Suter Silvan, Graf Rafael, Moreno García Diana, Haussener Sophia
Laboratory of Renewable Energy Science and Engineering , EPFL , Station 9 , 1015 Lausanne , Switzerland.
ACS Appl Mater Interfaces. 2020 Feb 5;12(5):5739-5749. doi: 10.1021/acsami.9b17856. Epub 2020 Jan 21.
Stable semiconductor photoelectrodes for water splitting often exhibit long absorption lengths and poor properties for the efficient separation and transport of photogenerated charges. We propose a combination of resonant and geometric light trapping for thin-film, mesostructured α-FeO photoanodes to engineer enhanced light management and increase the photocurrent density. Simulations of the electromagnetic wave propagation on accurate mesostructures were used to optimize the semiconductor film thickness and the electrode morphology for maximum light absorption. Local photocurrent densities at the semiconductor-electrolyte interface were calculated via a probabilistic charge collection model. The findings of the numerical model were translated into photoanodes by a novel fabrication process based on template stripping. The developed experimental platform is versatile and enables to fabricate electrodes with various shapes and precise control on the mesostructure. We successfully demonstrated the fabrication of α-FeO photoanodes with arrays of wedge structures in the micrometer range on a flexible substrate that benefits from resonant and geometric light trapping.
用于水分解的稳定半导体光电极通常具有较长的吸收长度,但在光生电荷的有效分离和传输方面性能较差。我们提出将共振和几何光捕获相结合,用于薄膜、介观结构的α-FeO光阳极,以设计增强的光管理并提高光电流密度。利用精确介观结构上的电磁波传播模拟来优化半导体薄膜厚度和电极形态,以实现最大光吸收。通过概率电荷收集模型计算半导体-电解质界面处的局部光电流密度。数值模型的结果通过基于模板剥离的新型制造工艺转化为光阳极。所开发的实验平台具有通用性,能够制造具有各种形状并对介观结构进行精确控制的电极。我们成功地展示了在柔性基板上制造具有微米级楔形结构阵列的α-FeO光阳极,该光阳极受益于共振和几何光捕获。