Citation: Hongjing ZHU, Guanying LIU, Kuaibing WANG. Application of in-situ characterization in electrocatalytic CO2 reduction reaction of metal-organic frameworks[J]. Chinese Journal of Inorganic Chemistry, ;2026, 42(9): 1893-1909. doi: 10.11862/CJIC.20260144 shu

Application of in-situ characterization in electrocatalytic CO2 reduction reaction of metal-organic frameworks

  • Corresponding author: Kuaibing WANG, wangkb@njau.edu.cn
  • Received Date: 28 April 2026
    Revised Date: 25 July 2026

Figures(11)

  • Electrocatalytic CO2 reduction reaction (eCO2RR) offers an important pathway toward carbon resource recycling and the realization of carbon neutrality. Metal-organic frameworks (MOFs), featuring high structural tunability, adjustable porosity, and well-dispersed active sites, have demonstrated significant potential in eCO2RR applications. However, challenges remain in identifying the true active species and unraveling structural reconstruction under realistic reaction conditions. This review systematically summarizes recent advances in the application of in-situ characterization techniques-including in-situ infrared spectroscopy, Raman spectroscopy, ultraviolet-visible spectroscopy, X-ray absorption spectroscopy, X-ray diffraction, differential electrochemical mass spectrometry, and cyclic voltammetry of MOF-based catalysts for eCO2RR. Emphasis is placed on their roles and advantages in identifying reaction intermediates, tracking metal valence evolution, probing coordination environment changes, elucidating structural reconstruction behavior, and analyzing product formation kinetics. Unlike previous reviews that focus on the technical aspects of characterization methods, this review centers on the dynamic reconstruction of metal- organic frameworks (MOFs) and the identification of authentic active sites. It systematically summarizes how multi-scale in-situ characterization techniques unravel the correlation between the intrinsic structural evolution of MOFs and their catalytic performance. Future perspectives are also discussed, including multi-technique integration, improved spatiotemporal resolution, and the deep fusion of in-situ data with theoretical calculations and machine learning. This review aims to provide a valuable reference for understanding real active sites, clarifying reaction mechanisms, and designing efficient MOF-based electrocatalytic systems.
  • 加载中
    1. [1]

      CHANG B, PANG H, RAZIQ F, WANG S B, HUANG K W, YE J H, ZHANG H B. Electrochemical reduction of carbon dioxide to multicarbon (C2+) products: Challenges and perspectives[J]. Energy Environ. Sci., 2023, 16(11): 4714-4758  doi: 10.1039/D3EE00964E

    2. [2]

      GUAN J D, LANG C G, YAO X D. Innovative carbon-based materials for efficient hydrogen storage: A review of solid, gaseous, and liquid systems[J]. Prog. Mater. Sci., 2026, 157: 101596  doi: 10.1016/j.pmatsci.2025.101596

    3. [3]

      RAHIMI M, KHURRAM A, HATTON T A, GALLANT B. Electrochemical carbon capture processes for mitigation of CO2 emissions[J]. Chem. Soc. Rev., 2022, 51(20): 8676-8695  doi: 10.1039/D2CS00443G

    4. [4]

      LI X Y, KANG W, FAN X Y, TAN X Y, MASA J, ROBERTSON A W, JUNG Y, HAN B, TEXTER J, CHENG Y F, DAI B, SUN Z Y. Electrochemical CO2 reduction to liquid fuels: Mechanistic pathways and surface/interface engineering of catalysts and electrolytes[J]. Innovation, 2025, 6(3): 100807

    5. [5]

      NITOPI S, BERTHEUSSEN E, SCOTT S B, LIU X Y, ENGSTFELD A K, HORCH S, SEGER B, STEPHENS I E L, CHAN K, HAHN C, NØRSKOV J K, JARAMILLO T F, CHORKENDORFF I. Progress and perspectives of electrochemical CO2 reduction on copper in aqueous electrolyte[J]. Chem. Rev., 2019, 119(12): 7610-7672  doi: 10.1021/acs.chemrev.8b00705

    6. [6]

      ZHU H L, LIAO P Q, CHEN X M. Precise engineering of multimetal sites in metal-organic frameworks for efficient and selective electrochemical reduction of CO2 to C2 and urea products[J]. Acc. Chem. Res., 2025, 58(23): 3530-3542  doi: 10.1021/acs.accounts.5c00584

    7. [7]

