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Giant inverse elastocaloric effect of -alkanes imbedded in a carbon-frame for room temperature thermal management.

作者信息

Li Fangbiao, Xu Xiong, Zhai Guangwei, Niu Chang, Li Min, Wang Hui

机构信息

School of Physics, Hunan Key Laboratory of Super Microstructure and Ultrafast Process, Hunan Key Laboratory of Nanophotonics and Devices, State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, China.

出版信息

Nanoscale. 2025 Feb 27;17(9):5363-5374. doi: 10.1039/d4nr04666h.

Abstract

Solid-state refrigeration technology, which utilizes phase transition materials responsive to an external field through which heat is exchanged with the environment, serves as a promising alternative to traditional vapor-compression refrigeration technologies. However, many existing solid-state refrigeration materials are limited by low latent heat, large external driving forces, high thermal hysteresis, or low thermal conductivity, limiting practical applications. In this work, through molecular dynamics simulations and thermodynamic analysis, we predict giant inverse elastocaloric effects in the composited alkane and carbon nanotube/graphene architectures. At near room temperature under a moderate compressive stress of ∼75 MPa, the estimated adiabatic temperature change (Δ) and isothermal entropy change (Δ) reach ∼23 K and 200 J kg K, respectively, demonstrating an excellent elastocaloric performance and efficiency. The refrigeration efficiency (Δ/Δ) and thermal conductivity () are significantly improved by one order of magnitude, reaching ∼500 K GPa and ∼12 W m K, respectively. Moreover, the application of compressive strain is able to bear the giant reversible elastocaloric effect, achieving cooling and heating with minimal hysteresis effects and no mechanical fatigue. The present work provides atomic-scale insights and important guidance for the design of -alkanes as the prototypical amorphous polymers with eCE for room temperature solid-state refrigeration.

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