Muscle‐Inspired Formable Wood‐Based Phase Change Materials

Author:

Liu Yifan1,Lv Zhisheng2,Zhou Jiazuo1,Cui Zequn3,Li Wenlong2,Yu Jing4,Chen Lixun3,Wang Xin1,Wang Meng5,Liu Kunyang1,Wang Hui1,Ji Xinyao1,Hu Senwei1,Li Jian1,Loh Xian Jun2,Yang Haiyue1,Chen Xiaodong34ORCID,Wang Chengyu1

Affiliation:

1. Key Laboratory of Bio‐Based Material Science and Technology of Ministry of Education Northeast Forestry University Harbin 150040 P. R. China

2. Institute of Materials Research and Engineering (IMRE) Agency for Science, Technology and Research (A*STAR) 2 Fusionopolis Way, Innovis, #08‐03 Singapore 138634 Singapore

3. Innovative Centre for Flexible Devices (iFLEX) Max Planck‐NTU Joint Lab for Artificial Senses School of Materials Science and Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798 Singapore

4. Institute for Digital Molecular Analytics and Science (IDMxS) Nanyang Technological University 59 Nanyang Drive Singapore 636921 Singapore

5. State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150040 P. R. China

Abstract

AbstractPhase 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.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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