TY - JOUR
T1 - Boosting iodine redox kinetics through the inherent electrostatic interaction and electron donor capability of gelatin binder
AU - Chen, Min
AU - Han, Xinxin
AU - Pan, Yicai
AU - Tu, Haoran
AU - Zhu, Jiahao
AU - Shao, Mengmeng
AU - Zheng, Ke
AU - Wang, Wenlong
AU - Li, Kunquan
AU - Qiao, Xiaochang
AU - Shan, Lutong
AU - Shi, Xiaodong
PY - 2025/10
Y1 - 2025/10
N2 - The notorious shuttle effect of polyiodides in aqueous Zinc-iodine (Zn-I2) batteries impedes their practical application, which renders it imperative to address this issue. Here, we report natural gelatin as an advanced aqueous binder for iodine-loading cathode to enable stable and efficient Zn-I2 batteries. The positively charged region in gelatin presents electrostatic attraction to the iodine species, while the electron-rich regions could donate electrons to form physical or even covalent bonds with iodine species, thus inhibiting polyiodides shuttle effect and boosting redox reaction. A high reversible capacity of 138 mAh g−1 after 3 000 cycles at 2C and an ultra-long cycling stability of 30 000 cycles at 25C with 107 mAh g−1 capacity was achieved. Gelatin binder also can accommodate high iodine-loading (∼10 mg) cathode, punch cells, and severe temperature conditions (−10 °C and 60 °C). In-situ UV–vis absorption spectroscopy, in-situ Raman spectra and theoretical calculation revealed the critical role of gelatin binder in suppressing polyiodide shuttling and accelerating reaction kinetics. This work uncovers the potential of natural low-cost binder material in advanced Zn-I2 batteries and drives future study of designing functional binders. © 2025 The Authors.
AB - The notorious shuttle effect of polyiodides in aqueous Zinc-iodine (Zn-I2) batteries impedes their practical application, which renders it imperative to address this issue. Here, we report natural gelatin as an advanced aqueous binder for iodine-loading cathode to enable stable and efficient Zn-I2 batteries. The positively charged region in gelatin presents electrostatic attraction to the iodine species, while the electron-rich regions could donate electrons to form physical or even covalent bonds with iodine species, thus inhibiting polyiodides shuttle effect and boosting redox reaction. A high reversible capacity of 138 mAh g−1 after 3 000 cycles at 2C and an ultra-long cycling stability of 30 000 cycles at 25C with 107 mAh g−1 capacity was achieved. Gelatin binder also can accommodate high iodine-loading (∼10 mg) cathode, punch cells, and severe temperature conditions (−10 °C and 60 °C). In-situ UV–vis absorption spectroscopy, in-situ Raman spectra and theoretical calculation revealed the critical role of gelatin binder in suppressing polyiodide shuttling and accelerating reaction kinetics. This work uncovers the potential of natural low-cost binder material in advanced Zn-I2 batteries and drives future study of designing functional binders. © 2025 The Authors.
KW - Electron donor
KW - Electrostatic interaction
KW - Gelatin protein
KW - Polyiodide shuttle
KW - Zinc-iodine batteries
UR - https://www.scopus.com/pages/publications/105012770003
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-105012770003&origin=recordpage
U2 - 10.1016/j.nanoms.2025.07.001
DO - 10.1016/j.nanoms.2025.07.001
M3 - RGC 21 - Publication in refereed journal
SN - 2096-6482
VL - 7
SP - 719
EP - 725
JO - Nano Materials Science
JF - Nano Materials Science
IS - 5
ER -