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An All-vanadium Continuous-flow Photoelectrochemical Cell for Extending State-of-charge in Solar Energy Storage

机译:全钒连续流光电化学电池用于扩展太阳能存储中的荷电状态

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摘要

Greater levels of solar energy storage provide an effective solution to the inherent nature of intermittency, and can substantially improve reliability, availability, and quality of the renewable energy source. Here we demonstrated an all-vanadium (all-V) continuous-flow photoelectrochemical storage cell (PESC) to achieve efficient and high-capacity storage of solar energy, through improving both photocurrent and photocharging depth. It was discovered that forced convective flow of electrolytes greatly enhanced the photocurrent by 5 times comparing to that with stagnant electrolytes. Electrochemical impedance spectroscopy (EIS) study revealed a great reduction of charge transfer resistance with forced convective flow of electrolytes as a result of better mass transport at U-turns of the tortuous serpentine flow channel of the cell. Taking advantage of the improved photocurrent and diminished charge transfer resistance, the all-V continuous-flow PESC was capable of producing ~20% gain in state of charge (SOC) under AM1.5 illumination for ca. 1.7 hours without any external bias. This gain of SOC was surprisingly three times more than that with stagnant electrolytes during a 25-hour period of photocharge.
机译:更高级别的太阳能存储为间歇性的内在特性提供了有效的解决方案,并且可以大大提高可再生能源的可靠性,可用性和质量。在这里,我们展示了一种全钒(all-V)连续流光电化学存储电池(PESC),它可以通过改善光电流和光充电深度来实现高效且高容量的太阳能存储。已经发现,与静止的电解质相比,强制对流的电解质将光电流大大提高了5倍。电化学阻抗谱(EIS)研究表明,由于在电池的曲折蜿蜒流动通道的U形转弯处更好地进行了质量转移,因此随着强制对流电解质的流动,电荷转移阻力大大降低。利用改善的光电流和降低的电荷转移电阻,全V连续流PESC能够在AM1.5照明下约20%的充电状态(SOC)产生约20%的增益。 1.7小时,无任何外部偏差。在25个小时的光充电期间,这种SOC的增加令人惊讶地是电解质停滞时的三倍。

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