材料科学
聚合物
电解质
复合数
化学工程
阴极
法拉第效率
导电体
纳米技术
复合材料
电极
工程类
物理化学
化学
作者
Meng Cheng,Ajaykrishna Ramasubramanian,Md Golam Rasul,Yizhou Jiang,Yifei Yuan,Tara Foroozan,Ramasubramonian Deivanayagam,Mahmoud Tamadoni Saray,Ramin Rojaee,Boao Song,Vitaliy Yurkiv,Yayue Pan,Farzad Mashayek,Reza Shahbazian‐Yassar
标识
DOI:10.1002/adfm.202006683
摘要
Abstract Proper distribution of thermally conductive nanomaterials in polymer batteries offers new opportunities to mitigate performance degradations associated with local hot spots and safety concerns in batteries. Herein, a direct ink writing (DIW) method is utilized to fabricate polyethylene oxide (PEO) composite polymers electrolytes (CPE) embedded with silane‐treated hexagonal boron nitride (S‐hBN) platelets and free of any volatile organic solvents. It is observed that the S‐hBN platelets are well aligned in the printed CPE during the DIW process. The in‐plane thermal conductivity of the printed CPE with the aligned S‐hBN platelets is 1.031 W −1 K −1 , which is about 1.7 times that of the pristine CPE with the randomly dispersed S‐hBN platelets (0.612 W −1 K −1 ). Thermal imaging shows that the peak temperature (°C) of the printed electrolytes is 24.2% lower than that of the CPE without S‐hBN, and 10.6% lower than that of the CPE with the randomly dispersed S‐hBN, indicating a superior thermal transport property. Lithium‐ion half‐cells made with the printed CPE and LiFePO 4 cathode displayed high specific discharge capacity of 146.0 mAh g −1 and stable Coulombic efficiency of 91% for 100 cycles at room temperature. This work facilitates the development of printable thermally‐conductive polymers for safer battery operations.
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