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Co-appearance of superconductivity and ferromagnetism in a Ca2RuO4 nanofilm crystal.


ABSTRACT: By tuning the physical and chemical pressures of layered perovskite materials we can realize the quantum states of both superconductors and insulators. By reducing the thickness of a layered crystal to a nanometer level, a nanofilm crystal can provide novel quantum states that have not previously been found in bulk crystals. Here we report the realization of high-temperature superconductivity in Ca2RuO4 nanofilm single crystals. Ca2RuO4 thin film with the highest transition temperature Tc (midpoint) of 64 K exhibits zero resistance in electric transport measurements. The superconducting critical current exhibited a logarithmic dependence on temperature and was enhanced by an external magnetic field. Magnetic measurements revealed a ferromagnetic transition at 180 K and diamagnetic magnetization due to superconductivity. Our results suggest the co-appearance of superconductivity and ferromagnetism in Ca2RuO4 nanofilm crystals. We also found that the induced bias current and the tuned film thickness caused a superconductor-insulator transition. The fabrication of micro-nanocrystals made of layered material enables us to discuss rich superconducting phenomena in ruthenates.

SUBMITTER: Nobukane H 

PROVIDER: S-EPMC7044234 | biostudies-literature | 2020 Feb

REPOSITORIES: biostudies-literature

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Co-appearance of superconductivity and ferromagnetism in a Ca<sub>2</sub>RuO<sub>4</sub> nanofilm crystal.

Nobukane Hiroyoshi H   Yanagihara Kosei K   Kunisada Yuji Y   Ogasawara Yunito Y   Isono Kakeru K   Nomura Kazushige K   Tanahashi Keita K   Nomura Takahiro T   Akiyama Tomohiro T   Tanda Satoshi S  

Scientific reports 20200226 1


By tuning the physical and chemical pressures of layered perovskite materials we can realize the quantum states of both superconductors and insulators. By reducing the thickness of a layered crystal to a nanometer level, a nanofilm crystal can provide novel quantum states that have not previously been found in bulk crystals. Here we report the realization of high-temperature superconductivity in Ca<sub>2</sub>RuO<sub>4</sub> nanofilm single crystals. Ca<sub>2</sub>RuO<sub>4</sub> thin film with  ...[more]

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