Progress in MXene-based catalysts for oxygen evolution reaction

Jieli Chen, Xiaohong Gao, Jing Li, Zhenye Kang, Juan Bai, Tianjiao Wang, Yuliang Yuan, Chenghang You, Yu Chen, Bao Yu Xia, Xinlong Tian

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Electron ›› 2024, Vol. 2 ›› Issue (1) : 17. DOI: 10.1002/elt2.17
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Progress in MXene-based catalysts for oxygen evolution reaction

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Abstract

Electrochemical water splitting for hydrogen generation is considered one of the most promising strategies for reducing the use of fossil fuels and storing renewable electricity in hydrogen fuel. However, the anodic oxygen evolution process remains a bottleneck due to the remarkably high overpotential of about 300 mV to achieve a current density of 10 mA cm-2. The key to solving this dilemma is the development of highly efficient catalysts with minimized overpotential, long-term stability, and low cost. As a new 2D material, MXene has emerged as an intriguing material for future energy conversion technology due to its benefits, including superior conductivity, excellent hydrophilic properties, high surface area, versatile chemical composition, and ease of processing, which make it a potential constituent of the oxygen evolution catalyst layer. This review aims to summarize and discuss the recent development of oxygen evolution catalysts using MXene as a component, emphasizing the synthesis and synergistic effect of MXene-based composite catalysts. Based on the discussions summarized in this review, we also provide future research directions regarding electronic interaction, stability, and structural evolution of MXene-based oxygen evolution catalysts. We believe that a broader and deeper research in this area could accelerate the discovery of efficient catalysts for electrochemical oxygen evolution.

Keywords

MXene-based catalysts / oxygen evolution reaction / water splitting

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Jieli Chen, Xiaohong Gao, Jing Li, Zhenye Kang, Juan Bai, Tianjiao Wang, Yuliang Yuan, Chenghang You, Yu Chen, Bao Yu Xia, Xinlong Tian. Progress in MXene-based catalysts for oxygen evolution reaction. Electron, 2024, 2(1): 17 https://doi.org/10.1002/elt2.17

