Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/180808
Title: Muscle-inspired formable wood-based phase change materials
Authors: Liu, Yifan
Lv, Zhisheng
Zhou, Jiazuo
Cui, Zequn
Li, Wenlong
Yu, Jing
Chen, Lixun
Wang, Xin
Wang, Meng
Liu, Kunyang
Wang, Hui
Ji, Xinyao
Hu, Senwei
Li, Jian
Loh, Xian Jun
Yang, Haiyue
Chen, Xiaodong
Wang, Chengyu
Keywords: Engineering
Issue Date: 2024
Source: Liu, Y., Lv, Z., Zhou, J., Cui, Z., Li, W., Yu, J., Chen, L., Wang, X., Wang, M., Liu, K., Wang, H., Ji, X., Hu, S., Li, J., Loh, X. J., Yang, H., Chen, X. & Wang, C. (2024). Muscle-inspired formable wood-based phase change materials. Advanced Materials, 36(39), e2406915-. https://dx.doi.org/10.1002/adma.202406915
Project: M23L8b0049 
Journal: Advanced Materials 
Abstract: Phase change materials (PCMs) are crucial for sustainable thermal management in energy-efficient construction and cold chain logistics, as they can store and release renewable thermal energy. However, traditional PCMs suffer from leakage and a loss of formability above their phase change temperatures, limiting their shape stability and versatility. Inspired by the muscle structure, formable PCMs with a hierarchical structure and solvent-responsive supramolecular networks based on polyvinyl alcohol (PVA)/wood composites are developed. The material, in its hydrated state, demonstrates low stiffness and pliability due to the weak hydrogen bonding between aligned wood fibers and PVA molecules. Through treatment of poly(ethylene glycol) (PEG) into the PVA/wood PEG gel (PEG/PVA/W) with strengthened hydrogen bonds, the resulting wood-based PCMs in the hard and melting states elevate the tensile stress from 10.14 to 80.86 MPa and the stiffness from 420 MPa to 4.8 GPa, making it 530 times stiffer than the PEG/PVA counterpart. Capable of morphing in response to solvent changes, these formable PCMs enable intricate designs for thermal management. Furthermore, supported by a comprehensive life cycle assessment, these shape-adaptable, recyclable, and biodegradable PCMs with lower environmental footprint present a sustainable alternative to conventional plastics and thermal management materials.
URI: https://hdl.handle.net/10356/180808
ISSN: 0935-9648
DOI: 10.1002/adma.202406915
Schools: School of Materials Science and Engineering 
Research Centres: Innovative Centre for Flexible Devices 
Max Planck-NTU Joint Lab for Artificial Senses
Institute for Digital Molecular Analytics and Science
Rights: © 2024 Wiley-VCH GmbH. All rights reserved. This article may be downloaded for personal use only. Any other use requires prior permission of the copyright holder. The Version of Record is available online at http://doi.org/10.1002/adma.202406915
Fulltext Permission: embargo_20250808
Fulltext Availability: With Fulltext
Appears in Collections:MSE Journal Articles

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  Until 2025-08-08
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