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A scaling law for distinct electrocaloric cooling performance in low-dimensional organic, relaxor and anti-ferroelectrics
Shi, Yuping1,2,3; Huang, Limin2; Soh, Ai Kah3; Weng, George J.4; Liu, Shuangyi5; Redfern, Simon A. T.6,7
2017-09-11
摘要Electrocaloric (EC) materials show promise in eco-friendly solid-state refrigeration and integrable on-chip thermal management. While direct measurement of EC thin-films still remains challenging, a generic theoretical framework for quantifying the cooling properties of rich EC materials including normal-, relaxor-, organic-and anti-ferroelectrics is imperative for exploiting new flexible and roomtemperature cooling alternatives. Here, we present a versatile theory that combines Master equation with Maxwell relations and analytically relates the macroscopic cooling responses in EC materials with the intrinsic diffuseness of phase transitions and correlation characteristics. Under increased electric fields, both EC entropy and adiabatic temperature changes increase quadratically initially, followed by further linear growth and eventual gradual saturation. The upper bound of entropy change (Delta S-max) is limited by distinct correlation volumes (V-cr) and transition diffuseness. The linearity between V-cr and the transition diffuseness is emphasized, while Delta S-max = 300 kJ/(K.m(3)) is obtained for Pb0.8Ba0.2ZrO3. The Delta S-max in antiferroelectric Pb0.95Zr0.05TiO3, Pb0.8Ba0.2ZrO3 and polymeric ferroelectrics scales proportionally with V-cr(-2.2), owing to the one-dimensional structural constraint on lattice-scale depolarization dynamics; whereas Delta S-max in relaxor and normal ferroelectrics scales as Delta S-max similar to V-cr(-0.37), which tallies with a dipolar interaction exponent of 2/3 in EC materials and the well-proven fractional dimensionality of 2.5 for ferroelectric domain walls.
DOI10.1038/s41598-017-11633-y
发表期刊SCIENTIFIC REPORTS
ISSN2045-2322
卷号7页码:9
通讯作者Huang, LM (reprint author), South Univ Sci & Technol China, Dept Chem, Shenzhen 518055, Peoples R China.
收录类别SCI
WOS记录号WOS:000410063400040
语种英语