References

[1]
LiuM, ZhangR, ChenW. Graphene-supported nanoelectrocatalysts for fuel cells: synthesis, properties, and applications. Chem Rev. 2014;114(10):5117-5160.
CrossRef Google scholar
[2]
ChenC, KangY, HuoZ, et al. Highly crystalline multimetallic nanoframes with three-dimensional electrocatalytic surfaces. Science. 2014;343(6177):1339-1343.
CrossRef Google scholar
[3]
BenderMT, YuanX, ChoiKS. Alcohol oxidation as alternative anode reactions paired with (photo)electrochemical fuel production reactions. Nat Commun. 2020;11(1):4594.
CrossRef Google scholar
[4]
KumarA, DawP, MilsteinD. Homogeneous catalysis for sustainable energy: hydrogen and methanol economies, fuels from biomass, and related topics. Chem Rev. 2022;122(1):385-441.
CrossRef Google scholar
[5]
AntoliniE. Direct propane fuel cells. Fuel. 2022;315:123152.
CrossRef Google scholar
[6]
JiangD, Khivantsev K, WangY. Low-temperature methane oxidation for efficient emission control in natural gas vehicles: Pd and beyond. ACS Catal. 2020;10(23):14304-14314.
CrossRef Google scholar
[7]
ChuehWC, HaoY, JungW, Haile SM. High electrochemical activity of the oxide phase in model ceria-Pt and ceria-Ni composite anodes. Nat Mater. 2011;11(2):155-161.
CrossRef Google scholar
[8]
ZhangJ, YuJ, ZhangY, Li Q, GongJR. Visible light photocatalytic H2-production activity of CuS/ZnS porous nanosheets based on photoinduced interfacial charge transfer. Nano Lett. 2011;11:4774-4779.
CrossRef Google scholar
[9]
ShiY, ZhangB. Recent advances in transition metal phosphide nanomaterials: synthesis and applications in hydrogen evolution reaction. Chem Soc Rev. 2016;45(6):1529-1541.
CrossRef Google scholar
[10]
YangMQ, WangJ, WuH, HoGW. Noble metal-free nanocatalysts with vacancies for electrochemical water splitting. Small. 2018;14(15):e1703323.
CrossRef Google scholar
[11]
YanY, DuJS, GilroyKD, Yang D, XiaY, ZhangH. Intermetallic nanocrystals: syntheses and catalytic applications. Adv Mater. 2017;29(14):1605997.
CrossRef Google scholar
[12]
ChungDY, YooJM, SungYE. Highly durable and active Pt-based nanoscale design for fuel-cell oxygen-reduction electrocatalysts. Adv Mater. 2018;30(42):e1704123.
CrossRef Google scholar
[13]
PengY, LuB, ChenS. Carbon-supported single atom catalysts for electrochemical energy conversion and storage. Adv Mater. 2018;30(48):e1801995.
CrossRef Google scholar
[14]
DincerI, AydinMI. New paradigms in sustainable energy systems with hydrogen. Energy Convers Manag. 2023;283:116950.
CrossRef Google scholar
[15]
WangY, HuangX, WeiZ. Recent developments in the use of single-atom catalysts for water splitting. Chin J Catal. 2021;42(8):1269-1286.
CrossRef Google scholar
[16]
XuW, WangH. Earth-abundant amorphous catalysts for electrolysis of water. Chin J Catal. 2017;38(6):991-1005.
CrossRef Google scholar
[17]
LiQ, Molina Villarino A, PeltierCR, et al. Anion exchange membrane water electrolysis: the future of green hydrogen. J Phys Chem C. 2023;127(17):7901-7912.
CrossRef Google scholar
[18]
WangZ, YaoX, KangY, Miao L, XiaD, GanL. Structurally ordered low-Pt intermetallic electrocatalysts toward durably high oxygen reduction reaction activity. Adv Funct Mater. 2019;29(35):1902987.
CrossRef Google scholar
[19]
WenY, YangT, ChengC, Zhao X, LiuE, YangJ. Engineering Ru (IV) charge density in Ru@RuO2 core-shell electrocatalyst via tensile strain for efficient oxygen evolution in acidic media. Chin J Catal. 2020;41(8):1161-1167.
CrossRef Google scholar
[20]
HuL, XiaoR, WangX, et al. MXene-induced electronic optimization of metal-organic framework-derived CoFe LDH nanosheet arrays for efficient oxygen evolution. Appl Catal B Environ. 2021;298:120599.
CrossRef Google scholar
[21]
LiuJ, WangJ, ZhangB, et al. Hierarchical NiCo2S4@NiFe LDH heterostructures supported on nickel foam for enhanced overall-water-splitting activity. ACS Appl Mater Interfaces. 2017;9(18):15364-15372.
CrossRef Google scholar
[22]
ShindePV, ManeP, ChakrabortyB, RoutCS. Spinel NiFe2O4 nanoparticles decorated 2D Ti3C2 MXene sheets for efficient water splitting: experiments and theories. J Colloid Interface Sci. 2021;602:232-241.
CrossRef Google scholar
[23]
