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扩大用于光电化学水分解的电极规模:40厘米LaTiO N光阳极的制备工艺与性能

Scaling Up Electrodes for Photoelectrochemical Water Splitting: Fabrication Process and Performance of 40 cm LaTiO N Photoanodes.

作者信息

Dilger Stefan, Trottmann Matthias, Pokrant Simone

机构信息

Laboratory Materials for Energy Conversion, Empa, Überlandstrasse 129, 8600, Dübendorf, Switzerland.

Laboratory Advanced Analytical Technologies, Empa, Überlandstrasse 129, 8600, Dübendorf, Switzerland.

出版信息

ChemSusChem. 2019 May 8;12(9):1931-1938. doi: 10.1002/cssc.201802645. Epub 2019 Jan 30.

Abstract

A scalable process for fabrication of particle-based photoanodes is developed. The electrodes are versatilely made of photocatalytically active semiconductor particles, in this case LaTiO N, and optionally coated with cocatalysts and protecting components, all immobilized on a conducting substrate. The involved fabrication steps are restricted to scalable processes such as electrophoretic deposition, annealing in air, and dip coating. Special care is taken to ensure efficient charge transport in-between particles and to the substrate by incorporating conducting connectors. By adapting the fabrication steps, the electrode geometrical dimension is increased from the size of a typical lab electrode of 1 to 40 cm . The quality of the scale-up process is characterized by comparing the photoanodes in terms of thickness, light-absorption properties, and morphology. For several compositions, the electrochemical performance of both electrode sizes is assessed by measuring the photocurrents and faradaic efficiencies. The comparison revealed a complex upscaling behavior and showed that the photoelectrode size affects performance already on the 0.1 m scale.

摘要

开发了一种用于制造基于颗粒的光阳极的可扩展工艺。电极由光催化活性半导体颗粒(在这种情况下为LaTiO N)制成,并且可选地涂覆有共催化剂和保护成分,所有这些都固定在导电基底上。所涉及的制造步骤限于可扩展工艺,例如电泳沉积、空气中退火和浸涂。通过并入导电连接器,特别注意确保颗粒之间以及颗粒与基底之间的有效电荷传输。通过调整制造步骤,电极几何尺寸从典型的实验室电极的1厘米增大到40厘米。通过比较光阳极的厚度、光吸收特性和形态来表征放大过程的质量。对于几种组成,通过测量光电流和法拉第效率来评估两种电极尺寸的电化学性能。比较揭示了复杂的放大行为,并表明光电极尺寸在0.1米尺度上就已经影响性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d816/6680292/4b00ceacea8c/CSSC-12-1931-g001.jpg

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