阴极
材料科学
法拉第效率
阳极
水溶液
电化学
涂层
电解质
化学工程
图层(电子)
纳米尺度
极化(电化学)
电极
活动层
电池(电)
能量密度
锌
纳米颗粒
原材料
电流密度
甲醇
沉浸式(数学)
超疏水涂料
可扩展性
纳米技术
作者
Shixun Wang,Zhiquan Wei,Yiqiao Wang,Shengnan Wang,Dedi Li,Hu Hong,Chuan Li,Yanbo Wang,Zhuoxi Wu,Shaoce Zhang,Xueying Zheng,Yi‐Chun Lu,Chunyi Zhi
标识
DOI:10.1002/anie.202523567
摘要
ABSTRACT Electrolyte additive engineering offers a promising pathway for achieving dendrite‐free aqueous zinc‐ion batteries (ZIBs) while facing challenges related to hydrophilic characteristics and/or high loading requirements. Herein, we developed a cost‐effective and scalable facile immersion treatment to deposit a hydrophobic 1,3‐Di(o‐tolyl)thiourea (DTH) layer with nanoscale thickness (≤ 14 nm). This approach yields an ultra‐low DTH loading (5.37 × 10 −13 M) and exceptional cost efficiency (1.43 × 10 −7 USD Ah −1 ), surpassing conventional water‐miscible organic additives and biomass‐derived counterparts by orders of magnitude. The hydrophobic DTH layer optimizes Zn electrochemistry and mitigates parasitic reactions, irrespective of the immersion sequence in the same batch of ethanol solution. Consequently, the Zn||ODASnI 4 (ODA denotes 1,8‐octadiamine) coin cell demonstrated stable operation over 2500 cycles at 2 A g −1 with a low additive cost of 1.43 × 10 −6 USD per cell. The pouch cell showed an average coulombic efficiency (CE) of 99.9% and 72% capacity retention after 1200 cycles, incurring an ultra‐low additive cost of 7.02× 10 −5 USD while delivering a high energy density of 143 Wh kg −1 (based on cathode mass). This work enabled durable and high‐performance ZIBs at minimal cost, providing a foundation for further exploration of low‐cost, scalable strategies in aqueous battery systems.
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