HuC, ZhangL, ZhaoZJ, Li A, ChangX, GongJ. Synergism of geometric construction and electronic regulation:3D Se-(NiCo)Sx/(OH)x nanosheets for highly efficient overall water splitting. Adv Mater. 2018;30(12):e1705538.
CrossRef Google scholar
[24]
AiZ, ShaoY, ChangB, et al. Rational modulation of p-n homojunction in P-doped g-C3N4 decorated with Ti3C2 for photocatalytic overall water splitting. Appl Catal B Environ. 2019;259:118077.
CrossRef Google scholar
[25]
ShangX, QinJF, LinJH, et al. Tuning the morphology and Fe/Ni ratio of a bimetallic Fe-Ni-S film supported on nickel foam for optimized electrolytic water splitting. J Colloid Interface Sci. 2018;523:121-132.
CrossRef Google scholar
[26]
LiB, LaiC, ZhangM, et al. A rising star of electrocatalyst support for energy conversion. Adv Energy Mater. 2020;10(16):2000177.
CrossRef Google scholar
[27]
TanC, CaoX, WuXJ, et al. Recent advances in ultrathin twodimensional nanomaterials. Chem Rev. 2017;117(9):6225-6331.
CrossRef Google scholar
[28]
QiaoJ, KongL, XuS, et al. Research progress of MXene-based catalysts for electrochemical water-splitting and metal-air batteries. Energy Storage Mater. 2021;43:509-530.
CrossRef Google scholar
[29]
KongW, DengJ, LiL. Recent advances in noble metal MXenebased catalysts for electrocatalysis. J Mater Chem A. 2022;10(28):14674-14691.
CrossRef Google scholar
[30]
GrimaudA, HongWT, Shao-HornY, Tarascon JM. Anionic redox processes for electrochemical devices. Nat Mater. 2016;15(2):121-126.
CrossRef Google scholar
[31]
GrimaudA, Diaz-Morales O, HanB, et al. Activating lattice oxygen redox reactions in metal oxides to catalyse oxygen evolution. Nat Chem. 2017;9(5):457-465.
CrossRef Google scholar
[32]
LinC, LiJ-L, LiX, et al. In-situ reconstructed Ru atom array on α-MnO2 with enhanced performance for acidic water oxidation. Nat Catal. 2021;4(12):1012-1023.
CrossRef Google scholar
[33]
CraigMJ, Coulter G, DolanE, et al. Universal scaling relations for the rational design of molecular water oxidation catalysts with near-zero overpotential. Nat Commun. 2019;10(1):4993.
CrossRef Google scholar
[34]
WangX, ZhongH, XiS, LeeWSV, XueJ. Understanding of oxygen redox in the oxygen evolution reaction. Adv Mater. 2022;34(50):2107956.
CrossRef Google scholar
[35]
WangN, OuP, MiaoRK, et al. Doping shortens the metal/metal distance and promotes OH coverage in nonnoble acidic oxygen evolution reaction catalysts. J Am Chem Soc. 2023;145(14):7829-7836.
CrossRef Google scholar
[36]
Wohlfahrt-MehrensM, Heitbaum J. Oxygen evolution on Ru andRuO2 electrodes studied using isotope labelling and on-line mass spectrometry. J ElectroanalChem Interfacial Electrochem. 1987;237(2):251-260.
CrossRef Google scholar
[37]
HuangZ-F, SongJ, DuY, et al. Chemical and structural origin of lattice oxygen oxidation in Co-Zn oxyhydroxide oxygen evolution electrocatalysts. Nat Energy. 2019;4:329-338.
CrossRef Google scholar
[38]
NiJ, ShiZ, WangY, et al. Suppressing the lattice oxygen diffusion via high-entropy oxide construction towards stabilized acidic water oxidation. Nano Res. 2023:1-17. https://doi.org/10.1007/s12274-023-5913-6
[39]
SurendranathY, KananMW, NoceraDG. Mechanistic studies of the oxygen evolution reaction by a cobalt-phosphate catalyst at neutral pH. J Am Chem Soc. 2010;132(46):16501-16509.
CrossRef Google scholar
[40]
ZhuW, YaoF, ChengK, et al. Direct dioxygen radical coupling driven by octahedral ruthenium–oxygen–cobalt collaborative coordination for acidic oxygen evolution reaction. J Am Chem Soc. 2023;145(32):17995-18006.
CrossRef Google scholar
[41]
NaguibM, Kurtoglu M, PresserV, et al. Two-dimensional nanocrystals produced by exfoliation of Ti3AlC2. Adv Mater. 2011;23(37):4248-4253.
CrossRef Google scholar
[42]
LiuA, LiangX, RenX, et al. Recent progress in MXene-based materials: potential high-performance electrocatalysts. Adv Funct Mater. 2020;30(38):2003437.
CrossRef Google scholar
[43]
AkuzumB, Maleski K, AnasoriB, et al. Rheological characteristics of 2D titanium carbide (MXene) dispersions: a guide for processing MXenes. ACS Nano. 2018;12(3):2685-2694.
CrossRef Google scholar
[44]
AlhabebM, Maleski K, AnasoriB, et al. Guidelines for synthesis and processing of two-dimensional titanium carbide (Ti3C2Tx MXene). Chem Mater. 2017;29(18):7633-7644.
