中大機構典藏-NCU Institutional Repository-提供博碩士論文、考古題、期刊論文、研究計畫等下載:Item 987654321/62787
English  |  正體中文  |  简体中文  |  全文筆數/總筆數 : 78818/78818 (100%)
造訪人次 : 34693011      線上人數 : 1977
RC Version 7.0 © Powered By DSPACE, MIT. Enhanced by NTU Library IR team.
搜尋範圍 查詢小技巧:
  • 您可在西文檢索詞彙前後加上"雙引號",以獲取較精準的檢索結果
  • 若欲以作者姓名搜尋,建議至進階搜尋限定作者欄位,可獲得較完整資料
  • 進階搜尋


    請使用永久網址來引用或連結此文件: http://ir.lib.ncu.edu.tw/handle/987654321/62787


    題名: 關聯性材料在壓力或應力下之性質;Properties of correlated materials under pressure or stress
    作者: 徐翰
    貢獻者: 國立中央大學物理學系
    關鍵詞: 物理;材料科技
    日期: 2013-12-01
    上傳時間: 2014-03-17 12:03:04 (UTC+8)
    出版者: 行政院國家科學委員會
    摘要: 研究期間:10201~10207;In this three-year project, we propose to study the structural, electronic, magnetic, elastic, and thermodynamic properties of correlated materials under pressure or epitaxial strains using state of the art first-principles computation techniques. Our research will be focused on two categories of materials for their geophysical importance, scientific interests, and technological potentials. One category of materials in this project is iron alloys. So far, all geophysical and geochemistry evidences have suggested that the Earth’s solid inner core consists of iron (Fe) and lighter elements, possibly hydrogen (H), sulfur (S), silicon (Si), carbon (C), and oxygen (O). To decipher the mysterious properties of the Earth’s inner core, including its seismic anisotropy and heterogeneity, and to shed light on how the inner core affects the evolution the Earth, solid knowledge for materials in this region is essential. We plan to study Fe-H, Fe-S, Fe-Si, and Fe-C alloys under high pressure, and to search for the most likely crystal structure in the inner-core conditions, so we can better understand this innermost and the least known region of the Earth’s interior. We also plan to investigate thin-film martensite Fe-N alloys for their possible (and yet controversial) extraordinarily high magnetization ( > 3.0/Fe) suggested by experiments. The other category of materials in this project is epitaxially-strained complex oxides, in particular, perovskite cobaltite thin films. Compared to their manganite counter parts, thin-film cobaltites have just started attracting attention, mainly due to their extra degree of freedom in cobalt spin state and the potential novel properties induced by epitaxial strains. A few examples include lanthanum cobaltite (LaCoO3), which is a diamagnetic insulator in bulk and a ferromagnetic insulator in tensile-strained thin film, and (Nd,Sr)CoO3, whose coercivity can be enhanced by strain by two orders of magnitude. Detailed mechanisms of these phenomena are still unclear, and plenty of thin-film cobaltites remain unexplored. We therefore plan to use first-principles calculations to understand and perhaps even predict strain-induced novel properties in this class of materials.
    關聯: 財團法人國家實驗研究院科技政策研究與資訊中心
    顯示於類別:[物理學系] 研究計畫

    文件中的檔案:

    檔案 描述 大小格式瀏覽次數
    index.html0KbHTML305檢視/開啟


    在NCUIR中所有的資料項目都受到原著作權保護.

    社群 sharing

    ::: Copyright National Central University. | 國立中央大學圖書館版權所有 | 收藏本站 | 設為首頁 | 最佳瀏覽畫面: 1024*768 | 建站日期:8-24-2009 :::
    DSpace Software Copyright © 2002-2004  MIT &  Hewlett-Packard  /   Enhanced by   NTU Library IR team Copyright ©   - 隱私權政策聲明