      SINGH H D, G M, MISRA R, SARKAR S, CHAKRABORTY D, NANDI S. Selective electroreduction of CO2 to value-added C1 and C2 products using MOF and COF-based catalysts[J]. Adv. Compos. Hybrid Mater., 2024, 7(209): 13-25

    8. [8]

      HE Y X, YIN L, YUAN N N, ZHANG G K. Adsorption and activation, active site and reaction pathway of photocatalytic CO2 reduction: A review[J]. Chem. Eng. J., 2024, 481: 148754  doi: 10.1016/j.cej.2024.148754

    9. [9]

      ZHANG N, LONG R, GAO C, XIONG Y J. Recent progress on advanced design for photoelectrochemical reduction of CO2 to fuels[J]. Sci. China Mater., 2018, 61(6): 771-805  doi: 10.1007/s40843-017-9151-y

    10. [10]

      YANG D X, ZHU Q G, CHEN C J, LIU H Z, LIU Z M, ZHAO Z J, ZHANG X Y, LIU S J, HAN B X. Selective electroreduction of carbon dioxide to methanol on copper selenide nanocatalysts[J]. Nat. Commun., 2019, 10(1): 677  doi: 10.1038/s41467-019-08653-9

    11. [11]

      WANG Y H, LIU J L, ZHENG G F. Designing copper-based catalysts for efficient carbon dioxide electroreduction[J]. Adv. Mater., 2021, 33(46): 2005798  doi: 10.1002/adma.202005798

    12. [12]

      LUO G, JING Y, LI Y F. Rational design of dual-metal-site catalysts for electroreduction of carbon dioxide[J]. J. Mater. Chem. A, 2020, 8(31): 15809-15815  doi: 10.1039/D0TA00033G

    13. [13]

      LIAO Q, SONG Y J, LI W J, HE D Z, PAN A Q, HAN C. Perspectives of nickel-based catalysts in carbon dioxide electroreduction[J]. J. Mater. Sci. Technol., 2025, 218: 108-125  doi: 10.1016/j.jmst.2024.07.054

    14. [14]

      ZHANG G Q, ZHANG X Y, LIU J L, HE J H, GE W M, SUN M Y, KONG S W, CAO W J, WANG D Y, SHI X J, SUN Z X, LIU H K, DOU S X. Transition metal-based electrocatalysts for CO2 reduction towards ethanol[J]. Coord. Chem. Rev., 2026, 550: 217403  doi: 10.1016/j.ccr.2025.217403

    15. [15]

      HONGRUTAI N, WATMANEE S, PINTHONG P, PANPRANOT J. Electrochemical reduction of carbon dioxide on the oxide-containing electrocatalysts[J]. J. CO2 Util., 2022, 64: 102194  doi: 10.1016/j.jcou.2022.102194

    16. [16]

      HUSILE A, WANG Z L, GUAN J Q. Bimetallic effects in carbon dioxide electroreduction[J]. Chem. Sci., 2025, 16(13): 5413-5446  doi: 10.1039/D5SC00670H

    17. [17]

      SUN R B, LIU X Y, HUANG J Y, WANG Y C, HUANG H W, LEI Y P, GE J J. In situ and operando analytical techniques of single- atom catalysts for electrocatalytic CO2 reduction[J]. Small Methods, 2025, 9(11): 2500516  doi: 10.1002/smtd.202500516

    18. [18]

      GUO Y, YANG H J, SONG R J, QIANG Y K, DAI Y L, QIN X T, LI S W. Recent research progress on two-dimensional organic framework materials for electrocatalytic carbon dioxide reduction applications[J]. Small, 2026, 22(20): e73000  doi: 10.1002/smll.73000

    19. [19]

      YANG F, ZHU D Y, XIA C F, SHAHID Z, CHEN S H, XIA B Y. Copper-organic frameworks for electrocatalytic carbon dioxide reduction[J]. Coord. Chem. Rev., 2024, 517: 216021  doi: 10.1016/j.ccr.2024.216021

    20. [20]

      HAO Z C, MA L J, JIA J F, WU H S. Metal-free B4@g-C3N4: A potential electrocatalyst for highly selective and efficient conversion of CO to ethanol[J]. J. Mater. Chem. A, 2023, 11(34): 18365-18374  doi: 10.1039/D3TA03591C

    21. [21]

      HU Z J, CHEN Z Y, CHEN X W, WANG J H. Advances in the adsorption/enrichment of proteins/peptides by metal‑organic frameworks-affinity adsorbents[J]. TrAC Trends Anal. Chem., 2022, 153: 116627  doi: 10.1016/j.trac.2022.116627

