Multi-interface engineering of nickel-based electrocatalysts for alkaline hydrogen evolution reaction

Xiaoxiang Zhang , Yuxuan Guo , Congwei Wang

Energy Materials ›› 2024, Vol. 4 ›› Issue (4) : 400044

PDF
Energy Materials ›› 2024, Vol. 4 ›› Issue (4) :400044 DOI: 10.20517/energymater.2023.115
Review

Multi-interface engineering of nickel-based electrocatalysts for alkaline hydrogen evolution reaction

Author information +
History +
PDF

Abstract

High gravimetric energy density and zero carbon emission of hydrogen have motivated hydrogen energy to be an attractive alternative to fossil fuels. Electrochemical water splitting in alkaline medium, driven by green electricity from renewable sources, has been mentioned as a potential solution for sustainable hydrogen production. Hydrogen evolution reaction (HER), as a cathodic half-reaction of water splitting, requires additional overpotential to obtain protons via water adsorption/dissociation, suffering from slow kinetics in alkaline solution. Robust and active nickel (Ni)-based electrocatalyst is a promising candidate for achieving precious-metal comparable performance owing to its platinum-like electronic structures with more efficient electrical power consumption. Various modification strategies have been explored on Ni-based catalysts, among which multi-interface engineering is one of the most effective routines to optimize both the intrinsic activity of Ni-based electrocatalysts and the extrinsic stacked component limitations. Herein, we systematically summarize the recent progress of multi-interface engineering of Ni-based electrocatalysts to improve their alkaline HER catalytic activity. The origin of sluggish alkaline HER kinetics is first discussed. Subsequently, three kinds of interfaces, geometrically and reactively, conductive substrate/electrocatalyst interface, electrocatalyst internal heterointerface, and electrocatalyst/electrolyte interface, were cataloged and discussed on their contribution mechanisms toward alkaline HER. Particular focuses lie on the microstructural and electronic modulation of key intermediates with energetically favorable adsorption/desorption behaviors via rationally designed interfaces. Finally, challenges and perspectives for multi-interface engineering are discussed. We hope that this review will be inspiring and beneficial for the exploration of efficient Ni-based electrocatalysts for alkaline water electrolysis.

Keywords

Interface / electrocatalyst / alkaline / hydrogen evolution reaction

Cite this article

Download citation ▾
Xiaoxiang Zhang, Yuxuan Guo, Congwei Wang. Multi-interface engineering of nickel-based electrocatalysts for alkaline hydrogen evolution reaction. Energy Materials, 2024, 4(4): 400044 DOI:10.20517/energymater.2023.115

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

He Q,Shou H.Synergic reaction kinetics over adjacent ruthenium sites for superb hydrogen generation in alkaline media.Adv Mater2022;34:e2110604

[2]

Fan K,Huang H.Theoretical evidence of self-intercalated 2D materials for battery and electrocatalytic applications.Energy Mater2023;3:300047

[3]

Tian X,Yang T.Porous worm-like NiMoO4 coaxially decorated electrospun carbon nanofiber as binder-free electrodes for high performance supercapacitors and lithium-ion batteries.Appl Surf Sci2018;434:49-56

[4]

Cao X,Huang K,Wu J.Strained carbon steel as a highly efficient catalyst for seawater electrolysis.Energy Mater2022;2:200010

[5]

Tian X,Song Y.Symmetric supercapacitor operating at 1.5 V with combination of nanosheet-based NiMoO4 microspheres and redox additive electrolyte.J Energy Stor2022;47:103960

[6]

Xu HG,Ding Y.Rational design of hydrogen evolution reaction electrocatalysts for commercial alkaline water electrolysis.Small Struct2023;4:2200404

[7]

Zhu B,Xu Q.Metal-organic framework based catalysts for hydrogen evolution.Adv Energy Mater2018;8:1801193

[8]

Yan D,Wang S.Innovative electrochemical strategies for hydrogen production: from electricity input to electricity output.Angew Chem Int Ed2023;62:e202214333

[9]

