期刊论文详细信息
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES 卷:216
Mechanical control of electrocaloric response in epitaxial ferroelectric thin films
Article
Shan, D. L.1  Lei, C. H.2  Cai, Y. C.1  Pan, K.1  Liu, Y. Y.1 
[1] Xiangtan Univ, Sch Mat Sci & Engn, Key Lab Low Dimens Mat & Applicat Technol, Minist Educ, Xiangtan 411105, Hunan, Peoples R China
[2] St Louis Univ, Dept Aerosp & Mech Engn, St Louis, MO 63103 USA
关键词: Misfit strain;    Stress;    Mechanical control;    Electrocaloric effect;    Ferroelectric thin films;   
DOI  :  10.1016/j.ijsolstr.2021.01.020
来源: Elsevier
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【 摘 要 】

The electrocaloric (EC) effect in dielectrics has shown great potential in the next-generation solid-state refrigeration; however, most dielectrics cannot satisfy the requirement for refrigeration at various temperatures. How to control large EC response to various temperatures is a critical problem for practical cooling applications. In this work, based on entropy analysis, a nonlinear thermodynamic approach considering mechanical loading has been generalized to demonstrate mechanical control of EC response in epitaxial ferroelectric BaxSr1-xTiO3 (BST) thin films. The effects of chemical composition x, in-plane misfit strain u(m), and out-of-plane external uniaxial stress sigma(3) on the phase diagrams, phase transition temperatures, and EC response of BST thin films have been studied. The results reveal that a large EC temperature change Delta T appears in the vicinity of c-PE and r-aa phase boundaries, because the polarization component P-3 becomes zero across both phase boundaries, leading to a large change of order in dipoles. It is found that the phase structures and the transition temperatures are sensitive to misfit strain and stress. Large EC response in BST thin films can be controlled and shifted to various temperatures over a wide temperature range for practical applications. It also indicates that the peak of Delta T can be shifted to higher temperature under in-plane compressive strain u(m), while it is shifted to lower temperature under tensile strain u(m) or compressive stress sigma(3). Furthermore, the optimal combination of misfit strain and stress for the EC temperature change are identified, which further enhances EC response. These insights offer an alternative pathway to control and implement EC refrigeration over a wide range of temperature. (C) 2021 Elsevier Ltd. All rights reserved.

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