CrossRef Google scholar
[45]
VahidMohammadiA, RosenJ, GogotsiY. The world of two-dimensional carbides and nitrides (MXenes). Science. 2021;372(6547):372.
CrossRef Google scholar
[46]
MathisTS, Maleski K, GoadA, et al. Modified MAX phase synthesis for environmentally stable and highly conductive Ti3C2 MXene. ACS Nano. 2021;15(4):6420-6429.
CrossRef Google scholar
[47]
LiY, ShaoH, LinZ, et al. A general Lewis acidic etching route for preparing MXenes with enhanced electrochemical performance in non-aqueous electrolyte. Nat Mater. 2020;19(8):894-899.
CrossRef Google scholar
[48]
ShuckCE, Sarycheva A, AnayeeM, et al. Scalable synthesis of Ti3C2Tx MXene. Adv Eng Mater. 2020;22(3):1901241.
CrossRef Google scholar
[49]
ZhangS, YingH, YuanB, Hu R, HanWQ. Partial atomic tin nanocomplex pillared few-layered Ti3C2Tx MXenes for superior lithium-ion storage. Nanomicro Lett. 2020;12(1):78.
CrossRef Google scholar
[50]
LiT, YaoL, LiuQ, et al. Fluorine-free synthesis of high-purity Ti3C2Tx (T=OH, O) via alkali treatment. Angew Chem Int Ed. 2018;57(21):6115-6119.
CrossRef Google scholar
[51]
YangS, ZhangP, WangF, et al. Fluoride-free synthesis of twodimensional titanium carbide (MXene) using a binary aqueous system. Angew Chem Int Ed. 2018;57(47):15491-15495.
CrossRef Google scholar
[52]
PangSY, WongYT, YuanS, et al. Universal strategy for HF-free facile and rapid synthesis of two-dimensional MXenes as multifunctional energy materials. JAmChem Soc. 2019;141(24):9610-9616.
CrossRef Google scholar
[53]
YangX, ZhangX, LuZ, YangZ, WuR. Design of highly stable and efficient bifunctional MXene-based electrocatalysts for oxygen reduction and evolution reactions. Phys Rev Appl. 2021;15(4):044053.
CrossRef Google scholar
[54]
LiuW, JiJ, YanX, et al. A cascade surface immobilization strategy to access high-density and closely distanced atomic Pt sites for enhancing alkaline hydrogen evolution reaction. J Mater Chem A. 2020;8(10):5255-5262.
CrossRef Google scholar
[55]
ZhouKL, WangC, WangZ, et al. Seamlessly conductive Co (OH)2 tailored atomically dispersed Pt electrocatalyst with a hierarchical nanostructure for an efficient hydrogen evolution reaction. Energy Environ Sci. 2020;13(9):3082-3092.
CrossRef Google scholar
[56]
WuH, FengC, ZhangL, Zhang J, WilkinsonDP. Non-noble metal electrocatalysts for the hydrogen evolution reaction in water electrolysis. Electrochem Energy Rev. 2021;4(3):473-507.
CrossRef Google scholar
[57]
GuoF, ZouZ, ZhangZ, et al. Confined sub-nanometer PtCo clusters as a highly efficient and robust electrocatalyst for the hydrogen evolution reaction. J Mater Chem A. 2021;9:5468-5474.
CrossRef Google scholar
[58]
LeTA, TranNQ, HongY, Kim M, LeeH. Porosity-engineering of MXene as a support material for a highly efficient electrocatalyst toward overall water splitting. ChemSusChem. 2020;13(5):945-955.
CrossRef Google scholar
[59]
KanD, WangD, ZhangX, et al. Rational design of bifunctional ORR/OER catalysts based on Pt/Pd-doped Nb2CT2 MXene by first-principles calculations. J Mater Chem A. 2020;8(6):3097-3108.
CrossRef Google scholar
[60]
LiJ, HouC, ChenC, et al. Collaborative interface optimization strategy guided ultrafine RuCo and MXene heterostructure electrocatalysts for efficient overall water splitting. ACS Nano. 2023;17(11):10947-10957.
CrossRef Google scholar
[61]
LuY, FanD, ChenZ, Xiao W, CaoC, YangX. Anchoring Co3O4 nanoparticles on MXene for efficient electrocatalytic oxygen evolution. Sci Bull. 2020;65(6):460-466.
CrossRef Google scholar
[62]
TyndallD, GannonL, HughesL, et al. Understanding the effect of MXene in a TMO/MXene hybrid catalyst for the oxygen evolution reaction. npj 2D Mater Appl. 2023;7(1):15.
CrossRef Google scholar
[63]
ParkCE, Senthil RA, JeongGH, ChoiMY. Architecting the high-entropy oxides on 2D MXene nanosheets by rapid microwave-heating strategy with robust photoelectrochemical oxygen evolution performance. Small. 2023;19(27):2207820.
CrossRef Google scholar
[64]
GanC, ZhangY, LiuZ, et al. Integrated Co4MnFe3/Ti3C2: componential and structural engineering toward boosting electrocatalytic oxygen evolution. J Phys Chem C. 2021;125(29):15872-15881.
