Energy Density Recovery by Enhanced Hydrogen Bonding for High‐Performance Composite Phase Change Materials

J Jia Liu Z Zi‐Rui Li (Hefei National Research Center for Physical Sciences at the Microscale Department of Chemistry University of Science and Technology of China Hefei China) B Biao Feng S Shu‐Shan Hu (Institute of Thermal Science and Power Systems School of Energy Engineering Zhejiang University Hangzhou People's Republic of China) Y Yue‐Fei Wu (State Key Laboratory of Clean Energy Utilization Zhejiang University Hangzhou People's Republic of China) Y Yang‐Yan Lai (State Key Laboratory of Clean Energy Utilization Zhejiang University Hangzhou People's Republic of China) G Guang‐Bo Liu (State Key Laboratory of Clean Energy Utilization Zhejiang University Hangzhou People's Republic of China) S Sheng Yang (Key Laboratory of Chemical Biology & Traditional Chinese Medicine Research, Ministry of Education, Institute of Interdisciplinary Studies, College of Chemistry and Chemical Engineering) T Tao‐Cheng Yu (ZJU‐UIUC Institute Zhejiang University Haining Zhejiang People's Republic of China) W Wee‐Liat Ong (ZJU‐UIUC Institute College of Energy Engineering Zhejiang University Jiaxing Zhejiang P. R. China) Y Yi Zeng L Li‐Wu Fan (State Key Laboratory of Clean Energy Utilization Zhejiang University Hangzhou People's Republic of China)

Abstract

ABSTRACT Phase change materials (PCMs) for thermal energy storage require both high latent heat and high thermal conductivity, which is almost infeasible because the energy‐dense materials are usually poor heat conductors, and increasing their thermal conductivity by making composites inevitably leads to a sacrifice in latent heat. Here, we propose a strategy for recovering the unavoidable loss of energy density of a composite PCM by strengthening the molecular connections between the fillers and matrix PCM. Taking erythritol (a polyol rich in hydroxyl groups) as an example, we use hydroxyl‐modified nanofillers to reconstruct the filler‐to‐PCM intermolecular hydrogen bonds. Compared to unmodified graphene, we observe a remarkable recovery in the latent heat of erythritol using hydroxylated graphene, and verify the extension of this strategy to acids and hydrated salts. We show an almost full recovery of the energy density loss for composite erythritol at 1 wt.% loading, reaching an ultrahigh latent heat of fusion (328.5±0.9 J g −1 ). Using molecular simulations, we confirm the formation of strong hydrogen bonds between the model PCM molecules and hydroxylated graphene. Our strategy enables the development of polyol‐based composite PCMs, which can be generalized to other matrix PCMs, toward more balanced performance in high energy density and power density.

Article Details

Volume / Issue Vol. 38, Issue 10
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

J

Jia Liu

Z

Zi‐Rui Li

Hefei National Research Center for Physical Sciences at the Microscale Department of Chemistry University of Science and Technology of China Hefei China

B

Biao Feng

S

Shu‐Shan Hu

Institute of Thermal Science and Power Systems School of Energy Engineering Zhejiang University Hangzhou People's Republic of China

Y

Yue‐Fei Wu

State Key Laboratory of Clean Energy Utilization Zhejiang University Hangzhou People's Republic of China

Y

Yang‐Yan Lai

State Key Laboratory of Clean Energy Utilization Zhejiang University Hangzhou People's Republic of China

G

Guang‐Bo Liu

State Key Laboratory of Clean Energy Utilization Zhejiang University Hangzhou People's Republic of China

S

Sheng Yang

Key Laboratory of Chemical Biology & Traditional Chinese Medicine Research, Ministry of Education, Institute of Interdisciplinary Studies, College of Chemistry and Chemical Engineering

T

Tao‐Cheng Yu

ZJU‐UIUC Institute Zhejiang University Haining Zhejiang People's Republic of China

W

Wee‐Liat Ong

ZJU‐UIUC Institute College of Energy Engineering Zhejiang University Jiaxing Zhejiang P. R. China

Y

Yi Zeng

L

Li‐Wu Fan

State Key Laboratory of Clean Energy Utilization Zhejiang University Hangzhou People's Republic of China