Enhancing oxygen evolution reaction via hydrogen plasma treatment: Unveiling the functionality of CN defects and the role of Fe in NiFe Prussian blue analogs

Qingdong Ruan , Dan Li , Chaoling Wu , Chao Huang , Paul K. Chu

EcoEnergy ›› 2024, Vol. 2 ›› Issue (2) : 268 -277.

PDF
EcoEnergy ›› 2024, Vol. 2 ›› Issue (2) : 268 -277. DOI: 10.1002/ece2.36
RESEARCH ARTICLE

Enhancing oxygen evolution reaction via hydrogen plasma treatment: Unveiling the functionality of CN defects and the role of Fe in NiFe Prussian blue analogs

Author information +
History +
PDF

Abstract

The rational design of electronic and vacancy structures is crucial to regulating and enhancing electrocatalytic water splitting. However, creating novel vacancies and precisely controlling the number of vacancies in existing materials systems pose significant challenges. Herein, a novel approach to optimize the concentration of the CN vacancy (VCN) in the NiFe Prussian blue analog (PBA) nanocubes is designed by incorporating the H2 or O2 plasma treatment. The relationship between the VCN and catalysis is analyzed, and results show that a moderate concentration of VCN (6.5%) can enormously enhance oxygen evolution reaction (OER) activity of NiFe PBA. However, an excessive amount of VCN disrupts the crystal structure and hinders the transportation of charge carriers, consequently leading to inferior OER. Furthermore, the VCN significantly activates the activity of Fe sites, inducing preferential adsorption of OH on Fe sites, followed by adsorption on Ni sites, thereby optimizing the reaction pathway and significantly promoting OER performance. In addition, VCN also suppresses Fe leaching, giving the catalyst excellent durability. This study reveals the feasibility of creating unconventional defects in nanomaterials and precisely controlling the number of vacancies for diverse catalytic and energy applications.

Keywords

CN vacancy / NiFe PBA / oxygen evolution reaction / plasma treatment / water splitting

Cite this article

Download citation ▾
Qingdong Ruan, Dan Li, Chaoling Wu, Chao Huang, Paul K. Chu. Enhancing oxygen evolution reaction via hydrogen plasma treatment: Unveiling the functionality of CN defects and the role of Fe in NiFe Prussian blue analogs. EcoEnergy, 2024, 2(2): 268-277 DOI:10.1002/ece2.36

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

ChenJW, ChenHX, YuTW, et al. Recent advances in the understanding of the surface reconstruction of oxygen evolution electrocatalysts and materials development. Electrochem Energy Rev. 2021;4(3):566-600.

[2]

ZhaoQ, YangJ, LiuM, et al. Tuning electronic push/pull of Nibased hydroxides to enhance hydrogen and oxygen evolution reactions for water splitting. ACS Catal. 2018;8(6):5621-5629.

[3]

WangB, ZhangW, LiuG, et al. Excited electron-rich Bi(3–x)+ Sites: a quantum well-like structure for highly promoted selective photocatalytic CO2 reduction performance. Adv Funct Mater. 2022;32(35):2202885.

[4]

LiuJ, ZhuS, WangB, et al. A candy-like photocatalyst by wrapping Co, N-co-doped hollow carbon sphere with ultrathin mesoporous carbon nitride for boosted photocatalytic hydrogen evolution. Chin Chem Lett. 2023;34(2):107749.

[5]

TangR, ZhouS, LiH, ChenR, ZhangL, Yin L. Halogen bonding induced aqueously stable CsPbBr3@MOFs-Derived Co3O4/N-doped-C heterostructure for high-performance photoelectrochemical water oxidation. Appl Catal B Environ. 2020;265:118583.

[6]

SehZW, Kibsgaard J, DickensCF, ChorkendorffI, Nørskov JK, JaramilloTF. Combining theory and experiment in electrocatalysis: insights into materials design. Science. 2017;355(6321):eaad4998.

[7]

ZhangB, ZhengX, VoznyyO, et al. Homogeneously dispersed multimetal oxygen-evolving catalysts. Science. 2016;352(6283):333-337.

[8]

HuangC, QinP, LuoY, et al. Recent progress and perspective of cobalt-based catalysts for water splitting: design and nanoarchitectonics. Mater Today Energy. 2022;23:100911.

[9]

HuangC, ChuPK. Recommended practices and benchmarking of foam electrodes in water splitting. Trends Chem. 2022;4(12):1065-1077.

[10]

WangK, WangX, LiZ, et al. Designing 3d dual transition metal electrocatalysts for oxygen evolution reaction in alkaline electrolyte: beyond oxides. Nano Energy. 2020;77:105162.

[11]

HuangC, MiaoX, PiC, et al. Mo2C/VC heterojunction embedded in graphitic carbon network: an advanced electrocatalyst for hydrogen evolution. Nano Energy. 2019;60:520-526.

[12]

HuangC, WuD, QinP, et al. Ultrafine Co nanodots embedded in N-doped carbon nanotubes grafted on hexagonal VN for highly efficient overall water splitting. Nano Energy. 2020;73:104788.

