Carbon-based materials for electrocatalytic energy conversion: from understanding to designing

Zhelin Mao , Yu Fu , Xinyi Long , Cuiyan Li , Mingze Li , Fangfang Zhu , Wenhao Ye , Zhiyong Fan , Xiangdong Yao

Chemical Synthesis ›› 2025, Vol. 5 ›› Issue (4) : 67

PDF
Chemical Synthesis ›› 2025, Vol. 5 ›› Issue (4) :67 DOI: 10.20517/cs.2025.41
review-article

Carbon-based materials for electrocatalytic energy conversion: from understanding to designing

Author information +
History +
PDF

Abstract

Renewable energy technologies are crucial for alleviating the energy crisis and pollution; electrocatalytic reactions such as oxygen reduction, hydrogen evolution, and oxygen evolution reactions are prospective energy conversion pathways. Although metal-based electrocatalysts are currently employed in electrochemical reactions, they encounter a series of issues with supply and price. Therefore, the development of new environmentally friendly, efficient, and low-cost electrochemical catalysts is imminent. Carbon-based materials such as amorphous carbons and nanostructured carbons have drawn extensive attention in electrocatalysis research due to their cost-effectiveness, environmental friendliness, and stability in acid and alkali media. In the initial stage, the heteroatoms embedded in the carbon skeleton (such as N, P, S, and B) were identified as active sites of carbon-based electrocatalysts. Subsequently, further investigations revealed that structural defects in carbon rings can disrupt the electronic conjugation system, which in turn affects the charge distribution and thereby enhances catalytic activity. Recently, our group has proposed a novel mechanism of defective carbon-based materials for electrochemical reactions, suggesting that the introduction of topological defects can boost electrocatalytic activity. Subsequently, extensive research has been carried out with direct evidence to prove different defects as active sites. Herein, we will emphasize the advancement of carbon-based electrocatalysts by a comprehensive understanding of catalyzing mechanisms. Then, the methodologies for controllably synthesizing doped carbons and carbons with defective structures will be summarized. Ultimately, we will outline the key challenges in designing intricate carbon active sites, particularly defect structures, provide insights into characterization techniques for investigating mechanisms, and importantly, look forward to future developments and opportunities.

Keywords

Electrocatalysis / electrocatalytic reactions / carbon-based materials / defects

Cite this article

Download citation ▾
Zhelin Mao, Yu Fu, Xinyi Long, Cuiyan Li, Mingze Li, Fangfang Zhu, Wenhao Ye, Zhiyong Fan, Xiangdong Yao. Carbon-based materials for electrocatalytic energy conversion: from understanding to designing. Chemical Synthesis, 2025, 5(4): 67 DOI:10.20517/cs.2025.41

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Gasteiger HA.Chemistry. Just a dream - or future reality?.Science2009;324:48-9

[2]

Steele BC.Materials for fuel-cell technologies.Nature2001;414:345-52

[3]

Staszak-Jirkovský J,Lopes PP.Design of active and stable Co-Mo-Sx chalcogels as pH-universal catalysts for the hydrogen evolution reaction.Nat Mater2016;15:197-203

[4]

Turner JM.The matter of a clean energy future.Science2022;376:1361

[5]

Kittner N,Kammen DM.Energy storage deployment and innovation for the clean energy transition.Nat Energy2017;2:17125

[6]

Xie C,Chen W.Insight into the design of defect electrocatalysts: from electronic structure to adsorption energy.Mater Today2019;31:47-68

[7]

Chu S.Opportunities and challenges for a sustainable energy future.Nature2012;488:294-303

[8]

Jiao Y,Jaroniec M.Design of electrocatalysts for oxygen- and hydrogen-involving energy conversion reactions.Chem Soc Rev2015;44:2060-86

[9]

Han N,Ma L.Supported cobalt polyphthalocyanine for high-performance electrocatalytic CO2 reduction.Chem2017;3:652-64

[10]

Wang X,He T.Precisely constructing pentagon trapped single-atomic iron sites in defective carbon for efficient oxygen electroreduction.Chem Catal2024;4:101007

[11]

Guo F,Sobrido AJ,Feng J.Recent advances in ultralow-Pt-loading electrocatalysts for the efficient hydrogen evolution.Adv Sci2023;10:e2301098 PMCID:PMC10375096

[12]

Li Y,Zhao G.Unveiling the activity origin of electrochemical oxygen evolution on heteroatom-decorated carbon matrix.Angew Chem Int Ed Engl2024;63:e202411218

[13]

Wu Q,Jia Y.Defective carbon-based materials: controllable synthesis and electrochemical applications.EnergyChem2021;3:100059

[14]

Wang X,Mao X.Dual integrating oxygen and sulphur on surface of CoTe nanorods triggers enhanced oxygen evolution reaction.Adv Sci2023;10:e2206204 PMCID:PMC10037960

[15]

Kawashima K,Smith LA.A review of transition metal boride, carbide, pnictide, and chalcogenide water oxidation electrocatalysts.Chem Rev2023;123:12795-3208

[16]

Jia Y,Gao G.A heterostructure coupling of exfoliated Ni-Fe hydroxide nanosheet and defective graphene as a bifunctional electrocatalyst for overall water splitting.Adv Mater2017;29:1700017

