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Insight into the charge transfer in particulate Ta3N5 photoanode with high photoelectrochemical performance

机译:洞察具有高光电化学性能的Ta3N5微粒阳极中的电荷转移

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摘要

Charge separation is one of the most critical factors for generating solar fuels via photoelectrochemical water splitting, but it is still not well understood. This work reveals the fundamental role of charge transfer in photoanodes for achieving high charge separation efficiency. Specifically, we fabricated a particulate Ta3N5 photoanode by a bottom-up method. By improving the charge separation with refined necking treatment, the photocurrent is increased by two orders of magnitude. The charge separation efficiency (ηsep) is analyzed by dividing it into charge generation efficiency (Φgene) and transportation efficiency (Φtrans). Necking treatment is found to substantially improve the electron transfer. Transient photovoltage (TPV) measurements based on the Dember effect is used to confirm the benefit of necking treatment in improving the charge transportation. The superior electron transfer in the necked-Ta3N5 electrode is further evidenced by the facile electron exchange reaction with the ferri/ferrocyanide redox couple. Moreover, cobalt phosphate is found to promote both charge separation and surface reaction, resulting in a photocurrent of 6.1 mA cm–2 at 1.23 V vs. RHE, which is the highest response for a particulate photoanode.
机译:电荷分离是通过光电化学水分解产生太阳能燃料的最关键因素之一,但仍未被很好地理解。这项工作揭示了电荷转移在光阳极中实现高电荷分离效率的基本作用。具体而言,我们通过自下而上的方法制造了颗粒状的Ta3N5光电阳极。通过改进颈缩处理改善电荷分离,光电流增加了两个数量级。通过将电荷分离效率(ηsep)划分为电荷产生效率(Φgene)和传输效率(Φtrans)来进行分析。发现颈缩处理显着改善了电子转移。基于Dember效应的瞬态光电压(TPV)测量用于确认颈缩处理在改善电荷传输方面的优势。通过与亚铁/亚铁氰化物氧化还原对的容易的电子交换反应,进一步证明了在颈Ta3N5电极中的优异电子转移。此外,发现磷酸钴可促进电荷分离和表面反应,从而在相对于RHE的1.23 V下产生6.1 mA cm –2 的光电流,这对于颗粒状光电阳极是最高的响应。

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