Tuning magnetocaloric effect by optimizing thickness induced 3D strain state
Samir Kumar Giri, Wasim Akram, Manisha Bansal, and Tuhin Maity

TL;DR
This study demonstrates that optimizing the thickness of La0.8Ca0.2MnO3 thin films on different substrates can significantly enhance the magnetocaloric effect by controlling the induced 3D strain state, with potential applications in magnetic cooling devices.
Contribution
It reveals how film thickness and substrate-induced strain influence the magnetocaloric properties, enabling tuning of the effect for improved magnetic cooling performance.
Findings
Maximum entropy change of 12.1 J/Kg-K at 75 nm on STO substrate
Wider transition temperature region with 40 K FWHM on LAO substrate
Maximum Relative Cooling Power of 361 J/Kg at 75 nm thickness
Abstract
The effect of 3-dimensional strain state on the magnetocaloric properties of epitaxial La0.8Ca0.2MnO3 (LCMO) thin films grown on two types of substrates, SrTiO3 (001) (STO) and LaAlO3 (001) (LAO) has been studied as a function of film thickness within the range of 25 to 300 nm. The STO substrate imposes an in-plane tensile biaxial strain while LAO substrate imposes an in-plane compressive biaxial strain. The in-plane biaxial strain on LCMO by STO substrate gets relaxed more rapidly than that by LAO substrate but both LCMO/STO and LCMO/LAO show a maximum entropy change of 12.1 J/Kg-K and 3.2 J/Kg-K, respectively at a critical thickness of 75 nm (at 6 T applied magnetic field). LCMO/LAO is found to exhibit a wider transition temperature region with full width at half maxima (FWHM) 40 K of the dM/dT vs T curve compared to LCMO/STO with FWHM 33 K of that curve. This broadening of the…
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Taxonomy
TopicsMagnetic and transport properties of perovskites and related materials · Shape Memory Alloy Transformations · Ferroelectric and Piezoelectric Materials
