电化学应用的纳米结构材料

RAN Pub Date : 2016-04-01 DOI:10.11159/ICNNFC16.1
D. Fattakhova‐Rohlfing
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引用次数: 0

摘要

对于新型能量转换和储能系统的发展,材料的选择和材料的形态都是非常重要的。纳米结构对材料的性能有着深远的影响,被认为是提高材料效率的关键途径之一。我的研究兴趣主要集中在电化学、光电化学和光伏应用的纳米结构电极材料的开发,以及了解和控制影响纳米材料的电荷转移和电荷输运性质的过程。特别是,我们致力于制造具有不同类型和尺寸的3d纳米结构的透明导电电极,作为固定化生物氧化还原实体的新型导电平台[1-5]。此外,我们还探讨了过渡金属氧化物的超小纳米晶体的潜力。我们已经开发了一种新的合成路线,可以获得迄今为止报道的最小的晶体金属氧化物纳米颗粒,这些纳米颗粒具有可调的成分和可调的电学、光学和电化学性能。除了晶体尺寸的减小和界面的增加导致电荷转移和离子/电子扩散途径的缩短外,化学合成纳米材料往往由于动力学而不是热力学控制其形成而导致亚稳和非化学计量相,这对电催化和电化学储能是有利的。所开发的纳米颗粒及其组装成的多孔连续网络在电化学水分解[6-8]、能量储存[9,10]和染料敏化太阳能电池[11,12]中表现出优异的催化剂和助催化剂性能。
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Nanostructured Materials for Electrochemical Applications
For the development of novel energy conversion and energy storage systems, both the choice of materials and their morphology are of great importance. Nanostructuring has a profound effect on the material’s properties and is considered as one of the key routes towards the improvement of their efficiency. My research interests are focused on the development of nanostructured electrode materials for electrochemical, photoelectrochemical and photovoltaic applications, as well as understanding and controlling the processes influencing charge transfer and charge transport properties of the nanoscaled materials. In particular we work on the fabrication of transparent conducting electrodes with various types and dimensions of 3D-nanostructures acting as novel conducting platforms for immobilization of biological redox entities [1-5]. Furthermore we explore the potential of ultrasmall nanocrystals of transition metal oxides. We have developed a novel synthesis route giving an access to the smallest ever reported crystalline metal oxide nanoparticles with tunable composition and tunable electric, optical and electrochemical properties. Besides the reduced crystal size and increased interface resulting in enhanced charge transfer and shortened ion/electron diffusion pathways, chemical synthesis of nanomaterials often leads to metastable and non-stoichiometric phases due to kinetic rather than thermodynamic control of their formation, which turns out to be advantageous for electrocatalysis and for electrochemical energy storage. The developed nanoparticles and their assemblies into porous continuous networks demonstrate excellent performance as catalysts and co-catalysts for electrochemical water splitting [6-8], energy storage [9,10] and in dye-sensitized solar cells [11,12].
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