Spin-controlled molecular spatial configuration and related magnetic-field-induced phenomena
Project/Area Number |
16H04009
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Research Category |
Grant-in-Aid for Scientific Research (B)
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Allocation Type | Single-year Grants |
Section | 一般 |
Research Field |
Condensed matter physics II
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Research Institution | The University of Tokyo |
Principal Investigator |
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Co-Investigator(Kenkyū-buntansha) |
小林 達生 岡山大学, 自然科学研究科, 教授 (80205468)
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Project Period (FY) |
2016-04-01 – 2019-03-31
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Project Status |
Completed (Fiscal Year 2018)
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Budget Amount *help |
¥12,350,000 (Direct Cost: ¥9,500,000、Indirect Cost: ¥2,850,000)
Fiscal Year 2018: ¥3,120,000 (Direct Cost: ¥2,400,000、Indirect Cost: ¥720,000)
Fiscal Year 2017: ¥3,120,000 (Direct Cost: ¥2,400,000、Indirect Cost: ¥720,000)
Fiscal Year 2016: ¥6,110,000 (Direct Cost: ¥4,700,000、Indirect Cost: ¥1,410,000)
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Keywords | 分子性結晶 / スピン / 構造相転移 / 磁場 / スピン格子結合 / 磁場誘起相転移 / 磁化プラトー / スピン格子分離 / 固体酸素 / 磁歪 / 分子性固体 / 強磁場 / X線回折 / 磁気熱量効果 / 分子生固体 |
Outline of Final Research Achievements |
The phase diagram of solid oxygen was obtained in magnetic field-temperature plane. The α-β, β-γ phase boundaries were measured by the magneto-caloric effect and the triple point between the high-magnetic-field θ-, γー, and β-phases was also determined. The technique for the magnetostriction measurement in ultrahigh magnetic fields has been developed using the fiber Bragg grating. The quantum spin-state transition in LaCoO3 was detected as the structural phase transition by applying ultrahigh magnetic fields of up to 150 T. This technique was also applied to uncover the properties of the Kagome lattice, volborthite. The S=1/2 and S=1 spin ladder organic compounds BIP-BNO and BIP-TENO have been investigated by the magnetization process and found that the S=1 spin ladder exhibits unusual magnetization process, by contrast that the S=1/2 compound shows predictable magnetization process. These facts suggest that the strong spin-lattice coupling and its dynamics are important.
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Academic Significance and Societal Importance of the Research Achievements |
固体酸素の磁場ー温度相図を初めて明らかにし、スピンによる分子立体配置制御が分子性固体の性質をコントロール可能であることを明確に示した。分子性固体はその結晶の多様性から機能デバイスへの応用においても重要であり、スピンを介した磁気デバイスへの拡大においても重要な成果である。さらに、S=1のスピンラダー物質BIP-TENOでは、マイクロ秒の高速磁場掃引でのみ現れる量子状態(磁化プラトー状態)が見出された。磁歪の磁場掃引速度依存性から、スピン格子結合を介した磁場誘起の分子配置ダイナミクスがその理解に重要であると予想した。分子性結晶において非平衡状態を利用した量子状態制御の可能性を見出した。
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Report
(4 results)
Research Products
(23 results)
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[Presentation] 液体酸素の強磁場下超音波測定2017
Author(s)
野村肇宏, 松田康弘, S. Zherlitsyn, J. Wosnitza, 小林達生
Organizer
日本物理学会
Place of Presentation
大阪大学(大阪府・豊中市)
Year and Date
2017-03-17
Related Report
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