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Updated: Sep 22, 2026

Experimental Methods for Investigation of Shape Memory Based Elastocaloric Cooling Processes and Model Validation
Published on: May 2, 2016
Tailoring high-field energy storage and dual-mode electrocaloric response in relaxor ferroelectric thin film
Charanjeet Singh1,2, Priya Choudhary1,2, M Asif1,2
1CSIR-National Physical Laboratory, Dr K. S. Krishnan Marg New Delhi-110012 India ashok553.nplindia@csir.res.in.
Abstract:
Ferroelectric and antiferroelectric thin and thick films with strong electrocaloric (EC) responses are attractive for solid-state cooling. In this study, 0.75PbMg1/3Nb2/3O3-0.25PbTiO3 (PMN-25PT) relaxor ferroelectric thin films deposited on LSAT substrates by pulsed laser deposition exhibit a giant negative EC effect near 150 °C, with a maximum temperature change of -38.3 K and an entropy change of -29.4 J kg-1 K-1. A large positive EC effect is also observed near 120 °C, yielding ΔT = 33.4 K and ΔS = 27.5 J kg-1 K-1, comparable to the best reported values. The films show nanoscale columnar grains that promote polar nanoregions, leading to high polarization, large dielectric breakdown strength, and a diffuse, frequency-dependent dielectric response. Polarization-electric field loops measured from 30 °C to 190 °C reveal the excellent thermal stability of energy storage, which remains robust after 108 charge-discharge cycles. Moreover, the films demonstrate efficient harvesting of low-grade waste heat, achieving an energy conversion density of ∼18.7 J cm-3 per cycle over 0-2.5 MV cm-1 and a wide temperature range of 30-140 °C, as evaluated using pyroelectric Olsen cycles. These results highlight PMN-25PT thin films as promising candidates for advanced energy storage and electrocaloric cooling applications.
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