[17]

Li J,Cullen DA.Atomically dispersed manganese catalysts for oxygen reduction in proton-exchange membrane fuel cells.Nat Catal2018;1:935-45

[18]

Ding S,Li J.Nanostructure-based plasmon-enhanced Raman spectroscopy for surface analysis of materials.Nat Rev Mater2016;1:16021

[19]

Yan X,Yao X.Defects on carbons for electrocatalytic oxygen reduction.Chem Soc Rev2018;47:7628-58

[20]

Ortiz-Medina J,Cruz-Silva R.Defect engineering and surface functionalization of nanocarbons for metal-free catalysis.Adv Mater2019;31:e1805717

[21]

Wang J,Zhang J,Shao Z.Carbon-based electrocatalysts for sustainable energy applications.Prog Mater Sci2021;116:100717

[22]

Fan L,Yan X.Atomically isolated nickel species anchored on graphitized carbon for efficient hydrogen evolution electrocatalysis.Nat Commun2016;7:10667 PMCID:PMC4749971

[23]

Jorge AB,Periasamy AP.3D carbon materials for efficient oxygen and hydrogen electrocatalysis.Adv Energy Mater2020;10:1902494

[24]

Guo J,Liu Y.Nitrogen-doped porous carbon supported nonprecious metal single-atom electrocatalysts: from synthesis to application.Small Methods2019;3:1900159

[25]

Zhao W,She X.Sustainable seaweed-based one-dimensional (1D) nanofibers as high-performance electrocatalysts for fuel cells.J Mater Chem A2015;3:14188-94

[26]

Hu C.Doping of carbon materials for metal-free electrocatalysis.Adv Mater2019;31:e1804672

[27]

Singh SK,Nakamura J.Active sites and mechanism of oxygen reduction reaction electrocatalysis on nitrogen-doped carbon materials.Adv Mater2019;31:e1804297

[28]

Hong J,Yuan J.Atomic defects in two-dimensional materials: from single-atom spectroscopy to functionalities in opto-/electronics, nanomagnetism, and catalysis.Adv Mater2017;29:1606434

[29]

Hu C,Dai Q.Carbon-based metal-free electrocatalysts: from oxygen reduction to multifunctional electrocatalysis.Chem Soc Rev2021;50:11785-843

[30]

Zhu J.Defect engineering in carbon-based electrocatalysts: insight into intrinsic carbon defects.Adv Funct Mater2020;30:2001097

[31]

Jia Y.Defects in carbon-based materials for electrocatalysis: synthesis, recognition, and advances.Acc Chem Res2023;56:948-58

[32]

Guo K,Bao L,Lu X.Intrinsic carbon structural imperfections for enhancing energy conversion electrocatalysts.Chem Eng J2023;466:143060

[33]

Wang X,Mao X.Coupling Ni single atomic sites with metallic aggregates at adjacent geometry on carbon support for efficient hydrogen peroxide electrosynthesis.Adv Sci2024;11:e2402240 PMCID:PMC11220688

[34]

Xu X,Zhong Y.New undisputed evidence and strategy for enhanced lattice-oxygen participation of perovskite electrocatalyst through cation deficiency manipulation.Adv Sci2022;9:e2200530 PMCID:PMC9108636

[35]

Mcbreen J,Srinivasan S.Carbon supports for phosphoric acid fuel cell electrocatalysts: alternative materials and methods of evaluation.J Appl Electrochem1981;11:787-96

[36]

Watanabe M,Stonehart P.The influence of platinum crystallite size on the electroreduction of oxygen.J Electroanal Chem Interfacial Electrochem1989;261:375-87

[37]

Antolini E.Carbon supports for low-temperature fuel cell catalysts.Appl Catal B Environ2009;88:1-24

[38]

Pinheiro ALN,Souza E.Electrocatalysis on noble metal and noble metal alloys dispersed on high surface area carbon.J New Mater Electrochem Syst2003;6:1-8http://hdl.handle.net/11449/224471. (accessed 2 Jul 2025)

[39]

Yan X,Zhang L.Platinum stabilized by defective activated carbon with excellent oxygen reduction performance in alkaline media.Chin J Catal2017;38:1011-20

[40]

Yan X,Chen J,Yao X.Defective-activated-carbon-supported Mn-Co nanoparticles as a highly efficient electrocatalyst for oxygen reduction.Adv Mater2016;28:8771-8

[41]

Kim S.Effect of acid/base treatment to carbon blacks on preparation of carbon-supported platinum nanoclusters.Electrochim Acta2007;52:3013-21

[42]

Luo F,Chen D.Platinum catalysts supported on Nafion functionalized carbon black for fuel cell application.J Energy Chem2013;22:87-92

[43]

Sun X,Song P.Fluorine-doped carbon blacks: highly efficient metal-free electrocatalysts for oxygen reduction reaction.ACS Catal2013;3:1726-9

[44]

Kim JH,Shin TJ,Joo SH.Effect of surface oxygen functionalization of carbon support on the activity and durability of Pt/C catalysts for the oxygen reduction reaction.Carbon2016;101:449-57

[45]

Che G,Fisher ER.Carbon nanotubule membranes for electrochemical energy storage and production.Nature1998;393:346-9

