Institute for Materials Discovery, University College London, London WC1E 7JE, UK.
Department of Engineering, University of Cambridge, Cambridge CB3 0FS, UK.
ACS Appl Mater Interfaces. 2023 Feb 8;15(5):6963-6969. doi: 10.1021/acsami.2c20995. Epub 2023 Jan 27.
The development of devices with dual solar energy-harvesting and storage functionalities has recently gained significant traction for off-grid power supply. In their most compact embodiment, these devices rely on the same electrode to harvest and store energy; however, in this approach, the development of energy-efficient photoelectrodes with intrinsic characteristics of good optical and electrochemical activities remains challenging. Here, we propose photoelectrodes with a porous carbon coated on a zinc oxide-cadmium sulfide heterostructure as an energy-efficient photocathode for photo-accelerated zinc ion capacitors (Photo-ZICs). The Photo-ZICs harvest light energy and store charge simultaneously, resulting in efficient charge storage performance under illumination compared to dark conditions (∼99% capacity enhancement at 500 mA g under illumination compared to dark conditions). The light absorption ability and charge separation efficiency achieved by the photocathodes meet the requirements for photo-ZIC applications. Moreover, Photo-ZICs display stable charge storage capacities over long-term cycling, that is, ∼1% capacity loss after 10,000 cycles.
具有双重太阳能收集和存储功能的器件的开发最近在离网供电方面引起了极大关注。在最紧凑的形式中,这些器件依赖于同一电极来收集和存储能量;然而,在这种方法中,开发具有内在良好光学和电化学活性的高效光电电极仍然具有挑战性。在这里,我们提出了一种光电阴极,其具有涂覆在氧化锌-硫化镉异质结构上的多孔碳,作为光加速锌离子电容器(Photo-ZICs)的高效光电阴极。Photo-ZIC 同时收集光能和存储电荷,因此在光照下的电荷存储性能比在黑暗条件下更高效(与黑暗条件相比,在 500 mA g 光照下的容量增强约 99%)。光电阴极实现的光吸收能力和电荷分离效率满足 Photo-ZIC 应用的要求。此外,Photo-ZIC 在长期循环中显示出稳定的电荷存储容量,即在 10,000 次循环后仅损失约 1%的容量。