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采用硫化钛阴极的光充电锂离子电池。

Photo-Rechargeable Li-Ion Batteries using TiS Cathode.

作者信息

Kumar Amar, Hammad Raheel, Pahuja Mansi, Arenal Raul, Ghosh Kaushik, Ghosh Soumya, Narayanan Tharangattu N

机构信息

Tata Institute of Fundamental Research-Hyderabad, Sy No. 36/P Serilingampally Mandal, Hyderabad, 500046, India.

Institute of Nano Science & Technology, Mohali, Punjab, 140306, India.

出版信息

Small. 2023 Sep;19(38):e2303319. doi: 10.1002/smll.202303319. Epub 2023 May 17.

Abstract

Photo-rechargeable (solar) battery can be considered as an energy harvesting cum storage system, where it can charge the conventional metal-ion battery using light instead of electricity, without having other parasitic reactions. Here a two-electrode lithium-ion solar battery with multifaceted TiS -TiO hybrid sheets as cathode. The choice of TiS -TiO electrode ensures the formation of a type II semiconductor heterostructure while the lateral heterostructure geometry ensures high mass/charge transfer and light interactions with the electrode. TiS has a higher lithium binding energy (1.6 eV) than TiO (1.03 eV), ensuring the possibilities of higher amount of Li-ion insertion to TiS and hence the maximum recovery with the photocharging, as further confirmed by the experiments. Apart from the demonstration of solar solid-state batteries, the charging of lithium-ion full cell with light indicates the formation of lithium intercalated graphite compounds, ensuring the charging of the battery without any other parasitic reactions at the electrolyte or electrode-electrolyte interfaces. Possible mechanisms proposed here for the charging and discharging processes of solar batteries, based on the experimental and theoretical results, indicate the potential of such systems in the forthcoming era of renewable energies.

摘要

光可充电(太阳能)电池可被视为一种能量收集兼存储系统,在该系统中,它能够利用光而非电来对传统金属离子电池进行充电,且不会发生其他寄生反应。此处展示了一种以多面TiS₂ - TiO混合片材作为阴极的双电极锂离子太阳能电池。选择TiS₂ - TiO电极可确保形成II型半导体异质结构,而横向异质结构几何形状可确保高质量/电荷转移以及光与电极的相互作用。TiS₂的锂结合能(1.6 eV)高于TiO(1.03 eV),这确保了更多锂离子插入TiS₂的可能性,从而实现光充电时的最大恢复,实验进一步证实了这一点。除了展示太阳能固态电池外,用光照对锂离子全电池进行充电表明形成了锂嵌入石墨化合物,确保了电池充电时在电解质或电极 - 电解质界面不会发生任何其他寄生反应。基于实验和理论结果,此处提出的太阳能电池充放电过程的可能机制表明了此类系统在即将到来的可再生能源时代的潜力。

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