    22. [22]

      HUANG J M, ZHANG X D, HUANG J Y, ZHENG D S, XU M, GU Z Y. MOF-based materials for electrochemical reduction of carbon dioxide[J]. Coord. Chem. Rev., 2023, 494: 215333  doi: 10.1016/j.ccr.2023.215333

    23. [23]

      AL-ROWAILI F N, JAMAL A, BA SHAMMAKH M S, RANA A. A review on recent advances for electrochemical reduction of carbon dioxide to methanol using metal-organic framework (MOF) and non-MOF catalysts: Challenges and future prospects[J]. ACS Sustain. Chem. Eng., 2018, 6(12): 15895-15914  doi: 10.1021/acssuschemeng.8b03843

    24. [24]

      LIU L X, QIN C Y, DENG T J, SUN L M, CHEN Z F, HAN X G. Cu MOF-based electrocatalysts for CO2 reduction to multi-carbon products[J]. J. Mater. Chem. A, 2024, 12(39): 26421-26438  doi: 10.1039/D4TA05059B

    25. [25]

      HAN Y P, WANG Z R, YAN Y Y, LI Q H, SHAO P, ZHANG H X, HAN L L, WANG F, ZHANG J. Coplanar two-dimensional Cu-MOF with dual-Cu sites for electrocatalytic CO2 reduction to C2H4[J]. Chem. Eng. J., 2025, 507: 160493  doi: 10.1016/j.cej.2025.160493

    26. [26]

      ZOU C J, TANG W, LI J J, ZHANG C Y, JIA J H, FANG P P. Derived MOF/Ag electrocatalysts for selective and stable CO production during acidic CO2 electroreduction[J]. ACS Catal., 2026, 16(4): 3561-3568  doi: 10.1021/acscatal.5c07881

    27. [27]

      TIAN J Z, SUN Y C, WU Y S, WANG F, ZHANG Y C, FU D, CHEN Z S, WANG X X. Recent progress in metal-organic framework-based materials for electrocatalytic carbon dioxide reduction[J]. J. Mater. Chem. A, 2025, 13(27): 21268-21291  doi: 10.1039/D5TA02285A

    28. [28]

      WANG J, ZHANG Y M, MA Y B, YIN J W, WANG Y H, FAN Z X. Electrocatalytic reduction of carbon dioxide to high-value multicarbon products with metal-organic frameworks and their derived materials[J]. ACS Mater. Lett., 2022, 4(11): 2058-2079  doi: 10.1021/acsmaterialslett.2c00751

    29. [29]

      WANG H Q. Nanostructure@metal-organic frameworks (MOFs) for catalytic carbon dioxide (CO2) conversion in photocatalysis, electrocatalysis, and thermal catalysis[J]. Nano Res., 2022, 15(4): 2834-2854  doi: 10.1007/s12274-021-3984-9

    30. [30]

      JIN S. How to effectively utilize MOFs for electrocatalysis[J]. ACS Energy Lett., 2019, 4(6): 1443-1445  doi: 10.1021/acsenergylett.9b01134

    31. [31]

      JONES C W. Metal-organic frameworks and covalent organic frameworks: Emerging advances and applications[J]. JACS Au, 2022, 2(7): 1504-1505  doi: 10.1021/jacsau.2c00376

    32. [32]

      ZHAI Z B, YAN W, DONG L, DENG S Q, WILKINSON D P, WANG X M, ZHANG L, ZHANG J J. Catalytically active sites of MOF-derived electrocatalysts: Synthesis, characterization, theoretical calculations, and functional mechanisms[J]. J. Mater. Chem. A, 2021, 9(36): 20320-20344  doi: 10.1039/D1TA02896K

    33. [33]

      ROLDÁN CUENYA B, BAÑARES M A. Introduction: Operando and in situ studies in catalysis and electrocatalysis[J]. Chem. Rev., 2024, 124(13): 8011-8013  doi: 10.1021/acs.chemrev.4c00184

    34. [34]

      ZHU Z, DUAN J J, CHEN S. Metal-organic framework (MOF)-based clean energy conversion: Recent advances in unlocking its underlying mechanisms[J]. Small, 2024, 20(20): 2309119  doi: 10.1002/smll.202309119

    35. [35]