[46]

Tang H,Huang Z.High dispersion and electrocatalytic properties of platinum on well-aligned carbon nanotube arrays.Carbon2004;42:191-7

[47]

Wen Z,Li J.Template synthesis of aligned carbon nanotube arrays using glucose as a carbon source: Pt decoration of inner and outer nanotube surfaces for fuel-cell catalysts.Adv Funct Mater2008;18:959-64

[48]

Liu C,Kei CC,Perng TP.Atomic layer deposition of platinum nanoparticles on carbon nanotubes for application in proton-exchange membrane fuel cells.Small2009;5:1535-8

[49]

Wang X,Chen Z,Yan Y.Durability investigation of carbon nanotube as catalyst support for proton exchange membrane fuel cell.J Power Sources2006;158:154-9

[50]

Novoselov KS,Morozov SV.Two-dimensional gas of massless Dirac fermions in graphene.Nature2005;438:197-200

[51]

Yoo E,Akita T,Nakamura J.Enhanced electrocatalytic activity of Pt subnanoclusters on graphene nanosheet surface.Nano Lett2009;9:2255-9

[52]

Sebastián D,Suelves I.Enhanced oxygen reduction activity and durability of Pt catalysts supported on carbon nanofibers.Appl Catal B Environ2012;115-6:269-75

[53]

Joo SH,Oh I.Ordered nanoporous arrays of carbon supporting high dispersions of platinum nanoparticles.Nature2001;412:169-72

[54]

Chen X,Dang W.Synthesis and electrocatalytic performance of ordered mesoporous carbons produced by a hard templating method using phenolic resol as carbon precursor.Carbon2009;47:354

[55]

Song S,Li Z.Effect of pore morphology of mesoporous carbons on the electrocatalytic activity of Pt nanoparticles for fuel cell reactions.Appl Catal B Environ2010;98:132-7

[56]

Orfanidi A,Neophytides S.Preparation and characterization of Pt on modified multi-wall carbon nanotubes to be used as electrocatalysts for high temperature fuel cell applications.Appl Catal B Environ2011;106:379-89

[57]

Kou R,Wang D.Enhanced activity and stability of Pt catalysts on functionalized graphene sheets for electrocatalytic oxygen reduction.Electrochem Commun2009;11:954-7

[58]

Czerw R,Charlier J.Identification of electron donor states in N-doped carbon nanotubes.Nano Lett2001;1:457-60

[59]

Maiyalagan T.Template synthesis and characterization of well-aligned nitrogen containing carbon nanotubes.Mater Chem Phys2005;93:291-5

[60]

Balgis R,Sago S,Okuyama K.Ultrahigh oxygen reduction activity of Pt/nitrogen-doped porous carbon microspheres prepared via spray-drying.J Power Sources2013;229:58-64

[61]

Zhang S.Enhanced-electrocatalytic activity of Pt nanoparticles supported on nitrogen-doped carbon for the oxygen reduction reaction.J Power Sources2013;240:60-5

[62]

Melke J,Habereder A.Metal-support interactions of platinum nanoparticles decorated N-doped carbon nanofibers for the oxygen reduction reaction.ACS Appl Mater Interfaces2016;8:82-90

[63]

Ma J,Luo Y.Electronic interaction between platinum nanoparticles and nitrogen-doped reduced graphene oxide: effect on the oxygen reduction reaction.J Mater Chem A2015;3:11891-904

[64]

Galeano C,Soorholtz M.Nitrogen-doped hollow carbon spheres as a support for platinum-based electrocatalysts.ACS Catal2014;4:3856-68

[65]

Zhang L,Cai R.Air cathode of zinc-air batteries: a highly efficient and durable aerogel catalyst for oxygen reduction.Nanoscale2019;11:826-32

[66]

Odedairo T,Ma J.Nanosheets Co3O4 interleaved with graphene for highly efficient oxygen reduction.ACS Appl Mater Interfaces2015;7:21373-80

[67]

Jasinski R.A new fuel cell cathode catalyst.Nature1964;201:1212-3

[68]

Gisselbrecht JP,Koecher M,Vogel E.Redox properties of porphycenes and metalloporphycenes as compared with porphyrins.J Am Chem Soc1990;112:8618-20

[69]

Li W,Higgins DC,Chen Z.Biologically inspired highly durable iron phthalocyanine catalysts for oxygen reduction reaction in polymer electrolyte membrane fuel cells.J Am Chem Soc2010;132:17056-8

[70]

Baran JD,Hellman A.Analysis of porphyrines as catalysts for electrochemical reduction of O2 and oxidation of H2O.J Am Chem Soc2014;136:1320-6

[71]

Kadish KM,Ou Z.Cobalt(III) corroles as electrocatalysts for the reduction of dioxygen: reactivity of a monocorrole, biscorroles, and porphyrin-corrole dyads.J Am Chem Soc2005;127:5625-31

[72]

Nguyen-Thanh D,Wang J,Akins DL.Cobalt–polypyrrole–carbon black (Co–PPY–CB) electrocatalysts for the oxygen reduction reaction (ORR) in fuel cells: composition and kinetic activity.Appl Catal B Environ2011;105:50-60

