Water splitting performance of metal and non-metal-doped transition metal oxide electrocatalysts

被引:222
作者
Al-Naggar, Ahmed H. [1 ]
Shinde, Nanasaheb M. [2 ]
Kim, Jeom-Soo [2 ]
Mane, Rajaram S. [1 ]
机构
[1] Swami Ramanand Teerth Marathwada Univ, Sch Phys Sci, Nanded, India
[2] Dong A Univ, Dept Chem Engn BK21 4, 37 Nakdong daero, Busan, South Korea
关键词
Electrochemical water splitting; Transition metal oxides; Metal and non -metal -doping; Electrocatalysts; OXYGEN EVOLUTION REACTION; LAYERED DOUBLE HYDROXIDE; BIFUNCTIONAL ELECTROCATALYSTS; HIGHLY EFFICIENT; COBALT OXIDE; ENERGY-CONVERSION; RECENT PROGRESS; ELECTRONIC MODULATION; ULTRATHIN NANOSHEETS; ORGANIC FRAMEWORKS;
D O I
10.1016/j.ccr.2022.214864
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Transition metal oxide electrocatalysts have received significant research interest toward the advance-ment of environmentally acceptable electrochemical applications and systems, which are considered to be promising technologies due to their unique physicochemical properties like low cost, robust dura-bility, structural flexibility, and tunable activity. However, transition metal oxide-based electrocatalysts suffer from poor electrocatalytic activity as well as a limited number of active sites, which result in the obstruction of their applications over the world. To overcome these challenges, heteroatom-doping into transition metal oxide electrocatalysts has been a crucial and rapid way to improve the conductivity of the catalytic centers and optimize the adsorption of the reactants and intermediates during the catalytic process, and hence, their electrocatalytic activity, which has become widespread in nanomaterials, is offering the possibility to select the catalytic properties with attractive traits for a specific application to some extent. We have critically and systematically discussed the recent progress on doping strategy involves non-noble metallic elements, such as Fe, Co, Mn, Ni, Ru, Mo, W, Cu, etc., and non-metallic ele-ments, such as S, N, P, B, Se, F, C, etc., in transition metal oxide-based electrocatalysts for water splitting performance to gain a better understanding of the relationship between effect of heteroatoms doping engineering techniques and TMOs catalytic properties. Most importantly, doping, elemental incorpora-tion and alloying perform a significant role with heteroatoms for improving the catalytic activity on; modifying the electronic configuration of the catalysts, increasing the number of active sites, enhancing the electrical conductivity, and inducing synergistic effect of the transition metal oxide-based electrocat-alysts during overall water splitting process. We here also have briefly described the techniques used for preparing metal and non-metal-doped transition metal oxide-based electrocatalysts for overall water splitting process. In nutshell, this review is expected to provide a deeper insight on the effect of the metal and non-metal-doping in transition metal oxide-based electrocatalysts for the rational design of high-performance catalysts in the future. We also have provided the current challenges and future perspectives of heteroatom-doped transition metal oxide-based electrocatalysts for the development of high-performance water splitting processes. (c) 2022 Elsevier B.V. All rights reserved.
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页数:58
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  • [1] Porous metal oxide electrocatalytic nanomaterials for energy conversion: Oxygen defects and selection techniques
    Adegoke, Kayode Adesina
    Maxakato, Nobanathi Wendy
    [J]. COORDINATION CHEMISTRY REVIEWS, 2022, 457
  • [2] Electrochemical oxidation of boron-doped nickel-iron layered double hydroxide for facile charge transfer in oxygen evolution electrocatalysts
    Ahn, In-Kyoung
    Lee, So-Yeon
    Kim, Hyoung Gyun
    Lee, Gi-Baek
    Lee, Ji-Hoon
    Kim, Miyoung
    Joo, Young-Chang
    [J]. RSC ADVANCES, 2021, 11 (14) : 8198 - 8206
  • [3] Recent Development of Oxygen Evolution Electrocatalysts in Acidic Environment
    An, Li
    Wei, Chao
    Lu, Min
    Liu, Hanwen
    Chen, Yubo
    Scherer, Guenther G.
    Fisher, Adrian C.
    Xi, Pinxian
    Xu, Zhichuan J.
    Yan, Chun-Hua
    [J]. ADVANCED MATERIALS, 2021, 33 (20)
  • [4] Precision and correctness in the evaluation of electrocatalytic water splitting: revisiting activity parameters with a critical assessment
    Anantharaj, S.
    Ede, S. R.
    Karthick, K.
    Sankar, S. Sam
    Sangeetha, K.
    Karthik, P. E.
    Kundu, Subrata
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2018, 11 (04) : 744 - 771
  • [5] "The Fe Effect": A review unveiling the critical roles of Fe in enhancing OER activity of Ni and Co based catalysts
    Anantharaj, Sengeni
    Kundu, Subrata
    Noda, Suguru
    [J]. NANO ENERGY, 2021, 80
  • [6] Appropriate Use of Electrochemical Impedance Spectroscopy in Water Splitting Electrocatalysis
    Anantharaj, Sengeni
    Noda, Suguru
    [J]. CHEMELECTROCHEM, 2020, 7 (10) : 2297 - 2308
  • [7] Metal-Free and Noble Metal-Free Heteroatom-Doped Nanostructured Carbons as Prospective Sustainable Electrocatalysts
    Asefa, Tewodros
    [J]. ACCOUNTS OF CHEMICAL RESEARCH, 2016, 49 (09) : 1873 - 1883
  • [8] Electrodeposition of superhydrophilic and binder-free Mo-doped Ni-Fe nanosheets as cost-effective and efficient bifunctional electrocatalyst for overall water splitting
    Ashraf, Muhammad Aqeel
    Liu, Zhenling
    Binh Thai Pham
    Zhang, Dangquan
    [J]. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2020, 873
  • [9] Catalysis with Colloidal Ruthenium Nanoparticles
    Axet, M. Rosa
    Philippot, Karine
    [J]. CHEMICAL REVIEWS, 2020, 120 (02) : 1085 - 1145
  • [10] Oxygen-Deficient Cobalt-Based Oxides for Electrocatalytic Water Splitting
    Badreldin, Ahmed
    Abusrafa, Aya E.
    Abdel-Wahab, Ahmed
    [J]. CHEMSUSCHEM, 2021, 14 (01) : 10 - 32