材料科学
位阻效应
偶极子
阳极
阴极
扭转
电场
分子
水溶液
电池(电)
化学物理
枝晶(数学)
电化学
碘化物
水解
本地字段
电偶极矩
Atom(片上系统)
分子动力学
纳米技术
光电子学
领域(数学)
结晶学
结构稳定性
电动势
化学工程
电荷(物理)
作者
Gele Teri,Li Yang,Bao-yi Zeng,Yi‐Xuan Yang,Cong Qi,Jia‐Qi Luo,Qiangqiang Jia,Hantao Xu,Lin Xu,Da‐Wei Fu,Yi Zhang
摘要
ABSTRACT Aqueous zinc‑iodine (Zn‐I 2 ) batteries demonstrate significant potential for large‑scale energy storage, yet their practical application remains hindered by polyiodide shuttling at the cathode and uncontrolled Zn dendrite growth at the anode. In this work, an asymmetric twist molecule (ATM) was designed, which disrupts the equilibrium of molecular charge distribution and spatial steric effects. The rigid twist backbone locks the amino and carboxyl groups in a fixed orientation, generating a permanent molecular dipole that creates a stable local electrostatic field. This field adsorbs iodide ions, suppressing iodine hydrolysis and preventing polyiodide migration. Meanwhile, the oriented local electric field homogenizes the Zn 2+ flux and mitigates dendrite formation at the Zn anode, enabling uniform Zn deposition. Consequently, experimental results demonstrate that the Zn‐I 2 battery delivers a reversible capacity of 235 mAh g −1 under a high loading of 7.3 mg cm −2 . Furthermore, the ATM containing Zn//Zn symmetric cell exhibits an ultralong cycling lifespan exceeding 6100 h at 1 mA cm −2 . This study proposes a feasible technical pathway for constructing highly stable aqueous Zn‐I 2 batteries through the concept of asymmetric twist molecular design.
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