Li J,Xue Q.Insights into the interfacial lewis acid-base pairs in CeO2 -loaded CoS2 electrocatalysts for alkaline hydrogen evolution.Small2021;17:e2103018

[10]

Chen Z,Wang J.Metallic W/WO2 solid-acid catalyst boosts hydrogen evolution reaction in alkaline electrolyte.Nat Commun2023;14:5363 PMCID:PMC10475068

[11]

Jin J,Liu H.Atomic sulfur filling oxygen vacancies optimizes H absorption and boosts the hydrogen evolution reaction in alkaline media.Angew Chem Int Ed2021;60:14117-23

[12]

Liu Y,Liu W.Boosting interfacial charge transfer for alkaline hydrogen evolution via rational interior Se modification.Nano Energy2021;81:105641

[13]

Zhang JZ,Zhang HB.Prussian-blue-analogue-derived ultrathin Co2P-Fe2P nanosheets for universal-pH overall water splitting.Nano Lett2023;23:8331-8

[14]

Li Y,Huang Q.C60 fullerenol to stabilize and activate Ru nanoparticles for highly efficient hydrogen evolution reaction in alkaline media.ACS Catal2023;13:7597-605

[15]

Zhao X,Xiao D.Isolated Pd atom anchoring endows cobalt diselenides with regulated water-reduction kinetics for alkaline hydrogen evolution.Appl Catal B Environ2021;295:120280

[16]

Wu J,Zhao X.Atomically dispersed MoOx on rhodium metallene boosts electrocatalyzed alkaline hydrogen evolution.Angew Chem Int Ed2022;61:e202207512

[17]

Men YN,Li P.Tailoring the 3D-orbital electron filling degree of metal center to boost alkaline hydrogen evolution electrocatalysis.Appl Catal B Environ2021;284:119718

[18]

Jiang Y,Zhang S.Modulating water splitting kinetics via charge transfer and interfacial hydrogen spillover effect for robust hydrogen evolution catalysis in alkaline media.Adv Sci2023;10:e2302358 PMCID:PMC10460870

[19]

Yang W,Zhang B.Interfacial microenvironment modulation boosts efficient hydrogen evolution reaction in neutral and alkaline.Adv Funct Mater2023;33:2304852

[20]

Wan C,Dong J.Amorphous nickel hydroxide shell tailors local chemical environment on platinum surface for alkaline hydrogen evolution reaction.Nat Mater2023;22:1022-9

[21]

Zhang R,Zhou X.Single-atomic platinum on fullerene C60 surfaces for accelerated alkaline hydrogen evolution.Nat Commun2023;14:2460 PMCID:PMC10147718

[22]

Alsabban MM,Peramaiah K.Unusual activity of rationally designed cobalt phosphide/oxide heterostructure composite for hydrogen production in alkaline medium.ACS Nano2022;16:3906-16 PMCID:PMC8945697

[23]

Yi L,Shao P.Scalable synthesis of tungsten disulfide nanosheets for alkali-acid electrocatalytic sulfion recycling and H2 generation.Angew Chem Int Ed2021;60:21550-7

[24]

Wang X,Liu B.Rationally modulating the functions of Ni3Sn2-NiSnOx nanocomposite electrocatalysts towards enhanced hydrogen evolution reaction.Angew Chem Int Ed2023;62:e202301562

[25]

Li Z,Wen Y.Mesoporous hollow Cu-Ni alloy nanocage from core-shell Cu@Ni nanocube for efficient hydrogen evolution reaction.ACS Catal2019;9:5084-95

[26]

Song J,Zhang L.Phase-separated Mo-Ni alloy for hydrogen oxidation and evolution reactions with high activity and enhanced stability.Adv Energy Mater2021;11:2003511

[27]

Wang M,Shi J.Alloying nickel with molybdenum significantly accelerates alkaline hydrogen electrocatalysis.Angew Chem Int Ed2021;60:5771-7

[28]

Lu W,Wei F.In-situ transformed Ni, S-codoped CoO from amorphous Co-Ni sulfide as an efficient electrocatalyst for hydrogen evolution in alkaline media.ACS Sustain Chem Eng2019;7:12501-9

