J. Mater. Sci. Technol. ›› 2025, Vol. 225: 40-48.DOI: 10.1016/j.jmst.2024.11.030

• Research Article • Previous Articles     Next Articles

Biocompatible hydrogel electrolyte with high ionic conductivity and transference number towards dendrite-free Zn anodes

Qianhui Zhanga, Yingxin Zhanga, Lanzhi Kea, Haonan Jianga, Yuan Huanga,*, Zanxiang Nieb,*, Shunyu Jinc   

  1. aSchool of Microelectronics Science and Technology, Sun Yat-Sen University, Guangzhou 510275, China;
    bZinergy Shenzhen Ltd., Shenzhen 518109, China;
    cHefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei 23000, China
  • Received:2024-08-22 Revised:2024-11-12 Accepted:2024-11-21 Published:2025-08-01 Online:2024-12-15
  • Contact: *E-mail addresses: huangy723@mail.sysu.edu.cn (Y. Huang), jacknie@zinergy-power.cn (Z. Nie).

Abstract: Hydrogel electrolytes based on natural polymers have attracted increasing attention in zinc-ion batteries (ZIBs) powering wearable and implantable electronics, but designing natural polymer hydrogels with high ionic conductivity, excellent transference performance, and inhibited Zn dendrites is still challenging. Herein, two natural biocompatible polymers (sodium alginate (SA) and agarose (AG)) are used to prepare composite hydrogel electrolytes ensuring electrostatic interaction between -COO- groups in SA and Zn2+ and coordination between C-O-C groups in AG and Zn2+. The as-obtained hydrogels exhibit an elevated ionic conductivity (25.05 mS cm-1) with a high transference number (0.75), useful for facilitated efficient Zn2+ transport. The theoretical calculations combined with experimental results reveal C-O-C groups endowing the as-prepared hydrogels with improved desolvation kinetics and capture ability of Zn2+ for achieving dendrite-free Zn deposition. In this way, the assembled Zn symmetric cell shows a long cycle life reaching 700 h at 0.2 mA cm-2. The exceptional biocompatibility of the hydrogels also results in cell viability assay with a survival rate above 93.5 %. Overall, the proposed hydrogel electrolytes endow solid-state ZIBs with high discharge capacity, outstanding rate performance, long cycle life, good antifreeze capability, and impressive flexibility, useful features for future design and development of advanced ZIBs.

Key words: Natural biopolymer, Hydrogel, Zinc-ion battery, Ether group, Inhibited Zn dendrite, Biocompatibility