Cite this article:
Kexuan Zhang, Lili Qu, Feng Jin, Guanyin Gao, Enda Hua, Zixun Zhang, Lingfei Wang, Wenbin Wu. Extended phase diagram of La1-xCaxMnO3 by interfacial engineeringJ. Chin. Phys. B, 2021, 30(12): 126802.
| Kexuan Zhang, Lili Qu, Feng Jin, Guanyin Gao, Enda Hua, Zixun Zhang, Lingfei Wang, Wenbin Wu. Extended phase diagram of La1-xCaxMnO3 by interfacial engineeringJ. Chin. Phys. B, 2021, 30(12): 126802. |
Extended phase diagram of La1-xCaxMnO3 by interfacial engineering
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Abstract
The interfacial enhanced ferromagnetism in maganite/ruthenate system is regarded as a promising path to broaden the potential of oxide-based electronic device applications. Here, we systematically studied the physical properties of LaLa1-xCaxMnO3/SrRuO3 superlattices and compared them with the LaLa1-xCaxMnO3 thin films and bulk compounds. The LaLa1-xCaxMnO3/SrRuO3 superlattices exhibit significant enhancement of Curie temperature (TC) beyond the corresponding thin films and bulks. Based on these results, we constructed an extended phase diagram of LaLa1-xCaxMnO3 under interfacial engineering. We considered the interfacial charge transfer and structural proximity effects as the origin of the interface-induced high TC. The structural characterizations revealed a pronounced increase of B-O-B bond angle, which could be the main driving force for the high TC in the superlattices. Our work inspires a deeper understanding of the collective effects of interfacial charge transfer and structural proximity on the physical properties of oxide heterostructures. -
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