Hao Junnan, Yuan Libei, Zhu Yilong, Bai Xiaowan, Ye Chao, Jiao Yan, Qiao Shi-Zhang
School of Chemical Engineering, The University of Adelaide, 5005, Adelaide, SA, Australia.
Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong, 2522, Wollongong, NSW, Australia.
Angew Chem Int Ed Engl. 2023 Sep 25;62(39):e202310284. doi: 10.1002/anie.202310284. Epub 2023 Aug 18.
As a burgeoning electrolyte system, eutectic electrolytes based on ZnCl /Zn(CF SO ) /Zn(TFSI) have been widely proposed in advanced Zn-I batteries; however, safety and cost concerns significantly limit their applications. Here, we report new-type ZnSO -based eutectic electrolytes that are both safe and cost-effective. Their universality is evident in various solvents of polyhydric alcohols, in which multiple -OH groups not only involve in Zn solvation but also interact with water, resulting in the high stability of electrolytes. Taking propylene glycol-based hydrated eutectic electrolyte as an example, it features significant advantages in non-flammability and low price that is <1/200 cost of Zn(CF SO ) /Zn(TFSI) -based eutectic electrolytes. Moreover, its effectiveness in confining the shuttle effects of I cathode and side reactions of Zn anodes is evidenced, resulting in Zn-I cells with high reversibility at 1 C and 91.4 % capacity remaining under 20 C. After scaling up to the pouch cell with a record mass loading of 33.3 mg cm , super-high-capacity retention of 96.7 % is achieved after 500 cycles, which exceeds other aqueous counterparts. This work significantly broadens the eutectic electrolyte family for advanced Zn battery design.
作为一种新兴的电解质体系,基于ZnCl₂/Zn(CF₃SO₃)₂/Zn(TFSI)₂的低共熔电解质在先进的锌碘电池中已被广泛提出;然而,安全性和成本问题严重限制了它们的应用。在此,我们报道了既安全又经济高效的新型ZnSO₄基低共熔电解质。它们在多元醇的各种溶剂中的通用性很明显,其中多个-OH基团不仅参与锌的溶剂化,还与水相互作用,从而导致电解质具有高稳定性。以丙二醇基水合低共熔电解质为例,它在不可燃性和低价格方面具有显著优势,其成本不到基于Zn(CF₃SO₃)₂/Zn(TFSI)₂的低共熔电解质的1/200。此外,它在抑制I⁻阴极的穿梭效应和Zn阳极的副反应方面的有效性得到了证明,从而得到了在1C下具有高可逆性且在20C下容量保持率为91.4%的锌碘电池。在扩大规模至具有创纪录的33.3 mg cm⁻²质量负载的软包电池后,在500次循环后实现了96.7%的超高容量保持率,这超过了其他水系同类产品。这项工作显著拓宽了用于先进锌电池设计的低共熔电解质家族。