Journal of Inorganic Materials, Volume. 38, Issue 7, 823(2023)
[7] GONG T Y, ZHANG J Y, LIU Y et al. Construction of hetero- phase Mo2C-CoO@N-CNFs film as a self-supported Bi-functional catalyst towards overall water splitting[J]. Chemical Engineering Journal, 139025(2022).
[8] HE J, ZHOU X, XU P et al. Promoting electrocatalytic water oxidation through tungsten-modulated oxygen vacancies on hierarchical FeNi-layered double hydroxide[J]. Nano Energy, 105540(2021).
[10] QIAO C, USMAN Z, CAO T et al. High-valence Ni and Fe sites on sulfated NiFe-LDH nanosheets to enhance O-O coupling for water oxidation[J]. Chemical Engineering Journal, 130873(2021).
[12] WANG Y Q, TAO S, LIN H et al. Atomically targeting NiFe LDH to create multivacancies for OER catalysis with a small organic anchor[J]. Nano Energy, 105606(2021).
[13] BABAR P, LOKHANDE A, KARADE V et al. Bifunctional 2D electrocatalysts of transition metal hydroxide nanosheet arrays for water splitting and urea electrolysis[J]. ACS Sustainable Chemistry & Engineering, 10035(2019).
[14] YANG Y, WEI S Y, LI Y F et al. Effect of cobalt doping-regulated crystallinity in nickel-iron layered double hydroxide catalyzing oxygen evolution[J]. Applied Catalysis B: Environmental, 121491(2022).
[17] ZHOU Y, ZHANG W B, HU J L et al. Inherent oxygen vacancies boost surface reconstruction of ultrathin Ni-Fe layered-double- hydroxides toward efficient electrocatalytic oxygen evolution[J]. ACS Sustainable Chemistry & Engineering, 7390(2021).
[18] YE Y, GAN Y H, CAI R et al. Oxygen vacancies and surface reconstruction on NiFe LDH@Ni(OH)2 heterojunction synergistically triggering oxygen evolution and urea oxidation reaction[J]. Journal of Alloys and Compounds, 166145(2022).
[19] YANG R, ZHOU Y M, XING Y Y et al. Synergistic coupling of CoFe-LDH arrays with NiFe-LDH nanosheet for highly efficient overall water splitting in alkaline media[J]. Applied Catalysis B: Environmental, 131(2019).
[20] SU H, JIANG J, LI N et al. NiCu alloys anchored defect-rich NiFe layered double-hydroxides as efficient electrocatalysts for overall water splitting[J]. Chemical Engineering Journal, 137226(2022).
[21] WEN Y Y, WEI Z T, LIU J H et al. Synergistic cerium doping and MXene coupling in layered double hydroxides as efficient electrocatalysts for oxygen evolution[J]. Journal of Energy Chemistry, 412(2021).
[22] YU M Z, ZHENG J Q, GUO M. La-doped NiFe-LDH coupled with hierarchical vertically aligned MXene frameworks for efficient overall water splitting[J]. Journal of Energy Chemistry, 472(2022).
[23] SHEN J, ZHANG P, XIE R S et al. Controlled self-assembled NiFe layered double hydroxides/reduced graphene oxide nanohybrids based on the solid-phase exfoliation strategy as an excellent electrocatalyst for the oxygen evolution reaction[J]. ACS Applied Materials & Interfaces, 13545(2019).
[24] YIN X, HUA Y N, HAO W B et al. Hierarchical nanocomposites of nickel/iron-layered double hydroxide ultrathin nanosheets strong-coupled with nanocarbon networks for enhanced oxygen evolution reaction[J]. Electrochimica Acta, 140455(2022).
[25] AMBRIZ-PELAEZ O, BEJAR J, RAMOS-CASTILLO M et al. Defected NiFe layered double hydroxides on N-doped carbon nanotubes as efficient bifunctional electrocatalyst for rechargeable zinc-air batteries[J]. Applied Surface Science, 154253(2022).
[26] LI G L, CAO S, LU Z F et al. FePc nanoclusters modified NiCo layered double hydroxides in parallel with Ti3C2 MXene as a highly efficient and durable bifunctional oxygen electrocatalyst for zinc-air batteries[J]. Applied Surface Science, 153142(2022).
[27] LIAO F F, YANG G Y, CHENG Q H et al. Rational design and facile synthesis of Ni-Co-Fe ternary LDH porous sheets for high-performance aqueous asymmetric supercapacitor[J]. Electrochimica Acta, 140939(2022).
[28] HE H L, LÜ S W, KANG Y et al.
[29] ZHAO P P, NIE H Q, ZHOU Z R et al. NiFe-LDH grown on three-dimensional Cu3P nano-array for highly efficient water oxidation[J]. ChemistrySelect, 8064(2018).
[30] ROY A, TARIQ M Z, LA M et al. A comparative study on the oxygen evolution reaction of cobalt and nickel based hydroxide electrodes in alkaline electrolyte[J]. Journal of Electroanalytical Chemistry, 116633(2022).
[31] CHEN J, REN Y J, ZHANG H Y et al. Ni-Co-Fe layered double hydroxide coated on Ti3C2MXene for high-performance asymmetric supercapacitor[J]. Applied Surface Science, 150116(2021).
[32] LI X T, LIU Y Z, SUN Q D et al. Effect of cationic and anionic defects on NiFe LDH in electrocatalytic oxygen evolution[J]. ACS Sustainable Chemistry & Engineering, 14474(2022).
[33] CHANDA D, KANNAN K, GAUTAM J et al. Effect of the interfacial electronic coupling of nickel-iron sulfide nanosheets with layer Ti3C2 MXenes as efficient bifunctional electrocatalysts for anion-exchange membrane water electrolysis[J]. Applied Catalysis B: Environmental, 122039(2023).
[34] MANNA N, AYASHA N, SINGH S K et al. A NiFe layered double hydroxide-decorated N-doped entangled-graphene framework: a robust water oxidation electrocatalyst[J]. Nanoscale Advances, 1709(2020).
[36] YU M Z, ZHOU S, WANG Z Y et al. Boosting electrocatalytic oxygen evolution by synergistically coupling layered double hydroxide with MXene[J]. Nano Energy, 181(2018).
[37] HAO C Y, WU Y, AN Y J et al. Interface-coupling of CoFe-LDH on MXene as high-performance oxygen evolution catalyst[J]. Material Today Energy, 453(2019).
[38] YU Z Y, DUAN Y, FENG X Y et al. Clean and affordable hydrogen fuel from alkaline water splitting: past, recent progress, and future prospects[J]. Advanced Materials, 2007100(2021).
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Guanglan LI, Tianyu WANG, Yichen LIU, Zhongfa LU.
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Received: Nov. 17, 2022
Accepted: --
Published Online: Dec. 28, 2023
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