Xiao Can-Fei, Lu Yong-Xia, Lu Ming, Luo Dongxiang, Xiao Kang, Wang Yongke, Liu Zhao-Qing
School of Chemistry and Chemical Engineering, Institute of Clean Energy and Materials, Guangzhou Key Laboratory for Clean Energy and Materials, Guangzhou University Guangzhou 510006 China
Engineering Department, University of Miami Miami 32812 USA.
Chem Sci. 2025 Jun 27;16(30):13655-13666. doi: 10.1039/d5sc03646a. eCollection 2025 Jul 30.
Aqueous zinc-ion batteries (AZIBs) have garnered significant attention due to their inherent safety and cost-effectiveness, with electrolyte additives playing a pivotal role in enhancing their electrochemical performance. However, the current research landscape reveals a notable gap in the exploration of colloidal additives for AZIB electrolyte systems. This study addresses this limitation by introducing a novel colloidal electrolyte system comprising two synergistic components: a dissolved fraction that modulates the Zn solvation structure through small molecules, and an insoluble colloidal fraction that facilitates the formation of a robust solid-electrolyte interphase (SEI) at the anode surface. We propose the innovative use of perylene-3,4,9,10-tetracarboxylic acid diimide (PTCDI) as a multifunctional colloidal additive to engineer a hybrid electrolyte with weak solvation effects. The PTCDI additive demonstrates unique multisite zincophilicity and hydrophobicity, effectively reducing free water content and nucleation potential within the hydrogen bonding network, thereby promoting uniform zinc nucleation. This innovative approach yields remarkable electrochemical performance, achieving stable zinc stripping/plating for 2800 hours with a minimal overpotential of 58.4 mV and an exceptional coulombic efficiency of 99.94%. Zn‖MnO full cells with a low negative/positive electrode capacity ratio of 9.5 exhibit stable cycling performance, maintaining functionality over 500 cycles at a current density of 1 A g at -30 °C. These findings establish colloidal additives as a promising paradigm for advancing AZIB electrolyte design, offering new insights into the development of high-performance zinc-ion battery systems.
水系锌离子电池(AZIBs)因其固有的安全性和成本效益而备受关注,电解质添加剂在提高其电化学性能方面起着关键作用。然而,目前的研究现状表明,在AZIB电解质体系的胶体添加剂探索方面存在显著差距。本研究通过引入一种新型胶体电解质体系来解决这一局限性,该体系由两种协同成分组成:一种溶解部分,通过小分子调节锌的溶剂化结构;另一种不溶性胶体部分,促进在阳极表面形成坚固的固体电解质界面(SEI)。我们提出创新性地使用苝-3,4,9,10-四羧酸二亚胺(PTCDI)作为多功能胶体添加剂,以设计一种具有弱溶剂化效应的混合电解质。PTCDI添加剂表现出独特的多位点亲锌性和疏水性,有效降低了氢键网络内的自由水含量和成核电位,从而促进锌的均匀成核。这种创新方法产生了卓越的电化学性能,实现了2800小时的稳定锌剥离/电镀,过电位最小为58.4 mV,库仑效率高达99.94%。负/正极容量比低至9.5的Zn‖MnO全电池在-30°C下以1 A g的电流密度循环500次仍保持稳定的循环性能。这些发现确立了胶体添加剂作为推进AZIB电解质设计的一种有前景的范例,为高性能锌离子电池系统的开发提供了新的见解。