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A Ni2P nanocrystal cocatalyst enhanced TiO2 photoanode towards highly efficient photoelectrochemical water splitting

机译:Ni2P纳米晶体助催化剂增强型TiO2光电仪对高效的光电化学水分解

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摘要

Developing low-cost oxygen evolution reaction (OER) cocatalysts with high conductivity and excellent catalytic activity is highly desirable for mitigating interfacial charge recombination and accelerating the OER reaction kinetics of the semiconductor photoanode for photoelectrochemical (PEC) water splitting. Herein, a hybrid photoanode integrating a high-quality light absorber, a bilayer TiO2 nanorod-inverse opal (NR-IO) semiconductor and an efficient OER cocatalyst consisting of colloidal Ni2P nanocrystals is constructed via a spin-coating process. The resulting TiO/Ni2P NR-IO photoanode yields an impressive photocurrent density of 1.93 mA cm(-2) at 1.23 V vs. the reversible hydrogen electrode (RHE) under simulated solar illumination (AM 1.5G, 100 mW cm(-2)), corresponding to a more than 2-fold increase compared to the pristine TiO2 NR-IO. The photoelectrochemical electrochemical impedance spectroscopy (PEIS) and photoluminescence (PL) results reveal that the Ni2P cocatalyst not only accelerates the interfacial charge transfer from TiO2NR-IO to Ni2P but also efficiently transmits the holes to participate in aqueous OER. Moreover, the Ni2P cocatalyst effectively prevents the substantial dark current observed with fully covered transition-metal-phosphide shell modification. This work is expected to spur more insights into integrating semiconductors with proper OER cocatalysts for highly efficient and stable solar water spitting.
机译:开发具有高导电率和优异催化活性的低成本氧气进化反应(OER)助催化剂对于减轻界面电荷重组和加速半导体光电码的OER反应动力学,非常希望用于光电化学(PEC)水分裂的oer反应动力学。这里,通过旋涂工艺构建由胶体Ni2P纳米晶体组成的高质量光吸收剂,双层TiO2纳米棒反相(NR-IO)半导体(NR-IO)半导体和高效oer助催化剂的混合光电码。得到的TiO / Ni2P NR-IO PhotoNode在模拟的太阳能照射下,在1.23V Vs上产生1.93mA cm(-2)的令人印象深刻的光电流密度。 ),与原始TiO2 NR-IO相比,对应于2倍的增加。光电化学电化学阻抗谱(PEIS)和光致发光(PL)结果表明,Ni2P助催化剂不仅将来自TiO 2 NR-IO至Ni2P的界面电荷转移加速,而且有效地透射孔参加涂层液体。此外,Ni2P助催化剂有效地防止了用完全覆盖的过渡金属 - 磷化铝壳改性观察到的大量暗电流。这项工作预计将对与适当的Oer Cocattalysts集成到高效和稳定的太阳能浇水中,对半导体进行更多洞察力。

著录项

  • 来源
    《Chemical engineering journal》 |2020年第2020期|共9页
  • 作者单位

    Soochow Univ Inst Funct Nano &

    Soft Mat Lab FUNSOM Joint Int Res Lab Carbon Based Funct Mat &

    Device Suzhou 215123 Peoples R China;

    Soochow Univ Inst Funct Nano &

    Soft Mat Lab FUNSOM Joint Int Res Lab Carbon Based Funct Mat &

    Device Suzhou 215123 Peoples R China;

    Wake Forest Univ Dept Chem Winston Salem NC 27109 USA;

    Soochow Univ Coll Energy Soochow Inst Energy &

    Mat Innovat Suzhou 215006 Peoples R China;

    Soochow Univ Inst Funct Nano &

    Soft Mat Lab FUNSOM Joint Int Res Lab Carbon Based Funct Mat &

    Device Suzhou 215123 Peoples R China;

    Soochow Univ Inst Funct Nano &

    Soft Mat Lab FUNSOM Joint Int Res Lab Carbon Based Funct Mat &

    Device Suzhou 215123 Peoples R China;

    Soochow Univ Inst Funct Nano &

    Soft Mat Lab FUNSOM Joint Int Res Lab Carbon Based Funct Mat &

    Device Suzhou 215123 Peoples R China;

    Soochow Univ Inst Funct Nano &

    Soft Mat Lab FUNSOM Joint Int Res Lab Carbon Based Funct Mat &

    Device Suzhou 215123 Peoples R China;

    Wake Forest Univ Dept Chem Winston Salem NC 27109 USA;

    Harbin Inst Technol Dept Mat Sci &

    Engn Shenzhen Engn Lab Flexible Transparent Conduct Fi Shenzhen 518055 Peoples R China;

    Soochow Univ Inst Funct Nano &

    Soft Mat Lab FUNSOM Joint Int Res Lab Carbon Based Funct Mat &

    Device Suzhou 215123 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    Ni2P nanocrystals; TiO2; Cocatalyst; Photoanode; Water splitting;

    机译:Ni2P纳米晶体;TiO2;Cocatalyst;PhotoNode;水分裂;

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