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TiO2 and Fe2O3 Films for Photoelectrochemical Water Splitting

机译:用于光电化学水分解的TiO2和Fe2O3薄膜

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摘要

Titanium oxide (TiO2) and iron oxide (α-Fe2O3) hematite films have potential applications as photoanodes in electrochemical water splitting. In the present work TiO2 and α-Fe2O3 thin films were prepared by two methods, e.g., sol-gel and High Power Impulse Magnetron Sputtering (HiPIMS) and judged on the basis of physical properties such as crystalline structure and surface topography and functional properties such as simulated photoelectrochemical (PEC) water splitting conditions. It was revealed that the HiPIMS method already provides crystalline structures of anatase TiO2 and hematite Fe2O3 during the deposition, whereas to finalize the sol-gel route the as-deposited films must always be annealed to obtain the crystalline phase. Regarding the PEC activity, both TiO2 films show similar photocurrent density, but only when illuminated by UV light. A different situation was observed for hematite films where plasmatic films showed a tenfold enhancement of the stable photocurrent density over the sol-gel hematite films for both UV and visible irradiation. The superior properties of plasmatic films could be explained by ability to address some of the hematite drawbacks by the deposition of very thin films (25 nm) consisting of small densely packed particles and by doping with Sn.
机译:氧化钛(TiO2)和氧化铁(α-Fe2O3)赤铁矿薄膜在电化学水分解中作为光阳极具有潜在的应用。在目前的工作中,TiO 2和α-Fe2 O 3薄膜是通过两种方法制备的,例如溶胶-凝胶法和高功率脉冲磁控溅射(HiPIMS)法,并根据诸如晶体结构和表面形貌等物理性质和功能性质进行判断。作为模拟光电化学(PEC)的水分解条件。结果表明,HiPIMS方法在沉积过程中已经提供了锐钛矿型TiO2和赤铁矿型Fe2O3的晶体结构,而为了最终确定溶胶-凝胶路线,必须始终对沉积的薄膜进行退火以获得晶相。关于PEC活性,两个TiO2薄膜都显示相似的光电流密度,但仅在被紫外线照射时。对于赤铁矿膜观察到了不同的情况,其中对于紫外和可见光照射,等离子体膜显示出稳定的光电流密度比溶胶-凝胶赤铁矿膜提高了十倍。等离子体膜的优越性能可以通过沉积由细密堆积的小颗粒组成的非常薄的膜(25 nm)和掺杂Sn来解决某些赤铁矿缺陷的能力来解释。

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