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用于无穿梭效应和无枝晶锌碘电池的蛋白质界面凝胶化

Protein Interfacial Gelation toward Shuttle-Free and Dendrite-Free Zn-Iodine Batteries.

作者信息

Zhang Shao-Jian, Hao Junnan, Wu Han, Chen Qianru, Ye Chao, Qiao Shi-Zhang

机构信息

School of Chemical Engineering, The University of Adelaide, Adelaide, SA, 5005, Australia.

出版信息

Adv Mater. 2024 Aug;36(35):e2404011. doi: 10.1002/adma.202404011. Epub 2024 Jul 6.

DOI:10.1002/adma.202404011
PMID:38970531
Abstract

Aqueous zinc-iodine (Zn-I) batteries hold potential for large-scale energy storage but struggle with shuttle effects of I cathodes and poor reversibility of Zn anodes. Here, an interfacial gelation strategy is proposed to suppress the shuttle effects and improve the Zn reversibility simultaneously by introducing silk protein (SP) additive. The SP can migrate bidirectionally toward cathode and anode interfaces driven by the periodically switched electric field direction during charging/discharging. For I cathodes, the interaction between SP and polyiodides forms gelatinous precipitate to avoid the polyiodide dissolution, evidenced by excellent electrochemical performance, including high specific capacity and Coulombic efficiency (CE) (215 mAh g and 99.5% at 1 C), excellent rate performance (≈170 mAh g at 50 C), and extended durability (6000 cycles at 10 C). For Zn anodes, gelatinous SP serves as protective layer to boost the Zn reversibility (99.7% average CE at 2 mA cm) and suppress dendrites. Consequently, a 500 mAh Zn-I pouch cell with high-loading cathode (37.5 mg cm) and high-utilization Zn anode (20%) achieves remarkable energy density (80 Wh kg) and long-term durability (>1000 cycles). These findings underscore the simultaneous modulation of both cathode and anode and demonstrate the potential for practical applications of Zn-I batteries.

摘要

水系锌碘(Zn-I)电池在大规模储能方面具有潜力,但存在碘阴极的穿梭效应和锌阳极可逆性差的问题。在此,提出了一种界面凝胶化策略,通过引入丝蛋白(SP)添加剂来同时抑制穿梭效应并提高锌的可逆性。在充电/放电过程中,SP可在周期性切换的电场方向驱动下双向迁移至阴极和阳极界面。对于碘阴极,SP与多碘化物之间的相互作用形成凝胶状沉淀,避免了多碘化物的溶解,这通过优异的电化学性能得到证明,包括高比容量和库仑效率(CE)(1 C时为215 mAh g和99.5%)、优异的倍率性能(50 C时约为170 mAh g)以及延长的耐久性(10 C时6000次循环)。对于锌阳极,凝胶状的SP作为保护层提高了锌的可逆性(2 mA cm时平均CE为99.7%)并抑制了枝晶。因此,一个具有高负载阴极(37.5 mg cm)和高利用率锌阳极(20%)的500 mAh Zn-I软包电池实现了显著的能量密度(80 Wh kg)和长期耐久性(>1000次循环)。这些发现强调了对阴极和阳极的同时调控,并展示了Zn-I电池实际应用的潜力。

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