Ansari Rashid M, Chamola Shubham, Ahmad Shahab
Advanced Energy Materials Lab, Department of Physics, Indian Institute of Technology Jodhpur, Jodhpur, Rajasthan, 342030, India.
Small. 2024 Oct;20(40):e2401350. doi: 10.1002/smll.202401350. Epub 2024 Jun 1.
Photo-rechargeable batteries (PRBs) can provide a compact solution to power autonomous smart devices located at remote sites that cannot be connected with the grid. The study reports the Ruddlesden-Popper (RP) metal halide perovskite (MHP) and molybdenum disulfide (MoS) hybrid heterojunction-based photocathodes for Li-ion photo-rechargeable battery (Li-PRB) applications. Hybrid Lithium-ion batteries (LIBs) have demonstrated an average discharge specific capacity of 144.46 and 129.17 mAhg for 50 cycles when operating at 176 and 294 mAg, respectively compared to the pristine LIBs which have shown specific capacity of 37.48 and 25.60 mAhg under similar conditions. Hybrid Li-PRB has achieved an average dark discharge specific capacities of 128.66 mAhg (capacity retention: 96.56%) which enhanced to 180.67 mAhg under illumination (capacity retention: 97.39%; photo-enhancement: 40.42%) at 64 mAg. Excellent performance of hybrid Li-PRB is attributed to the formation of type-II heterojunction that leads to improved crystallinity and film morphology. The PRB has demonstrated a high photo conversion and storage efficiency (PC-SE) of 0.52% under standard 1 Sun illumination, which outperforms other previously reported MHP based LIBs and PRBs. This work provides a novel approach of harnessing the potential of MHPs for PRBs and offers new avenues for MHP photocathodes for various applications beyond PRBs.
光可充电电池(PRB)可为位于无法与电网连接的偏远地区的自主智能设备供电提供紧凑的解决方案。该研究报告了基于Ruddlesden-Popper(RP)金属卤化物钙钛矿(MHP)和二硫化钼(MoS)混合异质结的光阴极在锂离子光可充电电池(Li-PRB)中的应用。混合锂离子电池(LIB)在分别以176和294 mAg运行时,50个循环的平均放电比容量为144.46和129.17 mAh/g,而在类似条件下,原始LIB的比容量分别为37.48和25.60 mAh/g。混合Li-PRB在64 mAg时实现了平均暗放电比容量为128.66 mAh/g(容量保持率:96.56%),在光照下提高到180.67 mAh/g(容量保持率:97.39%;光增强:40.42%)。混合Li-PRB的优异性能归因于II型异质结的形成,这导致结晶度和薄膜形态得到改善。该PRB在标准1太阳光照下表现出0.52%的高光转换和存储效率(PC-SE),优于其他先前报道的基于MHP的LIB和PRB。这项工作提供了一种利用MHP在PRB中的潜力的新方法,并为MHP光阴极在PRB以外的各种应用提供了新途径。