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Laser Assisted Solution Synthesis of High Performance Graphene Supported Electrocatalysts

机译:激光辅助溶液合成高性能石墨烯负载电催化剂

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摘要

Simple, yet versatile, methods to functionalize graphene flakes with metal (oxide) nanoparticles are in demand, particularly for the development of advanced catalysts. Herein, based on light-induced electrochemistry, a laser-assisted, continuous, solution route for the simultaneous reduction and modification of graphene oxide with catalytic nanoparticles is reported. Electrochemical graphene oxide (EGO) is used as starting material and electron-hole pair source due to its low degree of oxidation, which imparts structural integrity and an ability to withstand photodegradation. Simply illuminating a solution stream containing EGO and metal salt (e.g., H(2)PtCl(6)or RuCl3) with a 248 nm wavelength laser produces reduced EGO (rEGO, oxygen content 4.0 at%) flakes, decorated with Pt (approximate to 2.0 nm) or RuO2(approximate to 2.8 nm) nanoparticles. The RuO2-rEGO flakes exhibit superior catalytic activity for the oxygen evolution reaction, requiring a small overpotential of 225 mV to reach a current density of 10 mA cm(-2). The Pt-rEGO flakes (10.2 wt% of Pt) show enhanced mass activity for the hydrogen evolution reaction, and similar performance for oxygen reduction reaction compared to a commercial 20 wt% Pt/C catalyst. This simple production method is also used to deposit PtPd alloy and MnO(x)nanoparticles on rEGO, demonstrating its versatility in synthesizing functional nanoparticle-modified graphene materials.
机译:简单但多才多说,用金属(氧化物)纳米粒子将石墨烯薄片的方法有所要求,特别是用于发育晚期催化剂。本文基于光诱导的电化学,报道了具有催化纳米颗粒的同时还原和改性石墨烯氧化物的激光辅助连续的溶液途径。电化学石墨烯氧化物(EGO)用作起始材料和电子 - 空穴对源引起的,由于其低氧化程度,这赋予结构完整性和承受光降解的能力。只需照亮含有自我和金属盐的溶液流(例如,具有248nm波长激光的H(2)PtCl(6)或RuCl3)产生减少的自我(Rego,氧含量4.0处)薄片,用Pt装饰(近似2.0nm)或ruo2(近似为2.8nm)纳米颗粒。 RuO2-Refo薄片表现出氧气进化反应的优异催化活性,需要225mV的小过电位,以达到10mA cm(-2)的电流密度。 PT-Refo薄片(10.2重量%的PT)显示出氢进化反应的增强的质量活性,与商业20wt%Pt / C催化剂相比,氧还原反应类似的性能。这种简单的制备方法还用于在Rego上沉积PTPD合金和MNO(X)纳米颗粒,证明其在合成功能纳米颗粒改性的石墨烯材料中的通用性。

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  • 来源
    《Advanced Functional Materials 》 |2020年第32期| 2001756.1-2001756.12| 共12页
  • 作者单位

    Univ Manchester Sch Nat Sci Dept Mat Oxford Rd Manchester M13 9PL Lancs England;

    Univ Manchester Sch Nat Sci Dept Mat Oxford Rd Manchester M13 9PL Lancs England|Univ Manchester Natl Graphene Inst Oxford Rd Manchester M13 9PL Lancs England;

    Univ Manchester Natl Graphene Inst Oxford Rd Manchester M13 9PL Lancs England|Univ Manchester Sch Nat Sci Dept Chem Oxford Rd Manchester M13 9PL Lancs England;

    Univ Manchester Sch Nat Sci Dept Mat Oxford Rd Manchester M13 9PL Lancs England;

    Univ Manchester Sch Nat Sci Dept Mat Oxford Rd Manchester M13 9PL Lancs England;

    Univ Exeter Coll Engn Math & Phys Sci Renewable Energy Grp Penryn Campus Penryn TR10 9FE Cornwall England;

    Univ Manchester Natl Graphene Inst Oxford Rd Manchester M13 9PL Lancs England|Univ Manchester Sch Nat Sci Dept Chem Oxford Rd Manchester M13 9PL Lancs England;

    Univ Manchester Fac Sci & Engn Dept Mech Aerosp & Civil Engn Laser Proc Res Ctr Oxford Rd Manchester M13 9PL Lancs England;

    Univ Manchester Sch Nat Sci Dept Mat Oxford Rd Manchester M13 9PL Lancs England|Univ Manchester Natl Graphene Inst Oxford Rd Manchester M13 9PL Lancs England;

    Univ Manchester Sch Nat Sci Dept Mat Oxford Rd Manchester M13 9PL Lancs England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    electrocatalysts; graphene oxide; lasers; nanoparticles; photodeposition;

    机译:电催化剂;石墨烯氧化物;激光;纳米粒子;光致沉积;

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