State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, School of New Energy, North China Electric Power University, Beijing 102206, China.
ACS Appl Mater Interfaces. 2023 Mar 8;15(9):11875-11884. doi: 10.1021/acsami.2c23046. Epub 2023 Feb 21.
A photorechargeable device can generate power from sunlight and store it in one device, which has a broad application prospect in the future. However, if the working state of the photovoltaic part in the photorechargeable device deviates from the maximum power point, its actual power conversion efficiency will reduce. The strategy of voltage match on the maximum power point is reported to achieve a high overall efficiency (η) of the photorechargeable device assembled by a passivated emitter and rear cell (PERC) solar cell and Ni-based asymmetric capacitors. According to matching the voltage of the maximum power point of the photovoltaic part, the charging characteristics of the energy storage part are adjusted to realize a high actual power conversion efficiency of the photovoltaic part (η). The η of a Ni(OH)-rGO-based photorechargeable device is 21.53%, and the η is up to 14.55%. This strategy can promote further practical application for the development of photorechargeable devices.
一种可光充电的器件可以从阳光中产生能量并将其储存在一个设备中,这在未来具有广阔的应用前景。然而,如果可光充电器件中的光伏部分的工作状态偏离最大功率点,其实际功率转换效率将会降低。据报道,通过在最大功率点上进行电压匹配的策略,可以实现由钝化发射极和后电池(PERC)太阳能电池和 Ni 基非对称电容器组装的可光充电器件的高效率(η)。根据匹配光伏部分的最大功率点的电压,可以调整储能部分的充电特性,以实现光伏部分的高实际功率转换效率(η)。基于 Ni(OH)-rGO 的可光充电器件的 η 为 21.53%,而 η 高达 14.55%。该策略可以促进可光充电器件的进一步实际应用。