High temperature atomic layer superconductivity realized with hydrogenation
Project/Area Number |
18K18732
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Research Category |
Grant-in-Aid for Challenging Research (Exploratory)
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Allocation Type | Multi-year Fund |
Review Section |
Medium-sized Section 13:Condensed matter physics and related fields
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Research Institution | The University of Tokyo |
Principal Investigator |
Akiyama Ryota 東京大学, 大学院理学系研究科(理学部), 助教 (40633962)
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Project Period (FY) |
2018-06-29 – 2023-03-31
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Project Status |
Completed (Fiscal Year 2022)
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Budget Amount *help |
¥6,240,000 (Direct Cost: ¥4,800,000、Indirect Cost: ¥1,440,000)
Fiscal Year 2019: ¥910,000 (Direct Cost: ¥700,000、Indirect Cost: ¥210,000)
Fiscal Year 2018: ¥5,330,000 (Direct Cost: ¥4,100,000、Indirect Cost: ¥1,230,000)
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Keywords | 超伝導 / 原子層物質 / 層状物質 / ファンデルワールス物質 / 水素 / 水素修飾 / 界面超伝導 / 薄膜 / カルコゲナイド / チタン酸ストロンチウム / 2次元超伝導 / 2次元物質 / 酸化物半導体 / 水素化 / SrTiO3 / ペロブスカイト / 鉄系超伝導 / 電子フォノン相互作用 |
Outline of Final Research Achievements |
This research project is an attempt to increase the transition temperature of two-dimensional superconductivity in thin films such as FeSe and at surfaces and interfaces by modifying them with hydrogen. Although we have completed the fabrication and evaluation of FeSe thin films and performed superconductivity measurements, no clear transition of superconductivity could be seen. Although it took some time to elucidate these issues, we have not yet reached the point where we can stably perform hydrogen modification on the fabricated superconductors and measure systematic data, we will continue our research to explore the conditions for fabricating samples with high normal resistance, to clarify what makes them different from those with low resistance, and to determine the superconductivity transition temperature from the temperature dependence of the electrical resistance. We would like to confirm how it is changed by hydrogen modification as soon as possible.
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Academic Significance and Societal Importance of the Research Achievements |
FeSe薄膜の超伝導については未解明な点が多く、超伝導転移温度もばらついており、何がその要因となっているのか不明な点も多い。また作製法によって性質が大きく変わることが今回の研究結果から判明した。我々の試料は構造評価上はFeSeの単結晶で先行研究と同一にも関わらず、常伝導抵抗が先行研究に比べて顕著に低い。これをもたらす要因がボースメタルのような以上金属状態と結びつけて議論可能なのかなど、多くの疑問を投げかける結果となった。今後、より原子・電子構造も詳細に調べ、電気伝導の性質と絡めて解明していくことが必要で、その切り口を見つけたことが本研究の意義と言えるだろう。
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Report
(6 results)
Research Products
(76 results)
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[Journal Article] Electrical Observation of Soft-magnetic Skyrmions in the Sandwich Structure Including Topological Insulator with Self-assembled Ferromagnetic Atomic Layers2022
Author(s)
高城 拓也, 秋山 了太, I. A. Kibirev, A. V. Matetskiy, 中西 亮介, 佐藤 瞬亮, 深澤 拓朗, 佐々木 泰祐, 遠山 晴子, 樋渡 功太, A. V. Zotov, A. A. Saranin, 平原 徹, 長谷川 修司
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Journal Title
Vacuum and Surface Science
Volume: 65
Issue: 9
Pages: 405-410
DOI
ISSN
2433-5835, 2433-5843
Year and Date
2022-09-10
Related Report
Peer Reviewed / Int'l Joint Research
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[Presentation] SiC 基板上グラフェンにおけるCa インターカレート誘起超伝導2022
Author(s)
遠山晴子, 秋山了太, 一ノ倉聖, 橋爪瑞葵, 飯盛拓嗣, 遠藤由大, 保原麗, 松井朋裕, 堀井健太郎, 佐藤瞬亮, 平原徹, 小森文夫, 長谷川修司
Organizer
日本表面真空学会関東支部セミナー「表面科学と原子層科学のエッジ」
Related Report
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[Presentation] Yb吸着グラフェン/SiCの磁性2020
Author(s)
鄭帝洪, V. Jort, 遠藤由大, 渡邉和己, 遠山晴子, 高城拓也, 保原麗, L. V. Bondarenko, A. Y. Tupchaya, D. V. Gruznev, A. V. Zotov, C, A. A. Saranin, 秋山了太, 長谷川修司
Organizer
2020年春季日本物理学会
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[Presentation] Si(111)上の(Pb,Au)表面合金層の構造と伝導特性2019
Author(s)
遠山晴子, 中村友謙, 田中宏明, L. V. Bondarenko, A. Y. Tupchaya, D. V. Gruznev, 保原麗, 秋山了太, A.V. Zotov, A.A. Saranin, 長谷川修司
Organizer
2019年春季日本物理学会
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