CrossRef Google scholar
[65]
TianM, JiangY, TongH, Xu Y, XiaL. Mxene-supported FeCo-LDHs as highly efficient catalysts for enhanced electrocatalytic oxygen evolution reaction. ChemNanoMat. 2019;6(1):154-159.
CrossRef Google scholar
[66]
YuM, WangZ, LiuJ, SunF, YangP, Qiu J. A hierarchically porous and hydrophilic 3D nickel–iron/MXene electrode for accelerating oxygen and hydrogen evolution at high current densities. Nano Energy. 2019;63:103880.
CrossRef Google scholar
[67]
ChenY, YaoH, KongF, et al. V2C MXene synergistically coupling FeNi LDH nanosheets for boosting oxygen evolution reaction. Appl Catal B Environ. 2021;297:120474.
CrossRef Google scholar
[68]
YanL, ZhangB, WuS, YuJ. A general approach to the synthesis of transition metal phosphide nanoarrays on MXene nanosheets for pH-universal hydrogen evolution and alkaline overall water splitting. J Mater Chem A. 2020;8(28):14234-14242.
CrossRef Google scholar
[69]
LiN, HanJ, YaoK, et al. Synergistic phosphorized NiFeCo and MXene interaction inspired the formation of high-valence metal sites for efficient oxygen evolution. J Mater Sci Technol. 2022;106:90-97.
CrossRef Google scholar
[70]
XieY, YuH, DengL, et al. Anchoring stable FeS2 nanoparticles on MXene nanosheets via interface engineering for efficient water splitting. Inorg Chem Front. 2022;9(4):662-669.
CrossRef Google scholar
[71]
HanS, ChenY, HaoY, et al. Multi-dimensional hierarchical CoS2@MXene as trifunctional electrocatalysts for zinc-air batteries and overall water splitting. Sci China Mater. 2020;64(5):1127-1138.
CrossRef Google scholar
[72]
LiY, DuQ-X, CuiJ, ChenX, YangH-W, Qian H. Identifying the intrinsic active site in bimetallic Co3S4/Ni3S2 feathers on MXene nanosheets as a heterostructure for efficient oxygen evolution reaction. Inorg Chem Front. 2023;10(10):184-191.
CrossRef Google scholar
[73]
ZouH, HeB, KuangP, Yu J, FanK. Metal–organic framework-derived nickel–cobalt sulfide on ultrathin MXene nanosheets for electrocatalytic oxygen evolution. ACS Appl Mater Interfaces. 2018;10(26):22311-22319.
CrossRef Google scholar
[74]
YanL, LiangJ, LiH. In situ construction of heterostructure NiSe-NiO nanoarrays with rich oxygen vacancy on MXene for efficient oxygen evolution. Int J Hydrogen Energy. 2023;48(35):13159-13169.
CrossRef Google scholar
[75]
PangX, WuT, GuY, et al. Nb2Se2C: a new compound as a combination of transition metal dichalcogenide and MXene for oxygen evolution reaction. Chem Commun. 2020;56(63):9036-9039.
CrossRef Google scholar
[76]
ZhangJ, ZhaoY, GuoX, et al. Single platinum atoms immobilized on an MXene as an efficient catalyst for the hydrogen evolution reaction. Nat Catal. 2018;1(12):985-992.
CrossRef Google scholar
[77]
ZhaoQ, ZhangC, HuR, et al. Selective etching quaternary MAX phase toward single atom copper immobilized MXene (Ti3C2Clx) for efficient CO2 electroreduction to methanol. ACS Nano. 2021;15(3):4927-4936.
CrossRef Google scholar
[78]
TalibSH, LuZ, BashirB, et al. COoxidation on MXene (Mo2CS2) supported single-atom catalyst: a termolecular Eley-Rideal mechanism. Chin Chem Lett. 2023;34(2):107412.
CrossRef Google scholar
[79]
ZhaiX, DongH, LiY, et al. Termination effects of single-atom decorated V-Mo2CTx MXene for the electrochemical nitrogen reduction reaction. J Colloid Interface Sci. 2022;605:897-905.
CrossRef Google scholar
[80]
ZhaoX, ZhengX, LuQ, et al. Electrocatalytic enhancement mechanism of cobalt single atoms anchored on different MXene substrates in oxygen and hydrogen evolution reactions. EcoMat. 2022;5(2):e12293.
CrossRef Google scholar
[81]
WangE, GuoM, ZhouJ, Sun Z. Reasonable design of MXene-supported dual-atom catalysts with high catalytic activity for hydrogen evolution and oxygen evolution reaction: a first-principles investigation. Materials. 2023;16(4):1457.
CrossRef Google scholar
[82]
ChenY, CuiH, JiangQ, et al. M-N4-Gr/MXene heterojunction nanosheets as oxygen reduction and evolution reaction catalysts: machine learning and density functional theory insights. ACS Appl Nano Mater. 2023;6(9):7694-7703.
CrossRef Google scholar

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