[73]

Morozan A,Filoramo A,Palacin S.Catalytic activity of cobalt and iron phthalocyanines or porphyrins supported on different carbon nanotubes towards oxygen reduction reaction.Carbon2011;49:4839-47

[74]

Tang H,Wang J,Wang D.Molecular architecture of cobalt porphyrin multilayers on reduced graphene oxide sheets for high-performance oxygen reduction reaction.Angew Chem Int Ed Engl2013;52:5585-9

[75]

Lefèvre M,Bertrand P.Molecular oxygen reduction in PEM fuel cells:  evidence for the simultaneous presence of two active sites in Fe-based catalysts.J Phys Chem B2002;106:8705-13

[76]

Lefèvre M,Bertrand P.Molecular oxygen reduction in PEM fuel cell conditions: ToF-SIMS analysis of co-based electrocatalysts.J Phys Chem B2005;109:16718-24

[77]

Faubert G,Côté R.Heat-treated iron and cobalt tetraphenylporphyrins adsorbed on carbon black: physical characterization and catalytic properties of these materials for the reduction of oxygen in polymer electrolyte fuel cells.Electrochim Acta1996;41:1689-701

[78]

Gong K,Xia Z,Dai L.Nitrogen-doped carbon nanotube arrays with high electrocatalytic activity for oxygen reduction.Science2009;323:760-4

[79]

Tang Y,Kauffman DR.Electrocatalytic activity of nitrogen-doped carbon nanotube cups.J Am Chem Soc2009;131:13200-1

[80]

Sharifi T,Jia X.Formation of active sites for oxygen reduction reactions by transformation of nitrogen functionalities in nitrogen-doped carbon nanotubes.ACS Nano2012;6:8904-12

[81]

Chen S,Zhao Y.Nitrogen-doped carbon nanocages as efficient metal-free electrocatalysts for oxygen reduction reaction.Adv Mater2012;24:5593-7

[82]

Zhao X,Zhang T.One-step synthesis of nitrogen-doped microporous carbon materials as metal-free electrocatalysts for oxygen reduction reaction.J Mater Chem A2014;2:11666-71

[83]

Chen P,Wang G.Nitrogen-doped nanoporous carbon nanosheets derived from plant biomass: an efficient catalyst for oxygen reduction reaction.Energy Environ Sci2014;7:4095-103

[84]

Yang L,Du L.Carbon-based metal-free ORR electrocatalysts for fuel cells: past, present, and future.Adv Mater2019;31:e1804799

[85]

Gupta S,Bae I,Yeager E.Heat-treated polyacrylonitrile-based catalysts for oxygen electroreduction.J Appl Electrochem1989;19:19-27

[86]

Zhang G,Cao F,Zheng X.N-doped graphene coupled with Co nanoparticles as an efficient electrocatalyst for oxygen reduction in alkaline media.J Power Sources2016;302:114-25

[87]

Hou Y,Wen Z,Feng X.Strongly coupled 3D hybrids of N-doped porous carbon nanosheet/CoNi alloy-encapsulated carbon nanotubes for enhanced electrocatalysis.Small2015;11:5940-8

[88]

Wang HF,Pang H,Xu Q.MOF-derived electrocatalysts for oxygen reduction, oxygen evolution and hydrogen evolution reactions.Chem Soc Rev2020;49:1414-48

[89]

Meng J,Xu L.General oriented formation of carbon nanotubes from metal-organic frameworks.J Am Chem Soc2017;139:8212-21

[90]

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:e2101038

[91]

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

[92]

Gao L,Jin Z.Correlating Fe source with Fe-N-C active site construction: guidance for rational design of high-performance ORR catalyst.J Energy Chem2018;27:1668-73

[93]

Wang XX,Pan YT.Nitrogen-coordinated single cobalt atom catalysts for oxygen reduction in proton exchange membrane fuel cells.Adv Mater2018;30:1706758

[94]

Wu J,Li Q.Densely populated isolated single Co-N site for efficient oxygen electrocatalysis.Adv Energy Mater2019;9:1900149

[95]

Choi CH,Woo SI.N-doped carbon prepared by pyrolysis of dicyandiamide with various MeCl2·xH2O (Me = Co, Fe, and Ni) composites: effect of type and amount of metal seed on oxygen reduction reactions.Appl Catal B Environ2012;119-20:123-31

[96]

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

[97]

Peng H,Liu X.Effect of transition metals on the structure and performance of the doped carbon catalysts derived from polyaniline and melamine for ORR application.ACS Catal2014;4:3797-805

[98]

Ye C.Recent advances in the design of a high performance metal–nitrogen–carbon catalyst for the oxygen reduction reaction.J Mater Chem A2021;9:22218-47

[99]

Zhu P,Wang X.Regulating the FeN4 moiety by constructing Fe-Mo dual-metal atom sites for efficient electrochemical oxygen reduction.Nano Lett2022;22:9507-15

[100]

Wang B,Zhang X.Nitrogen doped porous carbon polyhedral supported Fe and Ni dual-metal single-atomic catalysts: template-free and metal ligand-free sysnthesis with microwave-assistance and d-band center modulating for boosted ORR catalysis in zinc-air batteries.Chem Eng J2022;437:135295

