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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Vapor-phase hydrothermal transformation of a nanosheet array structure Ni(OH)2 into ultrathin Ni3S2 nanosheets on nickel foam for high-efficiency overall water splitting
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Vapor-phase hydrothermal transformation of a nanosheet array structure Ni(OH)2 into ultrathin Ni3S2 nanosheets on nickel foam for high-efficiency overall water splitting

机译:纳米片阵列结构Ni(OH)2的气相水热转化进入超薄Ni3S2纳米型镍泡沫中的高效整体水分裂

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摘要

Electrocatalytic water splitting has been widely accepted as an environmentally friendly approach to generate clean H _(2) . However, the sluggish oxidation half reaction, namely, the oxygen evolution reaction (OER), usually requires a high overpotential, which is the obstacle to high-efficiency overall water splitting to generate H _(2) . Herein, we report the preparation of ultrathin nanosheet array Ni _(3) S _(2) with a 9–14 nm nanosheet thickness grown directly on a commercial Ni foam substrate (Ni _(3) S _(2) /NF) by in situ vapor-phase hydrothermal (VPH) transformation of the nanosheet array structure Ni(OH) _(2) /NF precursor. As a multifunctional electrocatalyst, the as-fabricated Ni _(3) S _(2) /NF-2 (VPH time of 2 h) displays excellent electrocatalytic activities toward the hydrazine oxidation reaction (HzOR) with a potential of 0.415 V ( vs. RHE) to deliver a current density of 100 mA cm ~(?2) , an OER with an overpotential of 425 mV obtaining the same current density, and a hydrogen evolution reaction (HER) with an onset potential of ?0.05 V ( vs. RHE) in 1.0 M KOH media. A two-electrode system is therefore constructed using Ni _(3) S _(2) /NF-2 as both the anode and cathode, capable of achieving 100 mA cm ~(?2) at 0.867 V in 1.0 M KOH with 0.2 M hydrazine. Density functional theory (DFT) calculations reveal that the adsorption of N _(2) H _(4) molecules on the Ni _(3) S _(2) (110) is more thermodynamically favourable than H _(2) O, thus contributing to the high HzOR activity.
机译:电催化水分裂已被广泛接受为生成清洁H _(2)的环保方法。然而,氧化半反应缓慢,即氧进化反应(oer),通常需要高度过电位,这是高效总水分以产生H _(2)的障碍。在此,我们报告了用9-14nm纳米片厚度直接生长在商业Ni泡沫底物上的超薄纳米片阵列Ni _(3)_(2)的制备(Ni _(3)_(2)/ NF)通过原位气相水热(VPH)转化纳米片阵列结构Ni(OH)_(2)/ NF前体。作为多功能电催化剂,所制造的Ni _(3)S_(2)/ NF-2(2小时Vph时)显示出优异的电催化活性朝向肼氧化反应(HZOR),电位为0.415V(VS 。Rhe)以提供100 mA cm〜(α2)的电流密度,具有425 mV的过电位的OER获得相同的电流密度,以及氢进化反应(她)的发作Δ0.05v(Vs 。rhe)在1.0 m koh培养基中。因此,使用Ni _(3)S _(2)/ NF-2作为阳极和阴极,能够在0.867V的1.0m KOH中实现100mA cm〜(α2)的阳极和阴极构成。 M肼。密度函数理论(DFT)计算表明,N _(2)H _(4)分子在Ni _(3)S _(2)(110)上的吸附比H _(2)O更具热力学良好,从而有助于高霍乱活性。

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    Key Laboratory of Materials Physics Centre for Environmental and Energy Nanomaterials Anhui Key Laboratory of Nanomaterials and Nanostructures CAS Center for Excellence in Nanoscience Institute of Solid State Physics Chinese Academy of Sciences;

    CAS Key Laboratory of Materials for Energy Conversion and Department of Material Science and Engineering University of Science and Technology of China;

    Key Laboratory of Materials Physics Centre for Environmental and Energy Nanomaterials Anhui Key Laboratory of Nanomaterials and Nanostructures CAS Center for Excellence in Nanoscience Institute of Solid State Physics Chinese Academy of Sciences;

    Key Laboratory of Materials Physics Centre for Environmental and Energy Nanomaterials Anhui Key Laboratory of Nanomaterials and Nanostructures CAS Center for Excellence in Nanoscience Institute of Solid State Physics Chinese Academy of Sciences;

    Key Laboratory of Materials Physics Centre for Environmental and Energy Nanomaterials Anhui Key Laboratory of Nanomaterials and Nanostructures CAS Center for Excellence in Nanoscience Institute of Solid State Physics Chinese Academy of Sciences;

    CAS Key Laboratory of Materials for Energy Conversion and Department of Material Science and Engineering University of Science and Technology of China;

    Key Laboratory of Materials Physics Centre for Environmental and Energy Nanomaterials Anhui Key Laboratory of Nanomaterials and Nanostructures CAS Center for Excellence in Nanoscience Institute of Solid State Physics Chinese Academy of Sciences;

    Key Laboratory of Materials Physics Centre for Environmental and Energy Nanomaterials Anhui Key Laboratory of Nanomaterials and Nanostructures CAS Center for Excellence in Nanoscience Institute of Solid State Physics Chinese Academy of Sciences;

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