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Challenges and strategies for imidazolium ionic liquids as novel phase change materials for low and medium temperature thermal energy storage: A critical review

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Challenges and strategies for imidazolium ionic liquids as novel phase change materials for low and medium temperature thermal energy storage: A critical review. / Li, Q.; Yang, C.; Wang, S. et al.
In: Journal of Molecular Liquids, Vol. 395, 123812, 01.02.2024.

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Li Q, Yang C, Wang S, Zhou M, Xie H, Qiao G et al. Challenges and strategies for imidazolium ionic liquids as novel phase change materials for low and medium temperature thermal energy storage: A critical review. Journal of Molecular Liquids. 2024 Feb 1;395:123812. Epub 2024 Jan 9. doi: 10.1016/j.molliq.2023.123812

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@article{b0f7c988d36d4b8f8c17fdbf08257f9a,
title = "Challenges and strategies for imidazolium ionic liquids as novel phase change materials for low and medium temperature thermal energy storage: A critical review",
abstract = "This review aims to provide an insight into the imidazolium ionic liquids (ILs) as novel phase change materials (PCMs) for low and medium temperature thermal energy storage, with a focus on their multi-dimensional thermophysical/nucleation features within encapsulation for defect regulation during solid–liquid transition. Imidazolium ILs have been emerging as novel phase transition-based energy storage material due to unique properties of wide liquidous range, rich crystallization behavior, small thermal volumetric expansion and environmental-friendly properties, but suffer from defects of low enthalpy and large supercooling. To meet the challenge acting as PCMs, the work first gave a brief overview on supercooling regulation and enthalpy elevation of imidazolium ILs, and proposed micro-encapsulation with crystallization-promoting porous shell to regulate their defects. Then discussion regarding multi-dimensional thermophysical features of imidazolium ILs were given, including features within micro-confined capsule core (phase transition, melting point, thermal stability, specific heat capacity and thermal conductivity), nano-confined nucleation within the mesoporous shell, and mesoporous interfacial nucleation. Finally, the future applications of imidazolium ILs and microencapsulation in the fields of infrared stealthy, solar thermal utilization, thermal management in extreme environment and green energy-saving building were highlighted. The study provides a timely review of the imidazolium ILs acting as thermal energy storage (TES) materials, and future suggestion like functional ILs with more hydrogen bonds or supercooling utilization for seasonal TES may help concentrate efforts on solving the key issues in urgent need.",
author = "Q. Li and C. Yang and S. Wang and M. Zhou and H. Xie and G. Qiao and Y. Du and C. Li and Y. Wu",
year = "2024",
month = feb,
day = "1",
doi = "10.1016/j.molliq.2023.123812",
language = "English",
volume = "395",
journal = "Journal of Molecular Liquids",
issn = "0167-7322",
publisher = "Elsevier Science B.V.",

}

RIS

TY - JOUR

T1 - Challenges and strategies for imidazolium ionic liquids as novel phase change materials for low and medium temperature thermal energy storage

T2 - A critical review

AU - Li, Q.

AU - Yang, C.

AU - Wang, S.

AU - Zhou, M.

AU - Xie, H.

AU - Qiao, G.

AU - Du, Y.

AU - Li, C.

AU - Wu, Y.

PY - 2024/2/1

Y1 - 2024/2/1

N2 - This review aims to provide an insight into the imidazolium ionic liquids (ILs) as novel phase change materials (PCMs) for low and medium temperature thermal energy storage, with a focus on their multi-dimensional thermophysical/nucleation features within encapsulation for defect regulation during solid–liquid transition. Imidazolium ILs have been emerging as novel phase transition-based energy storage material due to unique properties of wide liquidous range, rich crystallization behavior, small thermal volumetric expansion and environmental-friendly properties, but suffer from defects of low enthalpy and large supercooling. To meet the challenge acting as PCMs, the work first gave a brief overview on supercooling regulation and enthalpy elevation of imidazolium ILs, and proposed micro-encapsulation with crystallization-promoting porous shell to regulate their defects. Then discussion regarding multi-dimensional thermophysical features of imidazolium ILs were given, including features within micro-confined capsule core (phase transition, melting point, thermal stability, specific heat capacity and thermal conductivity), nano-confined nucleation within the mesoporous shell, and mesoporous interfacial nucleation. Finally, the future applications of imidazolium ILs and microencapsulation in the fields of infrared stealthy, solar thermal utilization, thermal management in extreme environment and green energy-saving building were highlighted. The study provides a timely review of the imidazolium ILs acting as thermal energy storage (TES) materials, and future suggestion like functional ILs with more hydrogen bonds or supercooling utilization for seasonal TES may help concentrate efforts on solving the key issues in urgent need.

AB - This review aims to provide an insight into the imidazolium ionic liquids (ILs) as novel phase change materials (PCMs) for low and medium temperature thermal energy storage, with a focus on their multi-dimensional thermophysical/nucleation features within encapsulation for defect regulation during solid–liquid transition. Imidazolium ILs have been emerging as novel phase transition-based energy storage material due to unique properties of wide liquidous range, rich crystallization behavior, small thermal volumetric expansion and environmental-friendly properties, but suffer from defects of low enthalpy and large supercooling. To meet the challenge acting as PCMs, the work first gave a brief overview on supercooling regulation and enthalpy elevation of imidazolium ILs, and proposed micro-encapsulation with crystallization-promoting porous shell to regulate their defects. Then discussion regarding multi-dimensional thermophysical features of imidazolium ILs were given, including features within micro-confined capsule core (phase transition, melting point, thermal stability, specific heat capacity and thermal conductivity), nano-confined nucleation within the mesoporous shell, and mesoporous interfacial nucleation. Finally, the future applications of imidazolium ILs and microencapsulation in the fields of infrared stealthy, solar thermal utilization, thermal management in extreme environment and green energy-saving building were highlighted. The study provides a timely review of the imidazolium ILs acting as thermal energy storage (TES) materials, and future suggestion like functional ILs with more hydrogen bonds or supercooling utilization for seasonal TES may help concentrate efforts on solving the key issues in urgent need.

U2 - 10.1016/j.molliq.2023.123812

DO - 10.1016/j.molliq.2023.123812

M3 - Journal article

VL - 395

JO - Journal of Molecular Liquids

JF - Journal of Molecular Liquids

SN - 0167-7322

M1 - 123812

ER -