[101]

Zhai W,Duan Y.Densely populated trimetallic single-atoms for durable low-temperature flexible zinc-air batteries.Appl Catal B Environ2024;342:123438

[102]

Wan X,Liu J.Iron atom-cluster interactions increase activity and improve durability in Fe-N-C fuel cells.Nat Commun2022;13:2963 PMCID:PMC9135695

[103]

Li Y,Zheng L.Preparation of Fe–N–C catalysts with FeNx (x = 1, 3, 4) active sites and comparison of their activities for the oxygen reduction reaction and performances in proton exchange membrane fuel cells.J Mater Chem A2019;7:26147-53

[104]

Xue D,Jiang S.Altering the spin state of Fe-N-C through ligand field modulation of single-atom sites boosts the oxygen reduction reaction.Nano Energy2023;105:108020

[105]

Zhang N,Ge J.High-density planar-like Fe2N6 structure catalyzes efficient oxygen reduction.Matter2020;3:509-21

[106]

Zhang L,Yang Y.Advances on axial coordination design of single-atom catalysts for energy electrocatalysis: a review.Nanomicro Lett2023;15:228 PMCID:PMC10575848

[107]

Poulos TL.Heme enzyme structure and function.Chem Rev2014;114:3919-62 PMCID:PMC3981943

[108]

Gong L,Wang Y.Bridge bonded oxygen ligands between approximated FeN4 sites confer catalysts with high ORR performance.Angew Chem Int Ed Engl2020;59:13923-8

[109]

Zhao K,Li Y.Insight into the mechanism of axial ligands regulating the catalytic activity of Fe–N4 sites for oxygen reduction reaction.Adv Energy Mater2022;12:2103588

[110]

Sabhapathy P,Sabbah A.Axial chlorine induced electron delocalization in atomically dispersed FeN4 electrocatalyst for oxygen reduction reaction with improved hydrogen peroxide tolerance.Small2023;19:e2303598

[111]

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

[112]

Lefèvre M,Jaouen F.Iron-based catalysts with improved oxygen reduction activity in polymer electrolyte fuel cells.Science2009;324:71-4

[113]

Xu X,Kuang Z.Investigation on the demetallation of Fe-N-C for oxygen reduction reaction: the influence of structure and structural evolution of active site.Appl Catal B Environ2022;309:121290

[114]

Liu K,Wang G.Role of local carbon structure surrounding FeN4 sites in boosting the catalytic activity for oxygen reduction.J Phys Chem C2017;121:11319-24

[115]

Liu K,Lin Y.Insights into the activity of single-atom Fe-N-C catalysts for oxygen reduction reaction.Nat Commun2022;13:2075 PMCID:PMC9018836

[116]

Wang X,Mao X.Edge-rich Fe-N4 active sites in defective carbon for oxygen reduction catalysis.Adv Mater2020;32:e2000966

[117]

Yin H,Lu B.Phosphorus-driven electron delocalization on edge-type FeN4 active sites for oxygen reduction in acid medium.ACS Catal2021;11:12754-62

[118]

Tian Y,Wu Z.Edge-hosted atomic Co-N4 sites on hierarchical porous carbon for highly selective two-electron oxygen reduction reaction.Angew Chem Int Ed Engl2022;61:e202213296 PMCID:PMC10098864

[119]

Liu Y,Zhang T.Novel honeycomb-like carbons with tunable nanopores as metal-free N, O-codoped catalysts for robust oxygen reduction.Chem Eng J2022;433:133560

[120]

Ren G,Zhang J.N-doped porous carbon spheres as metal-free electrocatalyst for oxygen reduction reaction.J Mater Chem A2021;9:5751-8

[121]

Li W,Jia C,Wen Z.Covalent organic framework-derived fluorine, nitrogen dual-doped carbon as metal-free bifunctional oxygen electrocatalysts.J Colloid Interface Sci2023;650:275-83

[122]

Zheng Y,Chen S.Metal-free multi-heteroatom-doped carbon bifunctional electrocatalysts derived from a covalent triazine polymer.Small2020;16:e2004342

[123]

Li J,Luo J,Deng J.Metal-organic framework-derived brain platygyra coral-like porous carbon architectures for real-time monitoring of hydrogen peroxide in biological matrices.Chem Eng J2023;471:144805

[124]

Kanagavalli P,Bhat VS,Hegde G.Nitrogenated-carbon nanoelectrocatalyst advertently processed from bio-waste of Allium sativum for oxygen reduction reaction.J Nanostruct Chem2021;11:343-52

[125]

Li M,Wang F.The influence of the type of N dopping on the performance of bifunctional N-doped ordered mesoporous carbon electrocatalysts in oxygen reduction and evolution reaction.J Energy Chem2017;26:422-7

[126]

Kim J,Lee J,Jo C.Biomass-Derived P, N self-doped hard carbon as bifunctional oxygen electrocatalyst and anode material for seawater batteries.Adv Funct Mater2021;31:2010882

[127]

Li X,Gao S.A general dual-templating approach to biomass-derived hierarchically porous heteroatom-doped carbon materials for enhanced electrocatalytic oxygen reduction.Energy Environ Sci2019;12:648-55

[128]