[13]

ChenC, KangYJ, HuoZY, et al. Highly crystalline multimetallic nanoframes with three-dimensional electrocatalytic surfaces. Science. 2014;343(6177):1339-1343.

[14]

LaiCL, LiHM, ShengY, et al. 3D spatial combination of CN vacancy-mediated NiFe-PBA with N-doped carbon nanofibers network toward free-standing bifunctional electrode for Zn-air batteries. Adv Sci. 2022;9(11):2105925.

[15]

LeeH-W, WangRY, PastaM, Woo Lee S, LiuN, CuiY. Manganese hexacyanomanganate open framework as a high-capacity positive electrode material for sodium-ion batteries. Nat Commun. 2014;5(1):5280.

[16]

KayeSS, LongJR. Hydrogen storage in the dehydrated Prussian blue analogues M3[Co(CN)6]2 (M = Mn, Fe, Co, Ni, Cu, Zn). J Am Chem Soc. 2005;127(18):6506-6507.

[17]

YuZY, DuanY, LiuJD, et al. Unconventional CN vacancies suppress iron-leaching in Prussian blue analogue pre-catalyst for boosted oxygen evolution catalysis. Nat Commun. 2019;10(1):2799.

[18]

MaN, OhtaniR, LeHM, et al. Exploration of glassy state in Prussian blue analogues. Nat Commun. 2022;13(1):4023.

[19]

SuXZ, WangY, ZhouJ, Gu SQ, LiJ, ZhangS. Operando spectroscopic identification of active sites in NiFe Prussian blue analogues as electrocatalysts: activation of oxygen atoms for oxygen evolution reaction. J Am Chem Soc. 2018;140(36):11286-11292.

[20]

JiangMM, FanXM, CaoS, WangZH, YangZH, Zhang WX. Thermally activated carbon-nitrogen vacancies in double-shelled NiFe Prussian blue analogue nanocages for enhanced electrocatalytic oxygen evolution. J Mater Chem A. 2021;9(21):12734-12745.

[21]

HanLJ, TangPY, Reyes-CarmonaA, et al. Enhanced activity and acid pH stability of Prussian blue-type oxygen evolution electrocatalysts processed by chemical etching. J Am Chem Soc. 2016;138(49):16037-16045.

[22]

ZhangWX, SongH, ChengY, et al. Core-shell Prussian blue analogs with compositional heterogeneity and open cages for oxygen evolution reaction. Adv Sci. 2019;6(7):1801901.

[23]

XuanCJ, WangJ, XiaWW, et al. Heteroatom (P, B, or S) incorporated NiFe-based nanocubes as efficient electrocatalysts for the oxygen evolution reaction. J Mater Chem A. 2018;6(16):7062-7069.

[24]

ChenJY, DangL, LiangH, et al. Operando analysis of NiFe and Fe oxyhydroxide electrocatalysts for water oxidation: detection of Fe4+ by Mossbauer spectroscopy. J Am Chem Soc. 2015;137(48):15090-15093.

[25]

LiH, TsaiC, KohAL, et al. Activating and optimizing MoS2 basal planes for hydrogen evolution through the formation of strained sulphur vacancies. Nat Mater. 2016;15(3):48-53.

[26]

SchwekeD, Mordehovitz Y, HalabiM, ShellyL, HayunS. Defect chemistry of oxides for energy applications. Adv Mater. 2018;30(41):1706300.

[27]

CardinaudC, Peignon M-C. TessierP-Y. Plasma etching: principles, mechanisms, application to micro-and nanotechnologies. Appl Surf Sci. 2000;164(1-4):72-83.

[28]

HemasiriBWNH, KimJ-K. LeeJ-M. Fabrication of highly conductive graphene/ITO transparent bi-film through CVD and organic additives-free sol-gel techniques. Sci Rep. 2017;7(1):17868.

[29]

DhakshinamoorthyA, Asiri AM, GarciaH. 2D metal–organic frameworks as multifunctional materials in heterogeneous catalysis and electro/photocatalysis. Adv Mater. 2019;31(41):1900617.

[30]

ChoiJ, KimD, ZhengW, et al. Interface engineered NiFe2O4–x/NiMoO4 nanowire arrays for electrochemical oxygen evolution. Appl Catal B Environ. 2021;286:119857.

[31]

ZhaoYB, LiangBL, WeiXJ, Li KX, LvCC, ZhaoY. A coreshell heterostructured CuFe@NiFe Prussian blue analogue as a novel electrode material for high-capacity and stable capacitive deionization. J Mater Chem A. 2019;7(17):10464-10474.

[32]

KuleszaPJ, MalikMA, DencaA, Strojek J. In situ FT-IR/ATR spectroelectrochemistry of Prussian blue in the solid state. Anal Chem. 1996;68(14):2442-2446.

[33]

HuangTB, DuGY, QiYR, et al. A Prussian blue analogue as a long-life cathode for liquid-state and solid-state sodium-ion batteries. Inorg Chem Front. 2020;7(20):3938-3944.