[29]

Xu H,Cai G.Boronization-induced ultrathin 2D nanosheets with abundant crystalline - amorphous phase boundary supported on nickel foam toward efficient water splitting.Adv Energy Mater2020;10:1902714

[30]

Chen N,Zhang G,Cao F.Amorphous nickel sulfoselenide for efficient electrochemical urea-assisted hydrogen production in alkaline media.Nano Energy2021;81:105605

[31]

Su J,Fang M.Metastable hexagonal-phase nickel with ultralow Pt content for an efficient alkaline/seawater hydrogen evolution reaction.ACS Appl Mater Interfaces2023;15:51160-9

[32]

Pang QQ,Du X,Liu ZY.Facet modulation of nickel-ruthenium nanocrystals for efficient electrocatalytic hydrogen evolution.J Colloid Interface Sci2023;633:275-83

[33]

Nguyen DN,Kim J.Interfacial strain-modulated nanospherical Ni2P by heteronuclei-mediated growth on Ti3C2Tx MXene for efficient hydrogen evolution.Small2022;18:e2204797

[34]

Li Y,Han B.Ni nanoparticles on active (001) facet-exposed rutile TiO2 nanopyramid arrays for efficient hydrogen evolution.Appl Catal B Environ2021;282:119548

[35]

Su H,Shen H.Insights into antiperovskite Ni3In1-xCuxN multi-crystalline nanoplates and bulk cubic particles as efficient electrocatalysts on hydrogen evolution reaction.Small2022;18:e2105906

[36]

Liu J,Fo Y.Engineering of unique Ni-Ru nano-twins for highly active and robust bifunctional hydrogen oxidation and hydrogen evolution electrocatalysis.Chem Eng J2023;454:139959

[37]

Lu J,Zhuo Y,Liu D.Greatly boosting seawater hydrogen evolution by surface amorphization and morphology engineering on MoO2/Ni3(PO4)2.Adv Funct Mater2023;33:2308191

[38]

Lyu C,Cheng J.Interfacial electronic structure modulation of Ni2P/Ni5P4 heterostructure nanosheets for enhanced pH-universal hydrogen evolution reaction performance.Chem Eng J2023;464:142538

[39]

Xu Q,Zhang H.Atomic heterointerface engineering overcomes the activity limitation of electrocatalysts and promises highly-efficient alkaline water splitting.Energy Environ Sci2021;14:5228-59

[40]

Wei J,Long A.Heterostructured electrocatalysts for hydrogen evolution reaction under alkaline conditions.Nanomicro Lett2018;10:75 PMCID:PMC6223891

[41]

Huang C,Duan D.Roles of heteroatoms in electrocatalysts for alkaline water splitting: a review focusing on the reaction mechanism.Chin J Catal2022;43:2091-110

[42]

Liu X,Niu C.Upraising the O 2p orbital by integrating Ni with MoO2 for accelerating hydrogen evolution kinetics.ACS Catal2019;9:2275-85

[43]

Chang J,Wu D.Self-supported amorphous phosphide catalytic electrodes for electrochemical hydrogen production coupling with methanol upgrading.J Colloid Interface Sci2023;648:259-69

[44]

Darband GB,Aliabadi A,Shanmugam S.Hydrazine-assisted electrochemical hydrogen production by efficient and self-supported electrodeposited Ni-Cu-P@Ni-Cu nano-micro dendrite catalyst.Electrochim Acta2021;382:138335

[45]

Deng L,Ma M.Electronic modulation caused by interfacial Ni-O-M (M=Ru, Ir, Pd) bonding for accelerating hydrogen evolution kinetics.Angew Chem Int Ed2021;60:22276-82

[46]

Li D,Guo W,Li J.Highly efficient Ni nanotube arrays and Ni nanotube arrays coupled with NiFe layered-double-hydroxide electrocatalysts for overall water splitting.J Power Sources2020;448:227434

[47]

Liang W,Le Z.Electron density modulation of MoO2/Ni to produce superior hydrogen evolution and oxidation activities.ACS Appl Mater Interfaces2021;13:39470-9

