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Coupling Energy Capture and Storage – Endeavoring to make a solar battery

机译:耦合能量收集和存储–努力制造太阳能电池

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摘要

Storage of solar radiation is currently accomplished by coupling two separate devices, one that captures and converts the energy into an electrical impulse (a photovoltaic cell) and another that stores this electrical output (a battery or a supercapacitor electrochemical cell). This configuration however has several challenges that stem from a complex coupled-device architecture and multiple interfaces through which charge transfer has to occur. As such presented here is a scheme whereby solar energy capture and storage have been coupled using a single bi-functional material. Two electroactive semiconductors BiVO4 (n-type) and Co3O4 (p-type) have been separately evaluated for their energy storage capability in the presence and absence of visible radiation. Each of these have the capability to function as a light harvester and also they have faradaic capability. An unprecedented aspect has been observed in that upon photo-illumination of either of these semiconductors, in situ charge carriers being generated play a pivotal role in perturbing the electroactivity of the redox species such that the majority charge carriers, viz. electrons in BiVO4 and holes in Co3O4, influence the redox response in a disproportionate manner. More importantly, there is an enhancement of ca. 30% in the discharge capacity of BiVO4 in the presence of light and this directly provides a unique route to augment charge storage during illumination.
机译:当前,太阳辐射的存储是通过耦合两个单独的设备来完成的,一个设备捕获能量并将其转换为电脉冲(光伏电池),另一个存储该电输出(电池或超级电容器电化学电池)。然而,这种配置具有一些挑战,这些挑战源于复杂的耦合设备架构和必须通过其进行电荷转移的多个接口。如这里所呈现的,是一种方案,其中已经使用单一的双功能材料来耦合太阳能捕获和存储。在存在和不存在可见辐射的情况下,已经分别评估了两种电活性半导体BiVO4(n型)和Co3O4(p型)的能量存储能力。它们中的每一个都具有充当光收集器的能力,并且还具有法拉第能力。已经观察到前所未有的方面,因为在对这些半导体中的任何一种进行光照射时,原位产生的电荷载流子在扰动氧化还原物质的电活性方面起着关键作用,从而多数电荷载流子即。 BiVO4中的电子和Co3O4中的空穴以不成比例的方式影响氧化还原响应。更重要的是,ca的增强。在有光的情况下,BiVO4的放电容量达到30%,这直接为增加照明过程中的电荷存储提供了独特的途径。

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