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Featured researches published by Daisuke Asami.


Scientific Reports | 2017

Control of structural transition in FeSe 1− x Te x thin films by changing substrate materials

Yoshinori Imai; Yuichi Sawada; Fuyuki Nabeshima; Daisuke Asami; Masataka Kawai; Atsutaka Maeda

Iron chalcogenide superconductors FeSe1−xTex are important materials for investigating the relation be-tween the superconductivity and the orbital and/or electronic nematic order, because the end member material FeSe exhibits a structural transition without a magnetic phase transition. However, the phase separation occurs in the region of 0.1 ≤ x ≤ 0.4 for bulk samples, and it prevents the complete understanding of this system. Here, we report the successful fabrication of epitaxial thin films of FeSe1−xTex with 0 ≤ x ≤ 0.7, which includes the phase-separation region, on LaAlO3 substrates via pulsed laser deposition. In the temperature dependences of differential resistivity for these films with 0 ≤ x ≤ 0.3, the dip- or peak- anomalies, which are well-known to be originated from the structural transition in FeSebulk samples, are observed at the characteristic temperatures, T*. The doping-temperature (x–T) phase diagram of FeSe1−xTex films clearly shows that T* decreases with increasing x, and that Tc suddenly changes at a certain Te content where T* disappears, which turns out to be commonly observed for both films on LaAlO3 and CaF2. These indicate the importance of controlling the structural transition to achieve high Tc in iron chalcogenides.


Scientific Reports | 2018

Superconductivity at 38 K at an electrochemical interface between an ionic liquid and FeSe 0.8 Te 0.2 on various substrates

Shunsuke Kouno; Yohei Sato; Yumiko Katayama; Ataru Ichinose; Daisuke Asami; Fuyuki Nabeshima; Yoshinori Imai; Atsutaka Maeda; Kazunori Ueno

Superconducting FeSe0.8Te0.2 thin films on SrTiO3, LaAlO3 and CaF2 substrates were electrochemically etched in an ionic liquid, DEME-TFSI, electrolyte with a gate bias of 5 V. Superconductivity at 38 K was observed on all substrates after the etching of films with a thickness greater than 30 nm, despite the different Tc values of 8 K, 12 K and 19 K observed before etching on SrTiO3, LaAlO3 and CaF2 substrates, respectively. Tc returned to its original value with the removal of the gate bias. The observation of Tc enhancement for these thick films indicates that the Tc enhancement is unrelated to any interfacial effects between the film and the substrate. The sheet resistance and Hall coefficient of the surface conducting layer were estimated from the gate bias dependence of the transport properties. The sheet resistances of the surface conducting layers of the films on LaAlO3 and CaF2 showed identical temperature dependence, and the Hall coefficient was found to be almost independent of temperature and to take values of −0.05 to −0.2 m2/C, corresponding to 4–17 electrons per FeSe0.8Te0.2 unit cell area in two dimensions. These common transport properties on various substrates suggest that the superconductivity at 38 K appears in the surface conducting layer as a result of an electrochemical reaction between the surface of the FeSe0.8Te0.2 thin film and the ionic liquid electrolyte.


Physica C-superconductivity and Its Applications | 2016

Superconducting properties of FeSe1−xTex films with x=0−0.4

Yoshinori Imai; Yuichi Sawada; Daisuke Asami; Fuyuki Nabeshima; Atsutaka Maeda


Physica C-superconductivity and Its Applications | 2016

Transport properties of FeSe1−xTex thin films under magnetic fields up to 8 T

Yuichi Sawada; Fuyuki Nabeshima; Daisuke Asami; Ryo Ogawa; Yoshinori Imai; Atsutaka Maeda


arXiv: Superconductivity | 2018

Superconductivity at 38 K in an electrochemical interface between ionic liquid and Fe(Se0.8Te0.2) on various substrates

Shunsuke Kouno; Yohei Sato; Yumiko Katayama; Ataru Ichinose; Daisuke Asami; Fuyuki Nabeshima; Yoshinori Imai; Atsutaka Maeda; Kazunori Ueno


The Japan Society of Applied Physics | 2017

Control of structural transition in FeSe 1− x Te x thin films by substrate materials

Fuyuki Nabeshima; Masataka Kawai; Daisuke Asami; Yoshinori Imai; Atsutaka Maeda


The Japan Society of Applied Physics | 2017

Critical temperature variation with a thickness control by electrochemical etching in FeSe 1-x Te x thin films

Shunsuke Kohno; Daisuke Asami; Masataka Kawai; Fuyuki Nabeshima; Atsutaka Maeda; Kazunori Ueno


Bulletin of the American Physical Society | 2017

Suppression of phase separation and whole phase diagram in FeSe

Yoshinori Imai; Fuyuki Nabeshima; Yuichi Sawada; Daisuke Asami; Masataka Kawai; Atsutaka Maeda


Bulletin of the American Physical Society | 2017

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Atsutaka Maeda; Fuyuki Nabeshima; Kosuke Nagasawa; Daisuke Asami; Masataka Kawai; Yoshinori Imai


The Japan Society of Applied Physics | 2016

Te

Daisuke Asami; Fuyuki Nabeshima; Yoshinori Imai; Masafumi Hanawa; Ataru Ichinose; Ichiro Tsukada; Atsutaka Maeda

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Ataru Ichinose

Central Research Institute of Electric Power Industry

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Yohei Sato

Paul Scherrer Institute

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