Kumar S,Friedman A,Nessim GD.Doping and reduction of graphene oxide using chitosan-derived volatile N-heterocyclic compounds for metal-free oxygen reduction reaction.Carbon2017;120:419-26

[129]

Song L,Liang H.Macroscopic-scale synthesis of nitrogen-doped carbon nanofiber aerogels by template-directed hydrothermal carbonization of nitrogen-containing carbohydrates.Nano Energy2016;19:117-27

[130]

Graglia M,Hantke T,Esposito D.Nitro lignin-derived nitrogen-doped carbon as an efficient and sustainable electrocatalyst for oxygen reduction.ACS Nano2016;10:4364-71

[131]

Huang B,Xie Z.Biomass derived 2D carbons via a hydrothermal carbonization method as efficient bifunctional ORR/HER electrocatalysts.J Mater Chem A2017;5:23481-8

[132]

Burmeister CF.Process engineering with planetary ball mills.Chem Soc Rev2013;42:7660-7

[133]

Shen X,Han M.Rapid mechanochemical synthesis of polyanionic cathode with improved electrochemical performance for Na-ion batteries.Nat Commun2021;12:2848 PMCID:PMC8121810

[134]

Yuan R,Hou R.Structural transformation of porous and disordered carbon during ball-milling.Chem Eng J2023;454:140418

[135]

Morawa Eblagon, K.; Rey-Raap, N.; Figueiredo, J. L.; Pereira, M. F. R. Relationships between texture, surface chemistry and performance of N-doped carbon xerogels in the oxygen reduction reaction.Appl Surf Sci2021;548:149242

[136]

Yang N,Wang G.Pyrolysis-free mechanochemical conversion of small organic molecules into metal-free heteroatom-doped mesoporous carbons for efficient electrosynthesis of hydrogen peroxide.ACS Mater Lett2023;5:379-87

[137]

Wang Y,Zhu M.N-Doping of plasma exfoliated graphene oxide via dielectric barrier discharge plasma treatment for the oxygen reduction reaction.J Mater Chem A2018;6:2011-7

[138]

Li OL,Kaneko A,Ishizaki T.Exploration of Lewis basicity and oxygen reduction reaction activity in plasma-tailored nitrogen-doped carbon electrocatalysts.Catal Today2019;337:102-9

[139]

Niu J,Saito N.Graphitic N-doped graphene via solution plasma with a single dielectric barrier.Carbon2022;199:347-56

[140]

Khan A,Colmenares JC.Chitosan-based N-doped carbon materials for electrocatalytic and photocatalytic applications.ACS Sustain Chem Eng2020;8:4708-27

[141]

Lai L,Zhan D.Exploration of the active center structure of nitrogen-doped graphene-based catalysts for oxygen reduction reaction.Energy Environ Sci2012;5:7936

[142]

Guo D,Akiba C,Kondo T.Active sites of nitrogen-doped carbon materials for oxygen reduction reaction clarified using model catalysts.Science2016;351:361-5

[143]

Wang N,Li L.Graphitic nitrogen is responsible for oxygen electroreduction on nitrogen-doped carbons in alkaline electrolytes: insights from activity attenuation studies and theoretical calculations.ACS Catal2018;8:6827-36

[144]

Zhao Y,Yao H.Few-layer graphdiyne doped with sp-hybridized nitrogen atoms at acetylenic sites for oxygen reduction electrocatalysis.Nat Chem2018;10:924-31

[145]

Jiao Y,Jaroniec M.Origin of the electrocatalytic oxygen reduction activity of graphene-based catalysts: a roadmap to achieve the best performance.J Am Chem Soc2014;136:4394-403 PMCID:PMC3986026

[146]

Choi CH,Woo SI.Binary and ternary doping of nitrogen, boron, and phosphorus into carbon for enhancing electrochemical oxygen reduction activity.ACS Nano2012;6:7084-91

[147]

Chao G,Wang D.Activation of graphitic nitrogen sites for boosting oxygen reduction.Carbon2020;159:611-6

[148]

Wu K,Zeng Q,Gentle IR.Solution phase synthesis of halogenated graphene and the electrocatalytic activity for oxygen reduction reaction.Chin J Catal2014;35:884-90

[149]

Gong T,Liu X,Zhang Y.N, F-codoped microporous carbon nanofibers as efficient metal-free electrocatalysts for ORR.Nanomicro Lett2019;11:9 PMCID:PMC7770828

[150]

Xiang F,Yang J.Enhanced selectivity in the electroproduction of H2O2 via F/S dual-doping in metal-free nanofibers.Adv Mater2023;35:e2208533

[151]

Li Y,Wang Y.A self-sponsored doping approach for controllable synthesis of S and N co-doped trimodal-porous structured graphitic carbon electrocatalysts.Energy Environ Sci2014;7:3720-6

[152]

Liu J,Ruan M.Catalytic properties of graphitic and pyridinic nitrogen doped on carbon black for oxygen reduction reaction.Chin J Catal2016;37:1119-26

[153]

Li L,Zheng Y.Tailoring selectivity of electrochemical hydrogen peroxide generation by tunable pyrrolic-nitrogen-carbon.Adv Energy Mater2020;10:2000789

[154]

