制作
材料科学
热分解
导电体
能量密度
电极
纳米技术
粒子(生态学)
热的
可持续能源
储能
分解
离子
钠
化学工程
草酸盐
溶剂
粒径
极限(数学)
工艺工程
锂离子电池的纳米结构
电势能
热解
电接点
电流密度
导电的
球形填料
生物相容性材料
作者
Nan Qin,Yifan Li,Haotian Yang,Jing Chen,Chenchen Feng,Cunman Zhang,Zonghai Chen,Jim P. Zheng,Liming Jin
标识
DOI:10.1038/s41467-025-66492-3
摘要
Sacrificial sodium-rich salts pre-sodiation is a safe and promising approach to supplement sodium-ion batteries with additional capacity for energy density enhancement. However, high-cost from additional solvent and low-utilization-ratio caused by loose electrical contact limit its practical application in slurry-coated electrodes. Herein, we demonstrate a dry-processing method to enable complete sodium oxalate decomposition and solvent-free production of thick electrodes. Distinct to particle aggregation in slurry-coated electrodes, a homogenous mixture of Na2C2O4 and conductive agents is generated and wraps Na3V2(PO4)3 particles after high-speed shear-mixing and hot-calendaring of dry-processing method, constructing intimate and durable electronic pathways, thus realizing theoretical decomposition capacity of Na2C2O4 in thick electrodes (54 mg cm-2). This strategy increases the lifespan by 200 cycles and energy density by 82.5% for all-dry-processing sodium-ion batteries with areal capacity of 5.4 mAh cm-2, which highlights the vital role of exploiting mechanical and thermal effects of dry-processing method in sustainable fabrication of high-energy sodium-ion batteries. Using sacrificial salts to enhance sodium-ion batteries is hampered by practical issues. Here, authors demonstrate a solvent-free dry-processing method that ensures complete salt decomposition for major gains in energy density and lifespan.
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