      SHEN W, YE Y Z, XIA Q J, XI P X. Progress in in situ characterization of electrocatalysis[J]. EES Catal., 2025, 3(1): 10-31  doi: 10.1039/D4EY00168K

    36. [36]

      XIE Z Z, LIU Y K, HE L Q, CHEN J, WU X, LI M Y, WANG K, TONG Y X. In situ/operando characterization techniques for reaction interface in electrocatalytic CO2 reduction[J]. Small, 2025: 2502083  doi: 10.1002/smll.202502083

    37. [37]

      CAO X Y, TAN D X, WULAN B, HUI K S, HUI K N, ZHANG J T. In situ characterization for boosting electrocatalytic carbon dioxide reduction[J]. Small Methods, 2021, 5(10): 2100700  doi: 10.1002/smtd.202100700

    38. [38]

      LI X N, YANG X F, ZHANG J M, HUANG Y Q, LIU B. In situ/operando techniques for characterization of single-atom catalysts[J]. ACS Catal., 2019, 9(3): 2521-2531  doi: 10.1021/acscatal.8b04937

    39. [39]

      ZHANG J F, XIA S A, WANG Y, WU J J, WU Y C. Recent advances in dynamic reconstruction of electrocatalysts for carbon dioxide reduction[J]. iScience, 2024, 27(6): 110005  doi: 10.1016/j.isci.2024.110005

    40. [40]

      VAVRA J, SHEN T H, STOIAN D, TILELI V, BUONSANTI R. Real-time monitoring reveals dissolution/redeposition mechanism in copper nanocatalysts during the initial stages of the CO2 reduction reaction[J]. Angew. Chem.‒Int. Edit., 2020, 60(3): 1347-1354

    41. [41]

      WEI D X, WANG Y Q, DONG C L, ZHANG Z Q, WANG X Y, HUANG Y C, SHI Y C, ZHAO X L, WANG J L, LONG R, XIONG Y J, DONG F, LI M T, SHEN S H. decrypting the controlled product selectivity over Ag-Cu bimetallic surface alloys for electrochemical CO2 reduction[J]. Angew. Chem. ‒Int. Edit., 2023, 62(19): e202217369  doi: 10.1002/anie.202217369

    42. [42]

      FEASTER J T, SHI C, CAVE E R, HATSUKADE T, ABRAM D N, KUHL K P, HAHN C, NØRSKOV J K, JARAMILLO T F. Understanding selectivity for the electrochemical reduction of carbon dioxide to formic acid and carbon monoxide on metal electrodes[J]. ACS Catal., 2017, 7(7): 4822-4827  doi: 10.1021/acscatal.7b00687

    43. [43]

      FAN L, XIA C, YANG F Q, WANG J, WANG H T, LU Y Y. Strategies in catalysts and electrolyzer design for electrochemical CO2 reduction toward C2+ products[J]. Sci. Adv., 2020, 6: 1-17

    44. [44]

      TRIPATHI A M, SU W H, HWANG B J. In situ analytical techniques for battery interface analysis[J]. Chem. Soc. Rev., 2018, 47(3): 736-851  doi: 10.1039/C7CS00180K

    45. [45]

      CHEN S H, LI W H, JIANG W J, YANG J R, ZHU J X, WANG L Q, OU H H, ZHUANG Z C, CHEN M Z, SUN X H, WANG D S, LI Y D. MOF encapsulating N-heterocyclic carbene-ligated copper single-atom site catalyst towards efficient methane electrosynthesis[J]. Angew. Chem. ‒Int. Edit., 2021, 61(4): e202114450

    46. [46]

      BOHAN A, JIN X X, WANG M, MA X, WANG Y, ZHANG L X. Uncoordinated amino groups of MIL-101 anchoring cobalt porphyrins for highly selective CO2 electroreduction[J]. J. Colloid Interface Sci., 2024, 654: 830-839  doi: 10.1016/j.jcis.2023.10.089

    47. [47]

      YAO X H, CUI D X, ZHU C Y, HE J T, MENG F F, YANG S, DONG M, SHAN G G, ZHANG M, SUN C Y, WANG X L, SU Z M. Self-exfoliating bimetallic metal-organic framework layer with intralayer π-π interactions for efficient electrical transport and co2 electroreduction[J]. ACS Mater. Lett., 2024, 6(11): 5112-5119  doi: 10.1021/acsmaterialslett.4c00902

    48. [48]

