材料科学
电池(电)
电压
可再生能源
储能
光电子学
太阳能
电气工程
工程物理
功率(物理)
物理
工程类
量子力学
作者
Yuxiang Hu,Yang Bai,Bin Luo,Songcan Wang,Han Hu,Peng Chen,Miaoqiang Lyu,Joseph G. Shapter,Alan E. Rowan,Lianzhou Wang
标识
DOI:10.1002/aenm.201900872
摘要
Abstract The solar‐rechargeable electric energy storage systems (SEESSs), which can simultaneously harvest and store solar energy, are considered a promising next‐generation renewable energy supply system. However, the difficulty in meeting the demands of higher overall photoelectric conversion and storage efficiency (PCSE) with both high power density and large energy density in the current SEESSs severely limit their practical application. Herein, a new class is demonstrated of portable and highly efficient SEESS that uniquely integrates a perovskite solar module (PSM) and an aluminum‐ion battery (AIB) directly on a bifunctional aluminum electrode without any external circuit. Such nanostructural design in the SEESS not only exhibits fast photo‐charge/discharge rate (less than one minute) with high power density (above 5000 W kg −1 ), but also delivers a high energy density (above 43 Wh kg −1 ). By rationally matching the maximum power point voltage of PSM with AIB charging voltage, an excellent solar‐charging efficiency of 15.2% and a high PCSE of 12.04% are achieved, which is among the best in all reported portable SEESSs. Moreover, enhanced PCSE is observed as the light intensity decreases, which makes such SEESS immune from the geographical location and climate limitations for diverse practical applications.
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