堆栈(抽象数据类型)
材料科学
电解质
机械工程
能量密度
电导率
工程物理
电流密度
小袋
核工程
高压
电流(流体)
工艺工程
毯子
能量(信号处理)
压力容器
环境压力
导电体
纳米技术
液态金属
电阻率和电导率
复合材料
汽车工程
工作(物理)
光电子学
作者
Yue Gong,Yue Ji,Shuangquan Lin,Tengjiao Luan,Shuaike Wang,Yu Xia,Yingying Jiang,Xiaona Li,Jianwen Liang,Dawei Wang,Xueliang Sun,Changtai Zhao
摘要
Since 2011, ionic conductivity of some sulfide- and halide-based solid-state electrolytes (SSEs) have already reached a level comparable to that of liquid electrolytes. Numerous companies worldwide have proposed diverse technical pathways for commercializing electric vehicles with ultra-long driving ranges. However, the practical vehicular application of all-solid-state batteries (ASSBs) remains highly challenging and uncertain. One of the major obstacles is the requirement for high stack pressure, which typically relies on heavy metallic plates and thereby reduces the overall energy density of the module battery. This perspective compares practical all-solid-state pouch cells (ASSPCs) with conventional liquid batteries to analyze the origins of stack pressure requirements. The analysis is conducted from material, interfacial, and structural viewpoints, revealing the critical factors underlying this limitation. Subsequently, strategies are proposed to mitigate stack pressure from the current 20 MPa to 5 MPa for the first stage and to 2 MPa as the final target. The effect of stack pressure on cell-to-module energy density efficiency is also calculated to quantitative analysis. These insights provide practical suggestion from ASSPCs design to module-level pressure management.
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