Wang Shixun, Wang Yiqiao, Wei Zhiquan, Zhu Jiaxiong, Chen Ze, Hong Hu, Xiong Qi, Zhang Dechao, Li Shimei, Wang Shengnan, Huang Yan, Zhi Chunyi
Department of Materials Science and Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Hong Kong S.A.R., 999077, P. R. China.
Hong Kong Center for Cerebro-Cardiovascular Health Engineering (COCHE), Shatin, NT, Hong Kong S.A.R., 999077, P. R. China.
Adv Mater. 2024 Jun;36(26):e2401924. doi: 10.1002/adma.202401924. Epub 2024 Apr 15.
With the increasing need for reliable storage systems, the conversion-type chemistry typified by bromine cathodes attracts considerable attention due to sizeable theoretical capacity, cost efficiency, and high redox potential. However, the severe loss of active species during operation remains a problem, leading researchers to resort to concentrated halide-containing electrolytes. Here, profiting from the intrinsic halide exchange in perovskite lattices, a novel low-dimensional halide hybrid perovskite cathode, TmdpPb[IBr], which serves not only as a halogen reservoir for reversible three-electron conversions but also as an effective halogen absorbent by surface Pb dangling bonds, C─H…Br hydrogen bonds, and Pb─I…Br halogen bonds, is proposed. As such, the Zn||TmdpPb[IBr] battery delivers three remarkable discharge voltage plateaus at 1.21 V (I/I), 1.47 V (I/I), and 1.74 V (Br/Br) in a typical halide-free electrolyte; meanwhile, realizing a high capacity of over 336 mAh g at 0.4 A g and high capacity retentions of 88% and 92% after 1000 cycles at 1.2 A g and 4000 cycles at 3.2 A g, respectively, accompanied by a high coulombic efficiency of ≈99%. The work highlights the promising conversion-type cathodes based on metal-halide perovskite materials.
随着对可靠存储系统需求的不断增加,以溴阴极为代表的转换型化学因其可观的理论容量、成本效益和高氧化还原电位而备受关注。然而,运行过程中活性物质的严重损失仍然是一个问题,这导致研究人员求助于含卤化物的浓电解质。在此,利用钙钛矿晶格中固有的卤化物交换,提出了一种新型的低维卤化物混合钙钛矿阴极TmdpPb[IBr],它不仅作为可逆三电子转换的卤素储存库,还通过表面Pb悬键、C─H…Br氢键和Pb─I…Br卤素键作为有效的卤素吸收剂。因此,Zn||TmdpPb[IBr]电池在典型的无卤化物电解质中,在1.21 V(I/I)、1.47 V(I/I)和1.74 V(Br/Br)处呈现出三个显著的放电电压平台;同时,在0.4 A g下实现了超过336 mAh g的高容量,在1.2 A g下循环1000次和在3.2 A g下循环4000次后,分别具有88%和92%的高容量保持率,同时伴随着约99%的高库仑效率。这项工作突出了基于金属卤化物钙钛矿材料的有前景的转换型阴极。