SK.NixCo1-x@NixCo1-xO/NCNT as trifunctional ORR, OER, and HER electrocatalysts and its application in a Zn-Air Battery.ACS Appl Mater Interfaces2023;15:27893-904

[118]

Lv C,Li B.1,2,4-triazole-assisted metal-organic framework-derived nitrogen-doped carbon nanotubes with encapsulated Co4N particles as bifunctional oxygen electrocatalysts for rechargeable zinc-air batteries.J Colloid Interface Sci2023;645:618-26

[119]

Dong A,Guo Y.Immobilization of iron phthalocyanine on MOF-derived N-doped carbon for promoting oxygen reduction in zinc-air battery.J Colloid Interface Sci2023;650:2056-64

[120]

Li J,Guo Y.Surface curvature effect on single-atom sites for the oxygen reduction reaction: a model of mesoporous MOF-derived carbon.Chem Eng J2023;477:146841

[121]

Li H,Yang M.Electron and configuration engineering of atomic Cu and multi-oxidated Cu2+1O centers via gasifiable reductant strategy for efficient oxygen reduction toward Zn-air battery.Nano Res2023;16:2383-91

[122]

Zhao L,Jin G,Jiang Z.Metal-organic framework-derived trimetallic particles encapsulated by ultrathin nitrogen-doped carbon nanosheets on a network of nitrogen-doped carbon nanotubes as bifunctional catalysts for rechargeable zinc-air batteries.J Colloid Interface Sci2024;668:525-39

[123]

Peng Y,Wang M.Facet engineering of a two-dimensional metal-organic framework with uniquely oriented layered-structure for electrocatalytic oxygen reduction reaction.J Colloid Interface Sci2024;658:518-27

[124]

Wang Q,Zhang S.MOF-on-MOF-derived FeCo@NC OER&ORR bifunctional electrocatalysts for zinc-air batteries.J Colloid Interface Sci2025;677:800-11

[125]

Rosyara YR,Chhetri K.Highly porous metal-organic framework entrapped by cobalt telluride-manganese telluride as an efficient bifunctional electrocatalyst.ACS Appl Mater Interfaces2024;16:10238-50

[126]

Xue Y,Zhang Q,Wei J.MOF-derived co and fe species loaded on N-doped carbon networks as efficient oxygen electrocatalysts for Zn-Air batteries.Nano Micro Lett2022;14:162 PMCID:PMC9372253

[127]

Sekar P,Shanmugam R.Green synthesis of a redox-active riboflavin-integrated Ni-MOF and its versatile electrocatalytic applications towards oxygen evolution and reduction, and HMF oxidation reactions.Green Chem2022;24:9233-44

[128]

Yan Q,Liu Y,Zheng H.A hybridization cage-confinement pyrolysis strategy for ultrasmall Ni 3 Fe alloy coated with N-doped carbon nanotubes as bifunctional oxygen electrocatalysts for Zn-air batteries.J Mater Chem A2023;11:1430-8

[129]

Li J,Xu X.Selective etching of metal-organic frameworks for open porous structures: mass-efficient catalysts with enhanced oxygen reduction reaction for fuel cells.J Am Chem Soc2023;145:27262-72

[130]

Chen M,Yang F.Atomically dispersed MnN4 catalysts via environmentally benign aqueous synthesis for oxygen reduction: mechanistic understanding of activity and stability improvements.ACS Catal2020;10:10523-34

[131]

Liu Y,Lv Z.Efficient Proton-exchange membrane fuel cell performance of atomic Fe sites via p-d hybridization with Al dopants.J Am Chem Soc2024;146:12636-44

[132]

Yi SY,Jang HY.Insight into defect engineering of atomically dispersed iron electrocatalysts for high-performance proton exchange membrane fuel cell.Adv Mater2023;35:2302666

[133]

da Silva Freitas W,Vecchio C L.Tailoring MOF structure via iron decoration to enhance ORR in alkaline polymer electrolyte membrane fuel cells.Chem Eng J2023;465:142987

[134]

Yang X,Gao Z.A vacuum vapor deposition strategy to Fe single-atom catalysts with densely active sites for high-performance Zn-air battery.Adv Sci2024;11:2306594

[135]

Tian H,Zhang P.High durability of Fe-N-C single-atom catalysts with carbon vacancies toward the oxygen reduction reaction in alkaline media.Adv Mater2023;35:2210714

[136]

Qu Q,Ji S.Engineering the lewis acidity of fe single-atom sites via atomic-level tuning of spatial coordination configuration for enhanced oxygen reduction.J Am Chem Soc2025;147:6914-24

[137]

Han Y,Chen W.Hollow N-doped carbon spheres with isolated cobalt single atomic sites: superior electrocatalysts for oxygen reduction.J Am Chem Soc2017;139:17269-72

[138]

Guo Y,Chen D.Precise construction of asymmetrically coordinated PtCuZn trimetallic atom catalysts for efficient oxygen reduction.Angew Chem Int Ed2025;64:e202507395

[139]

Li Z,Liu Y.Well-defined materials for heterogeneous catalysis: from nanoparticles to isolated single-atom sites.Chem Rev2020;120:623-82

[140]

Liu L.Metal catalysts for heterogeneous catalysis: from single atoms to nanoclusters and nanoparticles.Chem Rev2018;118:4981-5079 PMCID:PMC6061779

