High-temperature insulating ferromagnetic state in charge-disproportionated and spin-state-disproportionated strained SrCoO2.5 thin film

Author:

Chowdhury Sourav12ORCID,Jana Anupam134,Rawat Ritu15ORCID,Yadav Priyanka1ORCID,Islam Rajibul6ORCID,Xue Fei6ORCID,Mandal A. K.17ORCID,Sarkar Sumit1ORCID,Mishra Rajan1ORCID,Venkatesh R.1ORCID,Phase D. M.1ORCID,Choudhary R. J.1ORCID

Affiliation:

1. UGC-DAE Consortium for Scientific Research, University Campus 1 , Khandwa Road, Indore, Madhya Pradesh 452001, India

2. Deutsches Elektronen-Synchrotron DESY 2 , Notkestrabe 85, 22607 Hamburg, Germany

3. CNR-IOM, TASC Laboratory in Area Science Park 3 , 34139 Trieste, Italy and , I-34151 Trieste, Italy

4. International Centre for Theoretical Physics (ICTP) 3 , 34139 Trieste, Italy and , I-34151 Trieste, Italy

5. Department of Mathematics and Physics “Ennio de Giorgi” University of Salento 4 , Via Per Arnesano, 72100 Lecce, Italy

6. Department of Physics, University of Alabama at Birmingham 5 , Birmingham, Alabama 35294, USA

7. Indian Institute of Science 6 , CV Raman Rd, Bengaluru, Karnataka 560012, India

Abstract

Ferromagnetic insulators (FMIs) have widespread applications in microwave devices, magnetic tunneling junctions, and dissipationless electronic and quantum-spintronic devices. However, the sparsity of the available high-temperature FMIs has led to the quest for a robust and controllable insulating ferromagnetic state. Here, we present compelling evidence of modulation of the magnetic ground state in a SrCoO2.5 (SCO) thin film via strain engineering. The SCO system is an antiferromagnetic insulator with a Neel temperature, TN, of ∼550 K. Applying in-plane compressive strain, the SCO thin film reveals an insulating ferromagnetic state with an extraordinarily high Curie temperature, TC, of ∼750 K. The emerged ferromagnetic state is associated with charge-disproportionation (CD) and spin-state-disproportionation (SSD), involving high-spin Co2+ and low-spin Co4+ ions. The density functional theory calculation also produces an insulating ferromagnetic state in the strained SCO system, consistent with the CD and SSD, which is associated with the structural ordering in the system. Transpiring the insulating ferromagnetic state through modulating the electronic correlation parameters via strain engineering in the SCO thin film will have a significant impact in large areas of modern electronic and spintronic applications.

Funder

DST-SERB

National Science Foundation

Publisher

AIP Publishing

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