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Bioinspired Molecular Screening of Zwitterionic Dipeptides for Stable Ah-Level Zinc-Iodine Batteries
Tao Yang1, Zeyang Sun1, Chang Dong1
1Zhejiang Key Laboratory of Energy Conversion Materials for Advanced Motor, College of Materials and Environmental Engineering, Hangzhou Dianzi University, Hangzhou, P. R. China.
Abstract:
Aqueous zinc-iodine (Zn─I2) batteries are attractive for large-scale energy storage yet remain limited by two coupled failure mechanisms: unstable zinc interface at the anode and polyiodide shuttling at the cathode. To address both challenges with a single additive, we systematically screened 44 amino acids and dipeptides using molecular dipole moment and LUMO energy as key descriptors. L-Carnosine (LC) emerged as a unique candidate exhibiting both the highest dipole moment and a moderate LUMO energy across the screened library. Experimentally, LC's zwitterionic, multicenter charge distribution drives persistent multidentate adsorption at the zinc interface, suppressing HER, directing (101)-oriented crystallographic deposition through facet-selective passivation, and enabling formation of a vertically graded organic-inorganic hybrid solid electrolyte interphase. Concurrently, the electron-rich imidazole group rapidly quenches polyiodide intermediates through a rapid redox reaction. This synergistic regulation enables Zn||Zn symmetric cells to operate stably for 4980 h, Zn||Cu cells to achieve 99.76% average Coulombic efficiency (CE) over 1400 cycles, and Zn||I2 full cells to sustain over 18 000 cycles with nearly 100% capacity retention. Furthermore, the practical viability is demonstrated in Ah-level pouch cells with 85% capacity retention after 500 cycles. This work establishes a unique molecular transformation strategy for stabilizing high-energy aqueous energy systems.