Dual-strategy-encapsulated phase change materials with thermal immune functions for efficient energy storage and all-climate battery thermal management

Gang Zhou, Ling Li, Seul Yi Lee, Fei Zhang, Junwen Xie, Bin Ye, Wenhui Geng, Kuikui Xiao, Jong Hoon Lee, Soo Jin Park, Zhi Yang, Chengzhe Huang, Yinhang Zhang

Research output: Contribution to journalArticlepeer-review

63 Scopus citations

Abstract

The utilization of phase-change materials (PCMs) has garnered great interest in purposes of energy storage and thermal management due to its lightweight, high-energy efficiency, and cost-competitiveness. However, the intrinsic limitations of low thermal conductivity and leakage in PCMs impede their usage in high-power-density energy harvesting applications. Here, we designed multifunctional phase-change composites (PCCs) via a dual-encapsulation strategy to realize all-climate thermal managements for lithium-ion batteries. For PCMs, polyethylene glycol was interpenetrated into porous polyurethane network (PEG@PU) to enclose a considerable amount of PEG. Then, the PCMs were infiltrated into the highly oriented graphite frameworks (HOGF). A series of processes enabled to form multi-layered structures as well as alleviate the leakage issue of PEG, and thereby improving the thermal storage ability. The so-obtained PCCs exhibited excellent electrothermal properties (134.9 °C at 1.8 V) and high electromagnetic interference performances (larger than 90 dB). These findings presented that the thermal managements of PCCs can be utilized as active preheating or passive cooling system in a battery thermal management system for the all-climate demands.

Original languageEnglish
Article number110256
JournalComposites Science and Technology
Volume243
DOIs
StatePublished - 20 Oct 2023

Bibliographical note

Publisher Copyright:
© 2023 Elsevier Ltd

Keywords

  • Electrical conductivity
  • Electromagnetic interference
  • Phase change material
  • Thermal conductivity
  • Thermal management

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