[48]

Liang W,Lin X.Nickel-doped tungsten oxide promotes stable and efficient hydrogen evolution in seawater.Appl Catal B Environ2023;325:122397

[49]

Liu M,Qiu S,Cong J.Active site tailoring of Ni-based coordination polymers for high-efficiency dual-functional HER and UOR catalysis.Adv Funct Mater2024;34:2310155

[50]

Zhou P,Zhai G.Host dependent electrocatalytic hydrogen evolution of Ni/TiO2 composites.J Mater Chem A2021;9:6325-34

[51]

Shen J,Zhang W.Spherical Co3S4 grown directly on Ni-Fe sulfides as a porous nanoplate array on FeNi3 foam: a highly efficient and durable bifunctional catalyst for overall water splitting.J Mater Chem A2022;10:5442-51

[52]

Wang J,Ren S,Li M.Fabrication of porous Ni-Co catalytic electrode with high performance in hydrogen evolution reaction.Appl Surf Sci2021;539:148045

[53]

Zhang B,Liu S.Enhanced interface interaction in Cu2S@Ni core-shell nanorod arrays as hydrogen evolution reaction electrode for alkaline seawater electrolysis.J Power Sources2021;506:230235

[54]

Yang B,Chen XH.Nanoarchitectonics for synergistic action coupling of Ni nanoparticles with W2C nanowires for highly efficient alkaline hydrogen production.Appl Surf Sci2023;630:157460

[55]

Chen H,Chen J.In situ surface reconstruction synthesis of a nickel oxide/nickel heterostructural film for efficient hydrogen evolution reaction.Chem Commun2020;56:10529-32

[56]

Wang P,Ji P.Synergistic coupling of Ni nanoparticles with Ni3C nanosheets for highly efficient overall water splitting.Small2020;16:e2001642

[57]

Zhou P,Gao Y.Enhanced electrocatalytic HER performance of non-noble metal nickel by introduction of divanadium trioxide.Electrochim Acta2019;320:134535

[58]

Sun J,Fan M.Mo2C-Ni modified carbon microfibers as an effective electrocatalyst for hydrogen evolution reaction in acidic solution.J Colloid Interface Sci2019;543:300-6

[59]

Yang L,Yang R.In-situ growth of carbon nanotubes on Ni/NiO nanofibers as efficient hydrogen evolution reaction catalysts in alkaline media.Appl Surface Sci2019;491:294-300

[60]

Barhoum A,Iatsunskyi I.Atomic layer deposition of Pd nanoparticles on self-supported carbon-Ni/NiO-Pd nanofiber electrodes for electrochemical hydrogen and oxygen evolution reactions.J Colloid Interface Sci2020;569:286-97

[61]

Li T,Sun D.Manipulation of mott-schottky Ni/CeO2 heterojunctions into N-doped carbon nanofibers for high-efficiency electrochemical water splitting.Small2022;18:e2106592

[62]

Tao J,Wang S.Activating three-dimensional networks of Fe@Ni nanofibers via fast surface modification for efficient overall water splitting.ACS Appl Mater Interfaces2019;11:18342-8

[63]

Zhang X,Wang J,Wang C.Freestanding surface disordered NiCu solid solution as ultrastable high current density hydrogen evolution reaction electrode.J Phys Chem Lett2021;12:11135-42

[64]

Li G,Yu J.Ni-Ni3P nanoparticles embedded into N, P-doped carbon on 3D graphene frameworks via in situ phosphatization of saccharomycetes with multifunctional electrodes for electrocatalytic hydrogen production and anodic degradation.Appl Catal B Environ2020;261:118147

[65]

Jia D,Li Y.Optimizing electron density of nickel sulfide electrocatalysts through sulfur vacancy engineering for alkaline hydrogen evolution.J Mater Chem A2020;8:18207-14

[66]

Li YK,Lu WT.Amorphous Ni-Fe-Mo suboxides coupled with Ni network as porous nanoplate array on nickel foam: a highly efficient and durable bifunctional electrode for overall water splitting.Adv Sci2020;7:1902034 PMCID:PMC7141049