      LIU C, WANG M M, YE J Y, LIU L B, LI L G, LI Y H, HUANG X Q. Highly selective CO2 electroreduction to C2+ products over Cu2O-decorated 2D metal-organic frameworks with rich heterogeneous interfaces[J]. Nano Lett., 2023, 23(4): 1474-1480  doi: 10.1021/acs.nanolett.2c04911

    49. [49]

      ZHAO Z H, HUANG J R, LIAO P Q, CHEN X M. Highly efficient electroreduction of CO2 to ethanol via asymmetric C-C coupling by a metal-organic framework with heterodimetal dual sites[J]. J. Am. Chem. Soc., 2023, 145(49): 26783-26790  doi: 10.1021/jacs.3c08974

    50. [50]

      MA M T, XIONG L K, DONG Y, BAI Q Q, HUA W, ZHENG Z Y, LYU F, LIAN Y, WEI Z H, YUAN H H, JIAO Z Y, CHENG J, SONG D Q, WANG M, XING Z Y, ZHONG J, HAN S, DENG Z, PENG Y. Metalloporphyrin frameworks to encapsulate copper oxides for boosting ethylene production in neutral electrolyte[J]. Adv. Funct. Mater., 2024, 34(25): 2315667  doi: 10.1002/adfm.202315667

    51. [51]

      MAJIDI L, AHMADIPARIDARI A, SHAN N, MISAL S N, KUMAR K, HUANG Z H, RASTEGAR S, HEMMAT Z, ZOU X D, ZAPOL P, CABANA J, CURTISS L A, SALEHI-KHOJIN A. 2D copper tetrahydroxyquinone conductive metal-organic framework for selective CO2 electrocatalysis at low overpotentials[J]. Adv. Mater., 2021, 33(10): 2004393  doi: 10.1002/adma.202004393

    52. [52]

      SU W L, GUO W Z, FAN Y. CuAg bimetallic catalysts derived from an Ag-anchored Cu-based metal-organic framework for CO2 electroreduction to ethanol[J]. Chem. Eng. J., 2023, 477: 147204  doi: 10.1016/j.cej.2023.147204

    53. [53]

      NAM D H, SHEKHAH O, LEE G, MALLICK A, JIANG H, LI F W, CHEN B, WICKS J, EDDAOUDI M, SARGENT E H. Intermediate binding control using metal-organic frameworks enhances electrochemical CO2 reduction[J]. J. Am. Chem. Soc., 2020, 142(51): 21513-21521  doi: 10.1021/jacs.0c10774

    54. [54]

      LIU Z Y, HAN X X, LIU J H, CHEN S X, DENG S G, WANG J. In situ reconstruction of scalable amorphous indium-based metal-organic framework for CO2 electroreduction to formate over an ultrawide potential window[J]. ACS Appl. Mater. Interfaces, 2024, 16(22): 28655-28663  doi: 10.1021/acsami.4c04437

    55. [55]

      XIAO J W, YOU S Y, HUANG H S, LIANG S Y, XIE W F, LI M, ZHANG T Y, WANG Q. Regulation of Cu-MOF reconstruction for enhanced CO2 electroreduction[J]. Appl. Catal. B‒Environ., 2025, 375: 125412  doi: 10.1016/j.apcatb.2025.125412

    56. [56]

      HUANG Z A, WANG Z Z, RABL H, NAGHDI S, ZHOU Q C, SCHWARZ S, APAYDIN D H, YU Y, EDER D. Ligand engineering enhances (photo) electrocatalytic activity and stability of zeolitic imidazolate frameworks via in-situ surface reconstruction[J]. Nat. Commun., 2024, 15(1): 9393  doi: 10.1038/s41467-024-53385-0

    57. [57]

      KORNIENKO N, ZHAO Y B, KLEY C S, ZHU C H, KIM D, LIN S, CHANG C J, YAGHI O M, YANG P D. Metal-organic frameworks for electrocatalytic reduction of carbon dioxide[J]. J. Am. Chem. Soc., 2015, 137(44): 14129-14135  doi: 10.1021/jacs.5b08212

    58. [58]

      ZHENG W R, LIU M J, LEE L Y S. Electrochemical instability of metal-organic frameworks: In situ spectroelectrochemical investigation of the real active sites[J]. ACS Catal., 2019, 10(1): 81-92

    59. [59]

