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首页> 外文期刊>Energy & environmental science >X20CoCrWMo10-9//Co3O4: a metal-ceramic composite with unique efficiency values for water-splitting in the neutral regime
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X20CoCrWMo10-9//Co3O4: a metal-ceramic composite with unique efficiency values for water-splitting in the neutral regime

机译:X20CoCrWMo10-9 // Co3O4:一种金属陶瓷复合材料,在中性状态下具有独特的水分解效率值

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摘要

Water splitting allows the storage of solar energy into chemical bonds (H-2 + O-2) and will help to implement the urgently needed replacement of limited available fossil fuels. In particular, in a neutral environment electrochemically initiated water splitting suffers from low efficiency due to high overpotentials (eta) caused by the anode. Electro-activation of X20CoCrWMo10-9, a Co-based tool steel resulted in a new composite material (X20CoCrWMo10-9//Co3O4) that catalyzes the anode half-cell reaction of water electrolysis with a so far, unequalled effectiveness. The current density achieved with this new anode in pH 7 corrected 0.1 M phosphate buffer is over a wide range of eta around 10 times higher compared to recently developed, up-to-date electrocatalysts and represents the benchmark performance which advanced catalysts show in regimes that support water splitting significantly better than pH 7 medium. X20CoCrWMo10-9//Co3O4 exhibited electrocatalytic properties not only at pH 7, but also at pH 13, which are much superior to the ones of IrO2-RuO2, single-phase Co3O4- or Fe/Ni-based catalysts. Both XPS and FT-IR experiments unmasked Co3O4 as the dominating compound on the surface of the X20CoCrWMo10-9//Co3O4 composite. By performing a comprehensive dual beam FIB-SEM (focused ion beam-scanning electron microscopy) study, we could show that the new composite does not exhibit a classical substrate-layer structure due to the intrinsic formation of the Co-enriched outer zone. This structural particularity is basically responsible for the outstanding electrocatalytic OER performance.
机译:分水允许将太阳能存储为化学键(H-2 + O-2),并将帮助实现迫切需要的有限可用化石燃料的替代。特别地,在中性环境中,电化学引发的水分解由于由阳极引起的高过电势(η)而效率低下。钴基工具钢X20CoCrWMo10-9的电活化产生了一种新的复合材料(X20CoCrWMo10-9 // Co3O4),该材料可催化水电解的阳极半电池反应,到目前为止,其有效性无与伦比。在pH 7校正的0.1 M磷酸盐缓冲液中,这种新型阳极所实现的电流密度在较宽的eta范围内,比最近开发的最新电催化剂高出约10倍,并且代表了先进催化剂在以下领域所显示的基准性能:支持水分解效果明显优于pH 7介质。 X20CoCrWMo10-9 // Co3O4不仅在pH 7时,而且在pH 13时都表现出电催化性能,远优于IrO2-RuO2,单相Co3O4-或Fe / Ni基催化剂。 XPS和FT-IR实验均未掩盖X2CoCrWMo10-9 // Co3O4复合材料表面上作为主要化合物的Co3O4。通过进行全面的双束FIB-SEM(聚焦离子束扫描电子显微镜)研究,我们可以证明由于复合材料富含Co的外部区域的内在形成,因此该新复合材料没有展现出经典的基底层结构。这种结构上的特殊性基本上是导致出色的电催化OER性能的原因。

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  • 来源
    《Energy & environmental science》 |2016年第8期|2609-2622|共14页
  • 作者单位

    Univ Osnabruck, Inst Chem New Mat, Barbarastr 7, D-49076 Osnabruck, Germany|Univ Osnabruck, Ctr Phys & Chem New Mat, Barbarastr 7, D-49076 Osnabruck, Germany;

    Dalhousie Univ, Dept Chem, Halifax, NS B3H 4J3, Canada;

    Univ Osnabruck, Dept Phys, Barbarastr 7, D-49069 Osnabruck, Germany;

    Dalhousie Univ, Dept Chem, Halifax, NS B3H 4J3, Canada;

    Univ Osnabruck, Dept Phys, Barbarastr 7, D-49069 Osnabruck, Germany;

    Osnabruck Univ Appl Sci, Lab Plant Nutr & Chem, Fac Agr Sci & Landscape Architecture, Krumpel 31, D-49090 Osnabruck, Germany;

    Univ Osnabruck, Inst Chem New Mat, Barbarastr 7, D-49076 Osnabruck, Germany|Univ Osnabruck, Ctr Phys & Chem New Mat, Barbarastr 7, D-49076 Osnabruck, Germany;

    Univ Osnabruck, Inst Chem New Mat, Barbarastr 7, D-49076 Osnabruck, Germany|Univ Osnabruck, Ctr Phys & Chem New Mat, Barbarastr 7, D-49076 Osnabruck, Germany;

    Univ Appl Sci Osnabruck, Inst Mat Design & Struct Integr, Albrechtstr 30, D-49076 Osnabruck, Germany;

    Univ Wurzburg, Inst Inorgan Chem, D-97074 Wurzburg, Germany;

    Univ Wurzburg, Inst Inorgan Chem, D-97074 Wurzburg, Germany;

    Univ Osnabruck, Inst Chem New Mat, Barbarastr 7, D-49076 Osnabruck, Germany|Univ Osnabruck, Ctr Phys & Chem New Mat, Barbarastr 7, D-49076 Osnabruck, Germany;

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