[67]

Liang W,Li X.Oxygen-vacancy-rich MoO2 supported nickel as electrocatalysts to promote alkaline hydrogen evolution and oxidation reactions.Chem Eng J2023;464:142671

[68]

Mao B,Jiang Y.Identifying the transfer kinetics of adsorbed hydroxyl as a descriptor of alkaline hydrogen evolution reaction.Angew Chem Int Ed2020;59:15232-7

[69]

Zhong W,Gao N.Coupled vacancy pairs in Ni-doped CoSe for improved electrocatalytic hydrogen production through topochemical deintercalation.Angew Chem Int Ed2020;59:22743-8

[70]

Jiao Y,Li P,Chen G.Metal-organic framework derived Ni/NiO micro-particles with subtle lattice distortions for high-performance electrocatalyst and supercapacitor.Appl Catal B Environ2019;244:732-9

[71]

Tang Y,Dong L,Yu X.Activating the hydrogen evolution and overall water splitting performance of NiFe LDH by cation doping and plasma reduction.Appl Catal B Environ2020;266:118627

[72]

Huang J,Wu T.Boosting hydrogen transfer during volmer reaction at oxides/metal nanocomposites for efficient alkaline hydrogen evolution.ACS Energy Lett2019;4:3002-10

[73]

Gu Y,Wei R,Qain Y.Sponge assembled by graphene nanocages with double active sites to accelerate alkaline HER kinetics.Nano Lett2020;20:8375-83

[74]

Xue S,Kluge RM.Enhancing the hydrogen evolution reaction activity of platinum electrodes in alkaline media using nickel-iron clusters.Angew Chem Int Ed2020;59:10934-8 PMCID:PMC7318285

[75]

Tian Y,Wang Z.Two-dimensional hetero-nanostructured electrocatalyst of Ni/NiFe-layered double oxide for highly efficient hydrogen evolution reaction in alkaline medium.Chem Eng J2021;426:131827

[76]

Suryanto BHR,Hocking RK,Zhao C.Overall electrochemical splitting of water at the heterogeneous interface of nickel and iron oxide.Nat Commun2019;10:5599 PMCID:PMC6898202

[77]

Sun H,Tian C.Bixbyite-type Ln2O3 as promoters of metallic Ni for alkaline electrocatalytic hydrogen evolution.Nat Commun2022;13:3857 PMCID:PMC9256667

[78]

Dastafkan K,Hocking RK,Zhao C.Monometallic interphasic synergy via nano-hetero-interfacing for hydrogen evolution in alkaline electrolytes.Nat Commun2023;14:547 PMCID:PMC9892594

[79]

Yang J,Sun Y,Long Y.Ir nanoparticles anchored on metal-organic frameworks for efficient overall water splitting under pH-universal conditions.Angew Chem Int Ed2023;62:e202302220

[80]

Bao J,Zhang Y.Engineering water splitting sites in three-dimensional flower-like Co-Ni-P/MoS2 heterostructural hybrid spheres for accelerating electrocatalytic oxygen and hydrogen evolution.J Mater Chem A2020;8:22181-90

[81]

Dai L,Li L,Liu Z.Ultrathin Ni(0)-embedded Ni(OH)2 heterostructured nanosheets with enhanced electrochemical overall water splitting.Adv Mater2020;32:e1906915

[82]

Zhong W,Yang C.Interfacial electron rearrangement: Ni activated Ni(OH)2 for efficient hydrogen evolution.J Energy Chem2021;61:236-42

[83]

Tang Y,Wu HB.Tungstate-modulated Ni/Ni(OH)2 interface for efficient hydrogen evolution reaction in neutral media.J Mater Chem A2021;9:1456-62

[84]

Li J,Zhang J.Optimizing electronic structure of porous Ni/MoO2 heterostructure to boost alkaline hydrogen evolution reaction.J Colloid Interface Sci2022;627:862-71

[85]

Wu L,Song S.Efficient alkaline water/seawater hydrogen evolution by a nanorod-nanoparticle-structured Ni-MoN catalyst with fast water-dissociation kinetics.Adv Mater2022;34:e2201774