[141]

Yang H,Zhuang Z.Understanding the dynamic evolution of active sites among single atoms, clusters, and nanoparticles.Adv Mater2025;37:2415265

[142]

Shen J,Qian Y.Atomic engineering of single-atom nanozymes for biomedical applications.Adv Mater2024;36:2313406

[143]

Qiu Y,Wu J.Boosting oxygen reduction performances in Pd-based metallenes by co-confining interstitial H and p-block single atoms.Nat Commun2025;16:5262 PMCID:PMC12144201

[144]

Yang XF,Qiao B,Liu J.Single-atom catalysts: a new frontier in heterogeneous catalysis.Acc Chem Res2013;46:1740-8

[145]

Chen Y,Chen C,Wang D.Single-atom catalysts: synthetic strategies and electrochemical applications.Joule2018;2:1242-64

[146]

Wang A,Zhang T.Heterogeneous single-atom catalysis.Nat Rev Chem2018;2:65-81

[147]

Zhang J,Chen C.Tuning the coordination environment in single-atom catalysts to achieve highly efficient oxygen reduction reactions.J Am Chem Soc2019;141:20118-26

[148]

Yang J,Xu M.Dynamic behavior of single-atom catalysts in electrocatalysis: identification of Cu-N3 as an active site for the oxygen reduction reaction.J Am Chem Soc2021;143:14530-9

[149]

Li P,Zhang J,Ding S.How the microenvironment dominated by the distance effect to regulate the FeN4 site ORR activity and selectivity?.Nano Res2024;17:5735-41

[150]

Ishiki NA,Bibent N.Evidence for the stabilization of FeN4 sites by Pt particles during acidic oxygen reduction.Nat Commun2025;16:6404 PMCID:PMC12246215

[151]

Xie X,Yang H,Shang L.MIL-101-derived mesoporous carbon supporting highly exposed Fe single-atom sites as efficient oxygen reduction reaction catalysts.Adv Mater2021;33:2101038

[152]

Xie X,Xiong X,Zhang T.Fe single-atom catalysts on MOF-5 derived carbon for efficient oxygen reduction reaction in proton exchange membrane fuel cells.Adv Energy Mater2022;12:2102688

[153]

Yuan S,Hu L.Decarboxylation-induced defects in MOF-derived single cobalt atom@carbon electrocatalysts for efficient oxygen reduction.Angew Chem Int Ed2021;60:21685-90

[154]

Rong J,Liu N.Porphyrinic MOF-derived rich N-doped porous carbon with highly active CoN4C single-atom sites for enhanced oxygen reduction reaction and Zn-air batteries performance.Energy Storage Mater2023;56:165-73

[155]

Qu Y,Chen W.Direct transformation of bulk copper into copper single sites via emitting and trapping of atoms.Nat Catal2018;1:781-6

[156]

Jia Y,Yang J.Tailoring the electronic structure of an atomically dispersed zinc electrocatalyst: coordination environment regulation for high selectivity oxygen reduction.Angew Chem Int Ed2022;61:e202110838

[157]

Ma FX,Liu ZH.Impeding thermal atomization enables synthesizing Fe2N cluster liganded single Fe-Atom catalyst for highly efficient oxygen reduction reaction.Angew Chem Int Ed2025;64:e202504935

[158]

Ye W,Lin Y.Precisely tuning the number of Fe atoms in clusters on N-doped carbon toward acidic oxygen reduction reaction.Chem2019;5:2865-78

[159]

Yan L,Li Y.Sublimation transformation synthesis of dual-atom Fe catalysts for efficient oxygen reduction reaction.Angew Chem Int Ed2025;64:e202413179

[160]

Dey G,Saifi S.Dual single-atomic Co-Mn sites in metal-organic-framework-derived N-doped nanoporous carbon for electrochemical oxygen reduction.ACS Nano2023;17:19155-67

[161]

Wang M,Zhang S.Non-planar nest-like [Fe2S2] cluster sites for efficient oxygen reduction catalysis.Angew Chem Int Ed2023;62:e202300826

[162]

Liu M,Cao S.Ferredoxin-inspired design of S-synergized Fe-Fe dual-metal center catalysts for enhanced electrocatalytic oxygen reduction reaction.Adv Mater2024;36:2309231

[163]

Wang Z,Ling G,Lv Y.Prussian blue-derived atomic Fe/Fe3C@N-doped C catalysts supported by carbon cloth as integrated air cathode for flexible Zn-air batteries.Adv Sci2025;12:2407631

[164]

Wang J,Shen ZZ.In situ visualization of interfacial processes at nanoscale in non-alkaline Zn-air batteries.Nat Commun2024;15:10882 PMCID:PMC11686246

[165]

Yao Y,Sun Z,Yang S.Identifying in situ activity and selectivity of oxygen reduction catalysts at the subparticle level.ACS Nano2025;19:18502-12

[166]

Liu M,Su H.In situ modulating coordination fields of single-atom cobalt catalyst for enhanced oxygen reduction reaction.Nat Commun2024;15:1675 PMCID:PMC10891135

[167]

Hu H,Liao K.Clarifying the active structure and reaction mechanism of atomically dispersed metal and nonmetal sites with enhanced activity for oxygen reduction reaction.Adv Mater2025;37:2416126

PDF

0

Accesses

0

Citation

Detail

Sections
Recommended

/