      JIA S Q, ZHU Q G, CHEN X, XUE C, DONG M K, DENG T, CHENG H L, YAO T, JIAO J P, XIA Z H, ZENG J R, CHEN C J, WU H H, HE M Y, HAN B X. Copper-carbon bond metal-organic frameworks for highly efficient and stable CO2 electrochemical methanation[J]. J. Am. Chem. Soc., 2025, 147(26): 22580-22588  doi: 10.1021/jacs.5c03158

    60. [60]

      SUN H, LIN L, HUA W, XIE X L, MU Q Q, FENG K, ZHONG J, LYU F, DENG Z, PENG Y. Atomically dispersed Co-Cu alloy reconstructed from metal-organic framework to promote electrochemical CO2 methanation[J]. Nano Res., 2022, 16(3): 3680-3686

    61. [61]

      SUN H, CHEN L, XIONG L K, FENG K, CHEN Y F, ZHANG X, YUAN X Z, YANG B Y, DENG Z, LIU Y, RÜMMELI M H, ZHONG J, JIAO Y, PENG Y. Promoting ethylene production over a wide potential window on Cu crystallites induced and stabilized via current shock and charge delocalization[J]. Nat. Commun., 2021, 12(1): 6823  doi: 10.1038/s41467-021-27169-9

    62. [62]

      WEN C F, ZHOU M, LIU P F, LIU Y W, WU X F, MAO F X, DAI S, XU B B, WANG X L, JIANG Z, HU P, YANG S, WANG H F, YANG H G. Highly ethylene-selective electrocatalytic CO2 reduction enabled by isolated Cu-S motifs in metal-organic framework based precatalysts[J]. Angew. Chem. ‒Int. Edit., 2022, 61(2): e202111700  doi: 10.1002/anie.202111700

    63. [63]

      GONG Z L, YANG Y. The application of synchrotron X-ray techniques to the study of rechargeable batteries[J]. J. Energy Chem., 2018, 27(6): 1566-1583  doi: 10.1016/j.jechem.2018.03.020

    64. [64]

      ZHU Y P, KUO T R, LI Y H, QI M Y, CHEN G, WANG J L, XU Y J, CHEN H M. Emerging dynamic structure of electrocatalysts unveiled by in situ X-ray diffraction/absorption spectroscopy[J]. Energy Environ. Sci., 2021, 14(4): 1928-1958  doi: 10.1039/D0EE03903A

    65. [65]

      CAO Y T, ZHAO Y J, TANG T T, CUI S, LI M, SUN X H, CUI W, ZHAO H. In situ tracking of MOF structural reconstruction toward a Cu/Bi/MOF composite electrocatalyst for efficient CO2-to-formate conversion[J]. Chem. Eng. J., 2025, 522: 167200  doi: 10.1016/j.cej.2025.167200

    66. [66]

      KIM Y G, BARICUATRO J H, SORIAGA M P. Surface reconstruction of polycrystalline Cu electrodes in aqueous KHCO3 electrolyte at potentials in the early stages of CO2 reduction[J]. Electrocatalysis, 2018, 9(4): 526-530  doi: 10.1007/s12678-018-0469-z

    67. [67]

      CLARK E L, SINGH M R, KWON Y, BELL A T. Differential electrochemical mass spectrometer cell design for online quantification of products produced during electrochemical reduction of CO2[J]. Anal. Chem., 2015, 87(15): 8013-8020  doi: 10.1021/acs.analchem.5b02080

    68. [68]

      BRUCKENSTEIN S, GADDE R R. Use of a porous electrode for in situ mass spectrometric determination of volatile electrode reaction products[J]. J. Am. Chem. Soc., 1971, 93(3): 793-794  doi: 10.1021/ja00732a049

    69. [69]

      HUNG S F. In-situ X-ray techniques for non-noble electrocatalysts[J]. Pure Appl. Chem., 2020, 92(5): 733-749  doi: 10.1515/pac-2019-1006

    70. [70]

      SHEKHAWAT A, DAS D, ZERDOUMI R, MAHBUB M A A, EID B, CHANDRA S, SEISEL S, SCHUHMANN W. Defect-induced selectivity modulation using copper triazole molecular frameworks for electrochemical CO2 reduction[J]. Adv. Funct. Mater., 2025, 35(48): 2506172  doi: 10.1002/adfm.202506172

    71. [71]