[86]

Zhang B,Sun R.Tremella-like Ni-NiO with O-vacancy heterostructure nanosheets grown in situ on MXenes for highly efficient hydrogen and oxygen evolution.ACS Appl Mater Interfaces2022;14:47529-41

[87]

Zhou P,Tao S.Construction of nickel-based dual heterointerfaces towards accelerated alkaline hydrogen evolution via boosting multi-step elementary reaction.Adv Funct Mater2021;31:2104827

[88]

Liu M,Zhang C.Multi-interfacial engineering of a coil-like NiS-Ni2P/Ni hybrid to efficiently boost electrocatalytic hydrogen generation in alkaline and neutral electrolyte.J Mater Chem A2022;10:13410-7

[89]

Liu M,Cong J,Qiu S.Identifying and unveiling the role of multivalent metal states for bidirectional UOR and HER over Ni, Mo-trithiocyanuric based coordination polymer.Small2023;19:e2302698

[90]

Zhang J,Ma Q.Ni3+-rich Ni/NiOx@C nanocapsules below 4 nm constructed by low-temperature graphitization of self-assembled few-layer coordination polymers toward efficient alkaline hydrogen evolution electrocatalysis.Small2024;:e2311057

[91]

Kim J,Lee N,Kim YT.Efficient alkaline hydrogen evolution reaction using superaerophobic Ni nanoarrays with accelerated H2 bubble release.Adv Mater2023;35:e2305844

[92]

Xu X,Wang Y.Highly efficient all-3D-printed electrolyzer toward ultrastable water electrolysis.Nano Lett2023;23:629-36

[93]

Fujimura T,Fukunaka Y.Analysis of the effect of surface wettability on hydrogen evolution reaction in water electrolysis using micro-patterned electrodes.Electrochem Commun2019;101:43-6

[94]

Shang L,Kong X.Underwater superaerophobic Ni nanoparticle-decorated nickel-molybdenum nitride nanowire arrays for hydrogen evolution in neutral media.Nano Energy2020;78:105375

[95]

Li Y,Qian Q.Superhydrophilic Ni-based multicomponent nanorod-confined-nanoflake array electrode achieves waste-battery-driven hydrogen evolution and hydrazine oxidation.Small2021;17:e2008148

[96]

Gugtapeh HS.Facile electrochemical synthesis of Ni-Sb nanostructure supported on graphite as an affordable bifunctional electrocatalyst for hydrogen and oxygen evolution reactions.J Electroanal Chem2022;922:116726

[97]

Yu W,Fu Y.Superb all-pH hydrogen evolution performances powered by ultralow Pt-decorated hierarchical Ni-Mo porous microcolumns.Adv Funct Mater2023;33:2210855

[98]

Jiang Y,Mao B,Wang J.Inside solid-liquid interfaces: understanding the influence of the electrical double layer on alkaline hydrogen evolution reaction.Appl Catal B Environ2021;293:120220

[99]

Zhang B,Tan Q.Simultaneous interfacial chemistry and inner helmholtz plane regulation for superior alkaline hydrogen evolution.Energy Environ Sci2020;13:3007-13

[100]

Gao L,Tan X.Engineering a local potassium cation concentrated microenvironment toward the ampere-level current density hydrogen evolution reaction.Energy Environ Sci2023;16:285-94

[101]

Tan H,Lu Y.Engineering a local acid-like environment in alkaline medium for efficient hydrogen evolution reaction.Nat Commun2022;13:2024 PMCID:PMC9019087

[102]

Amaral L,Šljukić B.Toward tailoring of electrolyte additives for efficient alkaline water electrolysis: salicylate-based ionic liquids.ACS Appl Energy Mater2018;1:4731-42

[103]

Amaral L,Sljukic B.Custom-made bromide-based ionic liquids as electrolyte additives for enhancing hydrogen evolution in alkaline water electrolysis.J Electrochem Soc2019;166:1314

PDF

82

Accesses

0

Citation

Detail

Sections
Recommended

/