Qi Yifeng, Li Fengfeng, Sheng Hongwei, Zhang Haoshuo, Yuan Jiao, Ma Lingxiao, Bi Huasheng, Ma Yuqi, Li Wenquan, Lan Wei
School of Physical Science and Technology, Lanzhou University, Lanzhou, Gansu, 730000, China.
School of Physics and Electronic Information Engineering, Qinghai Normal University, Xining, Qinghai, 810008, China.
Small. 2024 Nov;20(48):e2404312. doi: 10.1002/smll.202404312. Epub 2024 Aug 28.
Manganese oxide (MnO) based aqueous zinc-ion batteries (AZIBs) are considered to be a promising battery for grid-scale energy storage. However, they usually suffer from the great challenge of capacity attenuation due to Mn dissolution and irreversible structural transformation. Herein, full use of the shortcomings is made to design high-performance cathode-free AZIBs. Manganese-based Prussian blue analog (Mn-PBA) is selected as a seed layer to provide a stable MnO electrodeposition surface. Thanks to the large specific surface area and manganophilic nature of Mn-PBA, the deposition/dissolution kinetics between Mn and MnO are significantly enhanced. Systematic studies revealed the mechanism of MnO deposition-dissolution related to the reversible transformation of manganese oxide hydroxide and zinc hydroxide sulfate hydrate. Based on this, the developed cathode-free AZIBs exhibit outstanding rate performance (with a specific capacity of 273.7 mAh g at 1 A g) and extraordinary cycle stability (maintaining a specific capacity of 52.3 mAh g after 50 000 cycles at 20 A g). Furthermore, the AZIBs with non-toxic, biocompatible materials can be directly discarded after use, without causing pollution to the environment, which is expected to help achieve the sustainable development goals.
基于氧化锰(MnO)的水系锌离子电池(AZIBs)被认为是一种有前景的用于电网规模储能的电池。然而,由于锰的溶解和不可逆的结构转变,它们通常面临容量衰减的巨大挑战。在此,充分利用这些缺点来设计高性能的无负极AZIBs。选择锰基普鲁士蓝类似物(Mn-PBA)作为种子层,以提供一个稳定的MnO电沉积表面。得益于Mn-PBA的大比表面积和对锰的亲和性,Mn与MnO之间的沉积/溶解动力学显著增强。系统研究揭示了与氢氧化锰氧化物和水合硫酸锌氢氧化物的可逆转变相关的MnO沉积-溶解机制。基于此,所开发的无负极AZIBs表现出出色的倍率性能(在1 A g下比容量为273.7 mAh g)和非凡的循环稳定性(在20 A g下50000次循环后比容量保持在52.3 mAh g)。此外,具有无毒、生物相容性材料的AZIBs在使用后可以直接丢弃,不会对环境造成污染,这有望有助于实现可持续发展目标。