Iglesias D,Melchionna M.N-doped graphitized carbon nanohorns as a forefront electrocatalyst in highly selective O2 reduction to H2O2.Chem2018;4:106-23

[155]

Zhang T,Zhang J.Carbon charge population and oxygen molecular transport regulated by program-doping for highly efficient 4e-ORR.Chem Eng J2022;444:136560

[156]

Cheng J,Li H.Steering the oxygen reduction reaction pathways of N-carbon hollow spheres by heteroatom doping.Appl Catal B Environ2023;327:122470

[157]

Chen S,Chen K.Chemical identification of catalytically active sites on oxygen-doped carbon nanosheet to decipher the high activity for electro-synthesis hydrogen peroxide.Angew Chem Int Ed Engl2021;60:16607-14

[158]

Koh KH,Mostaghim AHB,Han TH.Elaborating nitrogen and oxygen dopants configurations within graphene electrocatalysts for two-electron oxygen reduction.ACS Mater Lett2022;4:320-8

[159]

Zhao H,Jin Z.Carbon for the oxygen reduction reaction: a defect mechanism.J Mater Chem A2015;3:11736-9

[160]

Zhao X,Yan X.Defect-driven oxygen reduction reaction (ORR) of carbon without any element doping.Inorg Chem Front2016;3:417-21

[161]

Tao L,Jin R.Bridging the surface charge and catalytic activity of a defective carbon electrocatalyst.Angew Chem Int Ed Engl2019;58:1019-24

[162]

Jia Y,Zhuang L.Identification of active sites for acidic oxygen reduction on carbon catalysts with and without nitrogen doping.Nat Catal2019;2:688-95

[163]

Wang X,Mao X.A directional synthesis for topological defect in carbon.Chem2020;6:2009-23

[164]

Li N,Guo K.Deciphering the role of native defects in dopant-mediated defect engineering of carbon electrocatalysts.Adv Energy Mater2024;14:2401008

[165]

Wu Q,Liu Q.Ultra-dense carbon defects as highly active sites for oxygen reduction catalysis.Chem2022;8:2715-33

[166]

Jia Y,Du A.Defect graphene as a trifunctional catalyst for electrochemical reactions.Adv Mater2016;28:9532-8

[167]

Zhu J,Li S.Defective N/S-codoped 3D cheese-like porous carbon nanomaterial toward efficient oxygen reduction and Zn-Air batteries.Small2018;14:e1800563

[168]

Zhu J,Mei W.Effects of intrinsic pentagon defects on electrochemical reactivity of carbon nanomaterials.Angew Chem Int Ed Engl2019;58:3859-64

[169]

Tang C,Chen X.Topological defects in metal-free nanocarbon for oxygen electrocatalysis.Adv Mater2016;28:6845-51

[170]

Shi P,Yao M.Spiral effect of helical carbon nanorods boosting electrocatalysis of oxygen reduction reaction.Sci China Mater2022;65:1531-8

[171]

Jiang Y,Sun T.Significant contribution of intrinsic carbon defects to oxygen reduction activity.ACS Catal2015;5:6707-12

[172]

Srinivas K,Ma F.Defect-engineered mesoporous undoped carbon nanoribbons for benchmark oxygen reduction reaction.Small2023;19:e2301589

[173]

Xia H,Dong X.Boosting oxygen reduction reaction kinetics by designing rich vacancy coupling pentagons in the defective carbon.J Am Chem Soc2023;145:25695-704

[174]

Wang X,Han Y.Highly curved defect sites: how curvature effect influences metal-free defective carbon electrocatalysts.Small2024;20:e2401447

[175]

Zhang J,Zhu J.Defect and pyridinic nitrogen engineering of carbon-based metal-free nanomaterial toward oxygen reduction.Nano Energy2018;52:307-14

[176]

Fernandez-Escamilla HN,Contreras E.Understanding the selectivity of the oxygen reduction reaction at the atomistic level on nitrogen-doped graphitic carbon materials.Adv Energy Mater2021;11:2002459

[177]

Yan X,Jia Y.Clarifying the origin of oxygen reduction activity in heteroatom-modified defective carbon.Cell Rep Phys Sci2020;1:100083

[178]

Li D,Chang G.A defect-driven metal-free electrocatalyst for oxygen reduction in acidic electrolyte.Chem2018;4:2345-56

[179]

Wu Q,Mao X.Unveiling the dynamic active site of defective carbon-based electrocatalysts for hydrogen peroxide production.Nat Commun2023;14:6275 PMCID:PMC10560253

[180]

Song H,Tang Z,Yang B.Single atom ruthenium-doped CoP/CDs nanosheets via splicing of carbon-dots for robust hydrogen production.Angew Chem Int Ed Engl2021;60:7234-44

[181]

Lv Y,Lin H.A novel carbon support: few-layered graphdiyne-decorated carbon nanotubes capture metal clusters as effective metal-supported catalysts.Small2021;17:e2006442

[182]

Li D,Hao X.Wood-derived freestanding carbon-based electrode with hierarchical structure for industrial-level hydrogen production.Adv Mater2024;36:e2304917

[183]

Liu W,Yan X.A cascade surface immobilization strategy to access high-density and closely distanced atomic Pt sites for enhancing alkaline hydrogen evolution reaction.J Mater Chem A2020;8:5255-62

