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Phonon-photon synergy in phase change materials through nano-engineered carbon materials for multifunctional applications
  • Mohan, Man ;
  • Manjunath, Vishesh ;
  • Mehdi, Syed Muhammad Zain ;
  • Soni, Sourabh Kumar ;
  • Dewangan, Sheetal Kumar ;
  • Lee, Hansung ;
  • Awasthi, Abhishek ;
  • Sharma, Vinod Kumar ;
  • Sharma, Abhishek ;
  • Song, Eunhyo ;
  • Lee, Naesung ;
  • Heo, Jaeyeong ;
  • Lee, Kwan ;
  • Ahn, Byungmin
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Publication Year
2025-03-01
Journal
Energy Storage Materials
Publisher
Elsevier B.V.
Citation
Energy Storage Materials, Vol.76
Keyword
Carbon materialMultifunctionalPhonon scatteringPhotothermalThermal conductivity
Mesh Keyword
Carbon materialIn-phaseMaterials technologyMultifunctionalsPerformancePhase ChangePhoto-thermalPhotothermal conversion efficienciesPropertyThermal
All Science Classification Codes (ASJC)
Renewable Energy, Sustainability and the EnvironmentMaterials Science (all)Energy Engineering and Power Technology
Abstract
In the development of multifunctional phase change materials (PCMs), thermal conductivity, and photothermal conversion efficiency are particularly important factors affecting their performance. This paper thus reviews the thermophysical properties and synthesis of PCM composites, with a particular focus on the superiority of nano-engineered carbon materials (NeCMs) as a means to enhance PCM functionality. Techniques used to synthesize 0D, 1D, 2D, and 3D NeCMs and the atomic-level properties that influence their performance are described in relation to their dimensionality. The interactions that occur between NeCMs and PCMs, which are critical for multifunctionality of PCM composites, are also discussed. As a core objective, this review examines how the synthesis approaches for PCM-NeCM composites and their resulting morphological characteristics influence their thermal conductivity and photothermal efficiency. Phonon manipulation, localized heating, localized surface plasmon resonance, and interfacial thermal resistance (ITR) are identified as the key mechanisms that enhance thermal conduction and photothermal conversion of PCMs with the integration of NeCMs. Recent advancements are also highlighted to demonstrate the potential of these composites to optimize PCM technology for high-efficiency, multifunctional applications. This review ends by outlining the limitations and challenges associated with PCM, thus providing a framework for future advancements in PCM technology.
ISSN
2405-8297
Language
eng
URI
https://aurora.ajou.ac.kr/handle/2018.oak/38618
https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85218906693&origin=inward
DOI
https://doi.org/10.1016/j.ensm.2025.104142
Journal URL
https://www.sciencedirect.com/science/journal/24058297
Type
Review
Funding
This research was supported by Basic Science Research Program through the National Research Foundation of Korea (NRF) funded by the Ministry of Education (RS-2023\u201300249523). Dr. V. Manjunath and Prof. J. Heo acknowledge the support of the National Research Foundation of Korea (NRF) (NRF-2018R1A6A1A03024334, 2022R1A2C2006532) for this work. Dr. S. M. Z. Mehdi and Prof. N. Lee acknowledge the support of the Basic Science Research Program through the National Research Foundation of Korea (NRF) funded by the Ministry of Education (NRF-2020R1A6A1A03043435 and NRF- 2021R1A2C1008798) for this work. The authors acknowledge the use of artificial intelligence tools for the creation of certain visual representations included in this article. These AI-generated images were developed to enhance the clarity and understanding of the concepts presented. The authors recognize the potential of AI technologies in supporting scientific visualization and remain committed to ensuring transparency and accuracy in their use.
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Ahn, Byungmin 안병민
Department of Materials Science Engineering
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