Exploration of the magnetocaloric effect in SrRuO3 and BiFeO3/SrRuO3 films via vacancy and interface design
Abstract
Harnessing additional degrees of freedom in magnetic oxides offers new strategies for energy-efficient cooling. Here, we report the magnetocaloric effect (MCE) in Ru-deficient SrRuO3 thin films and BiFeO3/SrRuO3 heterostructures. Controlled Ru vacancies introduce dual ferromagnetic transitions (TC1 and TC2), giving rise to multiple entropy-change peaks in ΔS(T). Compared to bulk SrRuO3 (ΔSmax = 77 mJ kg−1 K at TC = 160 K), our films exhibit tunable Curie temperatures (71–138 K), broadened transitions, and enhanced entropy changes up to 101 mJ kg−1 K−1 at 1 kOe. X-ray photoelectron spectroscopy indicates Ru4+ valence with vacancies, while density functional theory reveals that Ru vacancies induce gap states and enhance magnetization at ∼12.5%, strengthening the MCE and stabilizing a local AFM environment near 25% vacancy concentration. In BiFeO3/SrRuO3 heterostructures, interfacial coupling preserves the intrinsic SRO response while introducing an inverse MCE near the BiFeO3 Néel temperature (TN ≈ 50 K) with ΔSmax enhancing another 50% to 154 mJ kg−1 K−1 and coercivity enhanced to ∼1.7 kOe. These results establish vacancy engineering and interfacial design as powerful approaches for tunable, low-field MCE in oxide heterostructures.

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