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MRI: Development of a 20-Tesla Spectroscopic Imaging STM for Nanoscale Studies of Complex Electronic/Magnetic Materials

MRI: Development of a 20-Tesla Spectroscopic Imaging STM for Nanoscale Studies of Complex Electronic/Magnetic Materials
MRI:开发 20 特斯拉光谱成像 STM,用于复杂电子/磁性材料的纳米级研究
批准号:
0619377
负责人:
James Davis
金额:
$134.37万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-09-01 至 2011-08-31

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中文摘要
翻译
技术摘要光谱成像扫描隧道显微镜(SI-STM)允许以原子分辨率成像能量分辨电子态密度(本质上是电子的量子波函数)。该技术是开发先进磁性/电子材料的关键工具:杂质/掺杂原子对电子波函数的影响,晶格,电子-电子相互作用和外部电场/磁场,都可以在原子尺度上直接确定。但是,在复杂的电子/磁性材料中,许多最重要和最具启发性的现象发生在非常高的磁场中。在康奈尔大学,我们提议开发世界上第一个非常高磁场的SI-STM设备-在0到20特斯拉的磁场中以原子分辨率运行,尖端/样品温度在0.25K到100K之间。届时,将首次有可能解决高磁场下原子级电子结构的关键科学挑战。例如,石墨烯中的量子霍尔效应,铜酸盐中的场致超导体-绝缘体转变,锰酸盐中的巨磁电阻,铜酸盐中可能的电子超固相,以及其他过渡金属氧化物中的场致量子相变。这个前所未有的系统将作为康奈尔大学的用户设施运行,允许在非常高的磁场下进行复杂电子/磁性材料的纳米级研究。此外,根据国家科学院的建议,位于塔拉哈西的国家高磁场实验室(NHMF)需要实现这种能力。在康奈尔系统完成后,该技术将被转移到NHMFL,将高场SI-STM应用于最广泛的科学界。摘要光谱成像扫描隧道显微镜(SI-STM)是一种直接成像复杂电子/磁性材料中电子波函数的新技术。例如,这种材料表现出高温超导性、巨大的磁电阻和巨大的热电功率。它们在未来将具有深远的技术相关性。但是,这些复杂的电子/磁性材料的许多重要和揭示现象发生在没有SI-STM能力存在的高磁场中。为了解决这一不足,我们建议开发世界上第一个高磁场(20特斯拉)SI-STM系统。它将作为一个访问用户设施(也为学生/博士后提供高级培训),用于研究各种复杂电子/磁性材料中的纳米级高场电子现象。其中包括石墨烯、铜酸盐、锰酸盐、钌酸盐和其他过渡金属氧化物。最后,在完成后,系统的设计将移交给Nat高磁场实验室。(NHMFL)在塔拉哈西,使前所未有的科学仪器普遍使用的最广泛的科学界在一个国家设施。
英文摘要
Technical AbstractSpectroscopic Imaging Scanning Tunneling Microscopy (SI-STM) allows the energy-resolved density-of-electronic-states (essentially the quantum wavefunctions of the electrons) to be imaged with atomic-resolution. This technique is a key tool for development of advanced magnetic/electronic materials: the impact on electron wavefunctions of impurity/dopant atoms, the crystal lattice, electron-electron interactions and external electric/magnetic fields, can all be determined directly at the atomic scale. But many of the most important and revealing phenomena in complex electronic/magnetic materials occur at very high magnetic fields. At Cornell University, we propose to develop the world's first very high magnetic field SI-STM facility - operating with atomic resolution in fields between 0 and 20 Tesla, with tip/sample temperature between 0.25K and 100K. It will then, for the first time, become possible to address crucial scientific challenges in atomic-scale electronic structure at high magnetic fields. These include, for example, quantum hall effects in graphene, field-induced superconductor-insulator transitions in cuprates, colossal magneto-resistance in manganites, possible electronic supersolid phases in cuprates, and field-induced quantum phase transitions in other transition metal oxides. This unprecedented system will operate as a user facility at Cornell, allowing wide access for nanoscale studies of complex electronic/magnetic materials in very high magnetic fields. Furthermore, as recommended by the National Academy, the National High Magnetic Field Lab (NHMF) in Tallahassee needs to achieve such capabilities. Upon completion of the Cornell system, the technology will be transferred NHMFL, bringing high field SI-STM into use for the widest scientific community.Lay AbstractSpectroscopic Imaging Scanning Tunneling Microscopy (SI-STM) is a new technique for imaging directly, the wavefunctions of electrons in complex electronic/magnetic materials. Such materials exhibit, for example, high temperature superconductivity, colossal magneto-resistance and giant thermoelectric power. They will be of profound technological relevance in the future. But many important and revealing phenomena of these complex electronic/magnetic materials occur at high magnetic fields where no SI-STM capabilities exist. To address this deficiency, we propose to develop of the world's first high magnetic field (20 Tesla) SI-STM system. It will operate as a visiting-user facility (also providing advanced training of students/ postdocs) for studies of nanoscale high-field electronic phenomena in a variety of complex electronic/magnetic materials. These will include graphene, cuprates, manganites, ruthenates and other transition metal oxides. Finally, upon completion, the design of the system will be transferred to the Nat. High Magnetic Field Lab. (NHMFL) at Tallahassee, bringing an unprecedented scientific instrument into general use for the widest scientific community at a national facility.
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