      YU J L, XIAO J, GUO L, XIE Z Z, WANG K, WANG Y H, HAO F K, MA Y B, ZHOU J W, LU P Y, WANG G Z, MENG X, ZHU Z L, LI Q, LING C Y, SUN J Y, WANG Y, SONG S Q, FAN Z X. In situ phase transformation-enabled metal-organic frameworks for efficient CO2 electroreduction to multicarbon products in strong acidic media[J]. ACS Nano, 2024, 18(49): 33602-33613  doi: 10.1021/acsnano.4c12245

    72. [72]

      PU S H, HUANG T, SI D H, SUN M J, WANG W W, ZHANG T, CAO R. Electrolyte composition-dependent product selectivity in CO2 reduction with a porphyrinic metal-organic framework catalyst[J]. Angew. Chem. ‒Int. Edit., 2024, 63(45): e202411766  doi: 10.1002/anie.202411766

  • 加载中
    1. [1]

      Bizhu Shao , Huijun Dong , Yunnan Gong , Jianhua Mei , Fengshi Cai , Jinbiao Liu , Dichang Zhong , Tongbu Lu . Metal-Organic Framework-Derived Nickel Nanoparticles for Efficient CO2 Electroreduction in Wide Potential Windows. Acta Physico-Chimica Sinica, 2024, 40(4): 2305026-0. doi: 10.3866/PKU.WHXB202305026

    2. [2]

      Hui-Ying Chen , Hao-Lin Zhu , Pei-Qin Liao , Xiao-Ming Chen . Integration of Ru(Ⅱ)-Bipyridyl and Zinc(Ⅱ)-Porphyrin Moieties in a Metal-Organic Framework for Efficient Overall CO2 Photoreduction. Acta Physico-Chimica Sinica, 2024, 40(4): 2306046-0. doi: 10.3866/PKU.WHXB202306046

    3. [3]

      Wen WANG , Ying XU , Gang XIONG , Lixin YOU , Yaguang SUN . Pd-NHC-functionalized La-metal-organic framework for efficient Suzuki-Miyaura cross-coupling reaction. Chinese Journal of Inorganic Chemistry, 2026, 42(7): 1475-1484. doi: 10.11862/CJIC.20260025

    4. [4]

      Ruige ZHANG , Zhe ZHANG , He ZHENG , Zhan SHI . Recent advances of metal-organic frameworks for alkaline electrocatalytic oxygen evolution reaction. Chinese Journal of Inorganic Chemistry, 2025, 41(10): 2011-2028. doi: 10.11862/CJIC.20250185

    5. [5]

      Jianding LI , Junyang FENG , Huimin REN , Gang LI . Proton conductive properties of a Hf(Ⅳ)-based metal-organic framework built by 2,5-dibromophenyl-4,6-dicarboxylic acid. Chinese Journal of Inorganic Chemistry, 2025, 41(6): 1094-1100. doi: 10.11862/CJIC.20240464

    6. [6]

      Wenjuan SHI , Yuke LU , Xiuyuan LI , Lei HOU , Yaoyu WANG . Mg(Ⅱ) metal-organic frameworks based on biphenyltetracarboxylic acid: Synthesis and CO2 adsorption and catalytic conversion performance. Chinese Journal of Inorganic Chemistry, 2025, 41(12): 2455-2463. doi: 10.11862/CJIC.20250220

    7. [7]

      Mengyang LI , Zhonghao NIU , Hao XU , Jingli XIE . One-pot synthesis of 4H-pyran derivatives catalyzed by viologen-modified metal-organic frameworks. Chinese Journal of Inorganic Chemistry, 2026, 42(7): 1513-1522. doi: 10.11862/CJIC.20250205

    8. [8]

      Zelong LIANG , Shijia QIN , Pengfei GUO , Hang XU , Bin ZHAO . Synthesis and electrocatalytic CO2 reduction performance of metal-organic framework catalysts loaded with silver particles. Chinese Journal of Inorganic Chemistry, 2025, 41(1): 165-173. doi: 10.11862/CJIC.20240409

    9. [9]

      Xiangye Liu ,  Penghui Wu ,  Xinbo Gao ,  Chao Zhang . 多学科交叉实验教学设计——WS2片上微型电极制备、电化学测试及其原位表征分析. University Chemistry, 2026, 41(9): 270-281. doi: 10.12461/PKU.DXHX202508040

    10. [10]

      Ping LI , Geng TAN , Xin HUANG , Fuxing SUN , Jiangtao JIA , Guangshan ZHU , Jia LIU , Jiyang LI . Green synthesis of metal-organic frameworks with open metal sites for efficient ammonia capture. Chinese Journal of Inorganic Chemistry, 2025, 41(10): 2063-2068. doi: 10.11862/CJIC.20250020

