Guo Cong, He Lu, Yao Yihang, Lin Weizhi, Zhang Yongzheng, Zhang Qin, Wu Kai, Fu Qiang
College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu, 610065, People's Republic of China.
Department of Polymer Science and Engineering, School of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, People's Republic of China.
Nanomicro Lett. 2022 Oct 10;14(1):202. doi: 10.1007/s40820-022-00947-w.
Phase change materials (PCMs) are expected to achieve dual-mode thermal management for heating and cooling Li-ion batteries (LIBs) according to real-time thermal conditions, guaranteeing the reliable operation of LIBs in both cold and hot environments. Herein, we report a liquid metal (LM) modified polyethylene glycol/LM/boron nitride PCM, capable of dual-mode thermal managing the LIBs through photothermal effect and passive thermal conduction. Its geometrical conformation and thermal pathways fabricated through ice-template strategy are conformable to the LIB's structure and heat-conduction characteristic. Typically, soft and deformable LMs are modified on the boron nitride surface, serving as thermal bridges to reduce the contact thermal resistance among adjacent fillers to realize high thermal conductivity of 8.8 and 7.6 W m K in the vertical and in-plane directions, respectively. In addition, LM with excellent photothermal performance provides the PCM with efficient battery heating capability if employing a controllable lighting system. As a proof-of-concept, this PCM is manifested to heat battery to an appropriate temperature range in a cold environment and lower the working temperature of the LIBs by more than 10 °C at high charging/discharging rate, opening opportunities for LIBs with durable working performance and evitable risk of thermal runaway.
相变材料(PCM)有望根据实时热条件实现对锂离子电池(LIB)的加热和冷却双模式热管理,确保LIB在寒冷和炎热环境中均能可靠运行。在此,我们报道了一种液态金属(LM)改性的聚乙二醇/LM/氮化硼PCM,它能够通过光热效应和被动热传导对LIB进行双模式热管理。通过冰模板策略制造的其几何构型和热传导路径与LIB的结构和热传导特性相契合。具体而言,柔软且可变形的LMs被改性在氮化硼表面,充当热桥以降低相邻填料之间的接触热阻,从而分别在垂直方向和面内方向实现8.8和7.6 W m⁻¹ K⁻¹的高导热率。此外,如果采用可控照明系统,具有优异光热性能的LM可为PCM提供高效的电池加热能力。作为概念验证,这种PCM在寒冷环境中能将电池加热到合适的温度范围,并在高充电/放电速率下使LIB的工作温度降低超过10°C,为具有持久工作性能和避免热失控风险的LIB开辟了机会。