Molecular Regulation of Flexible Composite Solid-Solid Phase Change Materials with Controllable Isotropic Thermal Conductivity for Thermal Energy Storage

被引:14
作者
Tian, Chong [1 ]
Yang, Yunyun [2 ,3 ]
Liu, Qiang [1 ]
Bai, Yuting [1 ]
Zhao, Fuqi [1 ]
Huang, Lei [1 ]
Yang, Na [1 ]
Cai, Xufu [1 ]
Kong, Weibo [1 ]
机构
[1] Sichuan Univ, Coll Polymer Sci & Engn, State Key Lab Polymer Mat Engn, Chengdu 610065, Peoples R China
[2] Civil Aviat Flight Univ China, Coll Civil Aviat Safety Engn, Guanghan 618307, Peoples R China
[3] Civil Aviat Flight Univ China, Civil Aircraft Fire Sci & Safety Engn Key Lab Sich, Guanghan 618307, Peoples R China
基金
中国国家自然科学基金;
关键词
applications; pi-pi stacking; graphene; flexible; thermal conductivity; thermal conductivity efficient enhancement; solid-solid phase change materials; GRAPHENE; ACID;
D O I
10.1021/acsami.3c00169
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In recent years, graphene has been introduced into phase change materials (PCMs) to improve thermal conductivity to enhance the heat transfer efficiency in thermal energy storage. However, graphenes tend to aggregate in PCMs, leading to the low thermal conductivity efficient enhancement (TCEE), anisotropic thermal conductivity, and deterioration of mechanical performance of PCMs. In this work, we fabricated biomimetic thermally conductive solid- solid PCMs (SSPCMs) by facile blending of the graphene into well-designed polyurethane SSPCMs, in which the graphene established a controllable and highly efficient isotropic thermally conductive pathway based on the p-p stacking between the graphene and the polymer aromatic ring segment. The as-fabricated SSPCMs showed high TCEE (156.78%), excellent flexibility (328% elongation at break), high enthalpy value (>101 J/g), and solid-solid phase transition properties, under 2% loading of graphene. The proportion of in-plane to through-plane thermal conductivity can be adjusted by an elaborate design of the aromatic ring segment in polyurethane SSPCMs. We further demonstrated mechanical flexibility and photothermal property of the composites to reveal their potential in practical
引用
收藏
页码:13165 / 13175
页数:11
相关论文
共 52 条
  • [1] Phase change materials and carbon nanostructures for thermal energy storage: A literature review
    Amaral, C.
    Vicente, R.
    Marques, P. A. A. P.
    Barros-Timmons, A.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 79 : 1212 - 1228
  • [2] Flexible phase change materials with enhanced tensile strength, thermal conductivity and photo-thermal performance
    Cai, Zhuodi
    Liu, Jian
    Zhou, Yanxue
    Dai, Liling
    Wang, Huixin
    Liao, Chengcheng
    Zou, Xuelin
    Chen, Yanfeng
    Xu, Yongjun
    [J]. SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2021, 219
  • [3] Different dimensional nanoadditives for thermal conductivity enhancement of phase change materials: Fundamentals and applications
    Cheng, Piao
    Chen, Xiao
    Gao, Hongyi
    Zhang, Xiaowei
    Tang, Zhaodi
    Li, Ang
    Wang, Ge
    [J]. NANO ENERGY, 2021, 85
  • [4] RNA intrusions change DNA elastic properties and structure
    Chiu, Hsiang-Chih
    Koh, Kyung Duk
    Evich, Marina
    Lesiak, Annie L.
    Germann, Markus W.
    Bongiorno, Angelo
    Riedo, Elisa
    Storici, Francesca
    [J]. NANOSCALE, 2014, 6 (17) : 10009 - 10017
  • [5] Mechanism of Transcriptional Bursting in Bacteria
    Chong, Shasha
    Chen, Chongyi
    Ge, Hao
    Xie, X. Sunney
    [J]. CELL, 2014, 158 (02) : 314 - 326
  • [6] Benefits of PCM underfloor heating with PCM wallboards for space heating in winter
    Devaux, Paul
    Farid, Mohammed Mehdi
    [J]. APPLIED ENERGY, 2017, 191 : 593 - 602
  • [7] Novel Shape-Stabilized Phase Change Materials Based on Paraffin/EPDM@Graphene with High Thermal Conductivity and Low Leakage Rate
    Ding, Ze
    He, Fangfang
    Li, Yongsheng
    Jiang, Zhuoni
    Yan, Hongjian
    He, Ren
    Fan, Jinghui
    Zhang, Kai
    Yang, Wenbin
    [J]. ENERGY & FUELS, 2020, 34 (04) : 5024 - 5031
  • [8] Increased Thermal Conductivity of Eicosane-Based Composite Phase Change Materials in the Presence of Graphene Nanoplatelets
    Fang, Xin
    Fan, Li-Wu
    Ding, Qing
    Wang, Xiao
    Yao, Xiao-Li
    Hou, Jian-Feng
    Yu, Zi-Tao
    Cheng, Guan-Hua
    Hu, Ya-Cai
    Cen, Ke-Fa
    [J]. ENERGY & FUELS, 2013, 27 (07) : 4041 - 4047
  • [9] Quasi-monodispersed nanocapsules with form stability at high temperature and under shear force for thermal energy storage
    Feng, Li
    Zhang, Yinghao
    Zhou, He
    Kang, Yiyang
    Zhang, Shuohao
    Bao, Lixia
    Lei, Jingxin
    Bian, Longchun
    Wang, Jiliang
    [J]. CHEMICAL ENGINEERING JOURNAL, 2022, 428
  • [10] n-Dodecanol nanocapsules with supramolecular lock shell layer for thermal energy storage
    Feng, Li
    Dong, Shunping
    Zhou, He
    Yang, Lijun
    Yuan, Fen
    Yang, Yibin
    Lei, Jingxin
    Bao, Lixia
    Bian, Longchun
    Wang, Jiliang
    [J]. CHEMICAL ENGINEERING JOURNAL, 2020, 389