    11. [11]

      Ri Peng ,  Yuxin Xie ,  Shuai Yuan ,  Ruwei Shen ,  Dunru Zhu . Metal-Organic Frameworks (2014-2024): A decade pursuit for top performance. Acta Physico-Chimica Sinica, 2026, 42(7): 100225-. doi: 10.1016/j.actphy.2025.100225

    12. [12]

      Qiuxiang FANG , Xinyue CHEN , Yuyang GUO , Penghui XIE , Pengbiao GENG . Application of metal-organic framework derived materials in lithium-sulfur battery separators. Chinese Journal of Inorganic Chemistry, 2026, 42(9): 1910-1932. doi: 10.11862/CJIC.20260188

    13. [13]

      Xiaogang YANG , Xinya ZHANG , Jing LI , Huilin WANG , Min LI , Xiaotian WEI , Xinci WU , Lufang MA . Synthesis, structure, and photoelectric properties of Zinc(Ⅱ)-triphenylamine based metal-organic framework. Chinese Journal of Inorganic Chemistry, 2025, 41(10): 2078-2086. doi: 10.11862/CJIC.20250167

    14. [14]

      Yi DING , Peiyu LIAO , Jianhua JIA , Mingliang TONG . Structure and photoluminescence modulation of silver(Ⅰ)-tetra(pyridin-4-yl)ethene metal-organic frameworks by substituted benzoates. Chinese Journal of Inorganic Chemistry, 2025, 41(1): 141-148. doi: 10.11862/CJIC.20240393

    15. [15]

      Hong CAI , Jiewen WU , Jingyun LI , Lixian CHEN , Siqi XIAO , Dan LI . Synthesis of a zinc-cobalt bimetallic adenine metal-organic framework for the recognition of sulfur-containing amino acids. Chinese Journal of Inorganic Chemistry, 2025, 41(1): 114-122. doi: 10.11862/CJIC.20240382

    16. [16]

      Qiang MA , Yiming ZHU , Meiqi HUA , Guangyu LU , Xingdong WANG , Hailong YU , Huan PANG , Yuping LI . Research progress on metal-organic frameworks as comprehensive carrier platforms for delivering anti-glioma drugs. Chinese Journal of Inorganic Chemistry, 2026, 42(4): 657-667. doi: 10.11862/CJIC.20250250

    17. [17]

      Bo YAN , Wenjuan JI , Lu XU , Wenzhuang LEI , Haiying YANG , Yunlong FU . Highly sensitive electrochemical detection for 4-aminophenol based on pore-confined nitrogen-rich tetranuclear cobalt-oxo cluster metal-organic framework. Chinese Journal of Inorganic Chemistry, 2026, 42(6): 1175-1189. doi: 10.11862/CJIC.20250375

    18. [18]

      Yukai SHEN , Zhaochao YAN , Yangjun ZHOU , Mei HUANG . Nickel foam-supported NiFeP/NiFcDCA heterojunction electrocatalyst for efficient urea oxidation reaction. Chinese Journal of Inorganic Chemistry, 2026, 42(2): 237-246. doi: 10.11862/CJIC.20250257

    19. [19]

      Enqi CHEN , Xinyi MA , Xiang HAN , Yutong YE , Kexin QIN , Shenghui LI , Changli ZHANG , Min YU , Changyun CHEN . Research progress on MOF-based electrocatalysts for the urea oxidation reaction. Chinese Journal of Inorganic Chemistry, 2026, 42(9): 1871-1892. doi: 10.11862/CJIC.20260168

    20. [20]

      Yinjie Xu , Suiqin Li , Lihao Liu , Jiahui He , Kai Li , Mengxin Wang , Shuying Zhao , Chun Li , Zhengbin Zhang , Xing Zhong , Jianguo Wang . Enhanced Electrocatalytic Oxidation of Sterols using the Synergistic Effect of NiFe-MOF and Aminoxyl Radicals. Acta Physico-Chimica Sinica, 2024, 40(3): 2305012-0. doi: 10.3866/PKU.WHXB202305012

Metrics
  • PDF Downloads(13)
  • Abstract views(300)
  • HTML views(73)

通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索
Address:Zhongguancun North First Street 2,100190 Beijing, PR China Tel: +86-010-82449177-888
Powered By info@rhhz.net

/

DownLoad:  Full-Size Img  PowerPoint
Return