Author Identifier (ORCID)

Barun K. Das’s ORCID record ORCID Logo

Abstract

Phase change materials (PCM) have limited practical applications due to their low heat conductivity. The main goal of this work is to improve the thermophysical properties of PCM by adding different compositions of hybrid carbon and metal oxide-based nanoparticles for incorporation into hybrid photovoltaic/thermal solar systems to accommodate the built environment and thermal energy storage as a building envelope for thermal comfort. Three types of nanoparticles have been selected including Graphene, Al2O3, and ZnO and synthesized samples with the combinations of 0.5 wt% Al2O3 + 2 wt% ZnO, 0.75 wt% Al2O3 + 2 wt% ZnO, 1 wt% Al2O3 + 2 wt% ZnO, 3 wt% Graphene + 2 wt% ZnO, and 3 wt% Graphene + 1 wt% Al2O3respectively. All the synthesized hybrid nano-PCM (HNPCM) samples were characterized by utilizing SEM and EDX, FTIR, TGA, thermal conductivity, DSC, and thermal images to study the microstructural features, chemical bonding, thermal stability, latent heat of fusion/solidification, and peak melting/solidification temperature of the samples. The key outcomes reveal that the uniform dispersion of hybrid nanoparticles and the best chemical and thermal stability were obtained in the case of HNPCM-5 (3 wt% Graphene + 1 wt% Al2O3). 480%, 430%, 405%, 230%, and 60% enhancement in thermal conductivity, and the optimum values of latent heat of fusion of 145.35, 149.18, 150.37, 147.87, and 145.83 J/g were achieved for the samples of HNPCM-5, HNPCM-2, HNPCM-1, HNPCM-3, and HNPCM-4, respectively in comparison of pure PCM. Finally, the enhancement of specific heat capacity, thermal conductivity, and the reduction of supercooling indicate that the sample HNPCM-5 (3 wt% Graphene + 1 wt% Al2O3) can be effectively employed in thermal management applications. As the composite prepared was thermally stable till 250 °C, hence may be utilized for solar thermal and low concentrated photovoltaic applications but not limited to these.

Keywords

hybrid nano-PCM, latent heat, specific heat capacity, thermal conductivity, thermal energy storage

Document Type

Journal Article

Date of Publication

12-1-2026

Article Number

100580

E-ISSN

29498295

Volume

10

Publication Title

Next Nanotechnology

Publisher

Elsevier

School

School of Engineering

Creative Commons License

Creative Commons Attribution 4.0 License
This work is licensed under a Creative Commons Attribution 4.0 License.

Recommended Citation

Paul, U. K., Mohtasim, M. S., Kibria, M. G., & Das, B. K. (2026). Thermophysical characteristics evaluation of carbon and metal oxide-based hybrid phase change materials for thermal energy storage applications. Next Nanotechnology, 10, Article 100580.

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Link to publisher version (DOI)

10.1016/j.nxnano.2026.100580