Colossal Reversible Barocaloric Effects in a Plastic Crystal Mediated by Lattice Vibrations and Ion Diffusion

Author:

Zeng Ming1,Escorihuela‐Sayalero Carlos1,Ikeshoji Tamio2,Takagi Shigeyuki3,Kim Sangryun4,Orimo Shin‐ichi35,Barrio María1,Tamarit Josep‐Lluís1,Lloveras Pol1,Cazorla Claudio1ORCID,Sau Kartik25

Affiliation:

1. Grup de Caracterizació de Materials, Departament de Física EEBE and Barcelona Research Center in Multiscale Science and Engineering Universitat Politècnica de Catalunya Av. Eduard Maristany 10‐14 Barcelona 08019 Catalonia Spain

2. Mathematics for Advanced Materials Open Innovation Laboratory (MathAM‐OIL) National Institute of Advanced Industrial Science and Technology (AIST) c/o Advanced Institute for Materials Research (AIMR), Tohoku University Sendai 980‐8577 Japan

3. Institute for Materials Research (IMR) Tohoku University Sendai 980‐8577 Japan

4. Graduate School of Energy Convergence Gwangju Institute of Science and Technology (GIST) 123 Cheomdangwagi‐ro, Buk‐gu Gwangju 61005 Republic of Korea

5. Advanced Institute for Materials Research (AIMR) Tohoku University Sendai 980‐8577 Japan

Abstract

AbstractSolid‐state methods for cooling and heating promise a sustainable alternative to current compression cycles of greenhouse gases and inefficient fuel‐burning heaters. Barocaloric effects (BCE) driven by hydrostatic pressure (p) are especially encouraging in terms of large adiabatic temperature changes (|ΔT| ≈ 10 K) and isothermal entropy changes (|ΔS| ≈ 100 J K−1 kg−1). However, BCE typically require large pressure shifts due to irreversibility issues, and sizeable |ΔT| and |ΔS| seldom are realized in a same material. Here, the existence of colossal and reversible BCE in LiCB11H12 is demonstrated near its order‐disorder phase transition at ≈380 K. Specifically, for Δp ≈ 0.23 (0.10) GPa, |ΔSrev| = 280 (200) J K−1 kg−1 and |ΔTrev| = 32 (10) K are measured, which individually rival with state‐of‐the‐art BCE figures. Furthermore, pressure shifts of the order of 0.1 GPa yield huge reversible barocaloric strengths of ≈2 J K−1 kg−1 MPa−1. Molecular dynamics simulations are performed to quantify the role of lattice vibrations, molecular reorientations, and ion diffusion on the disclosed BCE. Interestingly, lattice vibrations are found to contribute the most to |ΔS| while the diffusion of lithium ions, despite adding up only slightly to the entropy change, is crucial in enabling the molecular order–disorder phase transition.

Funder

Japan Society for the Promotion of Science

Ministerio de Asuntos Económicos y Transformación Digital, Gobierno de España

Deutsche Gesellschaft für Urologie

China Scholarship Council

Publisher

Wiley

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