[184]

Yang Q,Yuan P.Single carbon vacancy traps atomic platinum for hydrogen evolution catalysis.J Am Chem Soc2022;144:2171-8

[185]

Li T,Zhang C.Cobalt single atom anchored on N-doped carbon nanoboxes as typical single-atom catalysts (SACs) for boosting the overall water splitting.Chem Eng J2023;458:141435

[186]

Liu X,Zheng L,Tang C.Engineering low-coordination single-atom cobalt on graphitic carbon nitride catalyst for hydrogen evolution.ACS Catal2022;12:5517-26

[187]

Zhang L,Liu H.Charge polarization from atomic metals on adjacent graphitic layers for enhancing the hydrogen evolution reaction.Angew Chem Int Ed Engl2019;58:9404-8

[188]

Zhang Y,Dang J.Defect engineering via ternary nonmetal doping boosts the catalytic activity of ZIF-derived carbon-based metal-free catalysts for photovoltaics and water splitting.Mater Today Phys2022;27:100785

[189]

Lu S,Shi Y,Zhang Z.Unveiling the structural transformation and activity origin of heteroatom-doped carbons for hydrogen evolution.Proc Natl Acad Sci U S A2023;120:e2300549120 PMCID:PMC10193929

[190]

Zhang K.Advanced transition metal-based OER electrocatalysts: current status, opportunities, and challenges.Small2021;17:e2100129

[191]

Fan X,Yi S.Intrinsic-structural-modulated carbon cloth as efficient electrocatalyst for water oxidation.Appl Catal B Environ2021;292:120152

[192]

Zhang J,Xia Z.A metal-free bifunctional electrocatalyst for oxygen reduction and oxygen evolution reactions.Nat Nanotechnol2015;10:444-52

[193]

Lu S,Zhou W,Wu F.Dissolution of the heteroatom dopants and formation of ortho-quinone moieties in the doped carbon materials during water electrooxidation.J Am Chem Soc2022;144:3250-8

[194]

Qiang F,Wang H.Oxygen engineering enables N-doped porous carbon nanofibers as oxygen reduction/evolution reaction electrocatalysts for flexible zinc–air batteries.ACS Catal2022;12:4002-15

[195]

Zhang L,Gao G.Graphene defects trap atomic Ni species for hydrogen and oxygen evolution reactions.Chem2018;4:285-97

[196]

Kumar P,Zeraati AS.High-density cobalt single-atom catalysts for enhanced oxygen evolution reaction.J Am Chem Soc2023;145:8052-63

[197]

Lei X,Zheng Y.High-entropy single-atom activated carbon catalysts for sustainable oxygen electrocatalysis.Nat Sustain2023;6:816-26

[198]

Bai X,Sun Y.Low ruthenium content confined on boron carbon nitride as an efficient and stable electrocatalyst for acidic oxygen evolution reaction.Angew Chem Int Ed Engl2023;62:e202308704

[199]

Lu S,Shi Y,Yu Y.Phenanthrenequinone-like moiety functionalized carbon for electrocatalytic acidic oxygen evolution.Chem2022;8:1415-26

[200]

Xie L,Wu Y.Isomerization engineering of oxygen-enriched carbon quantum dots for efficient electrochemical hydrogen peroxide production.Small2024;20:e2401253

[201]

Zhang C,Guo K,Zhang J.A pentagonal defect-rich metal-free carbon electrocatalyst for boosting acidic O2 reduction to H2O2 production.J Am Chem Soc2023;145:11589-98

[202]

Zhu D,Fong WK,Zhang J.The ratio of sp2 and sp3 hybridized carbon determines the performance of carbon-based catalysts in H2O2 electrosynthesis from O2.Angew Chem Int Ed Engl2025;64:e202500145 PMCID:PMC12001155

[203]

Wang H,Lu Z.Nonmetallic high-entropy-engineered nanocarbons for advanced ORR electrocatalysis.Angew Chem Int Ed Engl2025;64:e202501290

[204]

Lu X,Ma X.Multiple secondary bond-mediated C-N coupling over N-doped carbon electrocatalysts.J Am Chem Soc2025;147:19342-52

[205]

Luo X,Xu Y.Neighboring carbon defects enhanced molecular oxygen activation of cobalt single atom catalysts toward efficient aerobic alcohols oxidation.Angew Chem Int Ed Engl2025;64:e202502430

[206]

Zhang Y,Song X.Defect-enabled local high-temperature field within carbon to promote in-plane integration of an electrocatalyst for CO2-to-CO conversion.Energy Environ Sci2025;18:1331-42

[207]

Huang Z,Pang Z.Direct observation of the formation and stabilization of metallic nanoparticles on carbon supports.Nat Commun2020;11:6373 PMCID:PMC7733500

[208]

Ma R,Zhang B.Defect-repair in carbon for fast and stable potassium and sodium storage.Chem Eng J2025;512:162509

[209]

Chen B,Pinto RV.A Scalable Robust Microporous Al-MOF for post-combustion carbon capture.Adv Sci2024;11:e2401070 PMCID:PMC11151012

AI Summary AI Mindmap
PDF

184

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/