[34]

ZhangW, ZhaoY, MalgrasV, et al. Synthesis of monocrystalline nanoframes of Prussian blue analogues by controlled preferential etching. Angew Chem Int Ed. 2016;55(29):8228-8234.

[35]

MaierJ. Defect chemistry: composition, transport, and reactions in the solid state;part I: thermodynamics. Angew Chem Int Ed. 1993;32(3):313-335.

[36]

LinZ, MaoM, YangC, et al. Amorphous anion-rich titanium polysulfides for aluminum-ion batteries. Sci Adv. 2021;7(35): eabg6314.

[37]

XieY, ChenCL, LuXR, et al. Porous NiFe-oxide nanocubes derived from Prussian blue analogue as efficient adsorbents for the removal of toxic metal ions and organic dyes. J Hazard Mater. 2019;379:120786.

[38]

QiuZ, TaiC-W. NiklassonGA, Edvinsson T. Direct observation of active catalyst surface phases and the effect of dynamic self-optimization in NiFe-layered double hydroxides for alkaline water splitting. Energy Environ Sci. 2019;12(2):572-581.

[39]

LiuZ, TanH, LiuD, et al. Promotion of overall water splitting activity over a wide pH range by interfacial electrical effects of metallic NiCo-nitrides nanoparticle/NiCo2O4 nanoflake/graphite fibers. Adv Sci. 2019;6(5):1801829.

[40]

ZhangC, ChenJ, ZhangJ, et al. The activation of inert NiFe Prussian blue analogues to boost oxygen evolution reaction activity. J Colloid Interface Sci. 2022;607:967-977.

[41]

RayC, LeeSC, JinB, KunduA, ParkJH, Jun SC. Conceptual design of three-dimensional CoN/Ni3N-coupled nanograsses integrated on N-doped carbon to serve as efficient and robust water splitting electrocatalysts. J Mater Chem A. 2018;6(10):4466-4476.

[42]

HuangJ, SunY, DuX, et al. Cytomembrane-structure-inspired active Ni–N–O interface for enhanced oxygen evolution reaction. Adv Mater. 2018;30(39):1803367.

[43]

MengY, SongW, HuangH, Ren Z, ChenS-Y. Suib SL. Structure–property relationship of bifunctional MnO2 nanostructures: highly efficient, ultra-stable electrochemical water oxidation and oxygen reduction reaction catalysts identified in alkaline media. J Am Chem Soc. 2014;136(32):11452-11464.

[44]

WangY, ZhuYL, ZhaoSL, et al. Anion etching for accessing rapid and deep self-reconstruction of precatalysts for water oxidation. Matter. 2020;3(6):2124-2137.

[45]

HuangJ, LiY, ZhangY, et al. Identification of key reversible intermediates in self-reconstructed nickel-based hybrid electrocatalysts for oxygen evolution. Angew Chem Int Ed. 2019;131(48):17619-17625.

[46]

ChenS, MaL, HuangZ, Liang G, ZhiC. In situ/operando analysis of surface reconstruction of transition metal-based oxygen evolution electrocatalysts. Cell Rep Phys Sci. 2022;3(1):100729.

[47]

LandonJ, Demeter E, InogluN, et al. Spectroscopic characterization of mixed Fe–Ni oxide electrocatalysts for the oxygen evolution reaction in alkaline electrolytes. ACS Catal. 2012;2(8):1793-1801.

[48]

XuYM, FanKC, ZouY, et al. Rational design of metal oxide catalysts for electrocatalytic water splitting. Nanoscale. 2021;13(48):20324-20353.

[49]

LuoY, WuY, WuD, et al. NiFe-layered double hydroxide synchronously activated by heterojunctions and vacancies for the oxygen evolution reaction. ACS Appl Mater Interfaces. 2020;12(38):42850-42858.

[50]

GaoMR, LiangJX, ZhengYR, et al. An efficient molybdenum disulfide/cobalt diselenide hybrid catalyst for electrochemical hydrogen generation. Nat Commun. 2015;6(1):5892.

[51]

LiJ-G, SunH, LvL, et al. Metal–organic framework-derived hierarchical (Co, Ni)Se2@NiFe LDH hollow nanocages for enhanced oxygen evolution. ACS Appl Mater Interfaces. 2019;11(8):8106-8114.

[52]

KouZ, YuY, LiuX, et al. Potential-dependent phase transition and Mo-enriched surface reconstruction of γ-CoOOH in a heterostructured Co-Mo2C precatalyst enable water oxidation. ACS Catal. 2020;10(7):4411-4419.

[53]

HanL, YuXY, LouXW. Formation of Prussian-blue-analog nanocages via a direct etching method and their conversion into Ni-Co-mixed oxide for enhanced oxygen evolution. Adv Mater. 2016;28(23):4601-4605.

RIGHTS & PERMISSIONS

2024 The Authors. EcoEnergy published by John Wiley & Sons Australia, Ltd on behalf of China Chemical Safety Association.

AI Summary AI Mindmap
PDF

331

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/