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CAREER: Advancing theory of Resonant Inelastic X-ray Scattering for Materials In- and Out-of-Equilibrium

CAREER: Advancing theory of Resonant Inelastic X-ray Scattering for Materials In- and Out-of-Equilibrium
职业:推进处于平衡态和非平衡态材料的共振非弹性 X 射线散射理论
批准号:
1842056
负责人:
Steven Johnston
金额:
$43.69万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-08-01 至 2024-07-31

项目摘要

项目成果

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中文摘要
翻译
非技术总结量子材料处于材料研究的前沿。在许多情况下,这些材料的显着性能来自它们的电子,磁性和结构特性之间的微妙相互作用。在过去的二十年里,共振非弹性X射线散射已经成为一个强大的实验工具,在这种情况下,由于它能够同时探测所有这些属性在一个单一的实验。但这种能力是有代价的,因为这些实验在没有复杂的理论模型的情况下很难解释;迫切需要新的理论工具。这个CAREER奖支持计算和理论研究和教育,旨在更好地理解共振非弹性X射线散射技术及其在几种新型量子材料中的应用。该项目的目标是开发新的理论方法和计算机代码来模拟共振X射线散射实验。研究小组将应用这些方法来解决量子材料中的几个悬而未决的问题,并与实验研究人员合作。该项目将为共振X射线散射实验建模提供先进的理论工具,这些实验广泛适用于各种量子材料,从而有助于我们对这些系统的理解,并加速未来的发现。该项目的教育部分侧重于增加代表性不足的少数民族在先进物理研究中的参与。大约30%的大学适龄美国公民是少数种族群体的成员,但这些群体在科学,技术,工程和数学方面的代表性严重不足,其中物理学的差异最大。PI将与美国物理学会桥梁计划和NSF赞助的田纳西州路易斯斯托克斯少数民族参与计划联盟合作,在诺克斯维尔的田纳西大学率先建立桥梁计划。这些活动将有助于创造一个替代途径进入物理研究生课程的学生谁不会以其他方式申请或就读研究生院。该项目还支持本科生和研究生在物理学方面的研究机会,重点是先进的计算方法。技术概述强相关量子材料实现了物质的广泛的科学和技术重要阶段。在许多情况下,这些系统的功能特性来自它们的自旋,电荷,轨道和晶格激发的相互作用。在这种情况下,共振非弹性X射线散射(RIXS)已成为一个强大的工具,能够同时访问所有这些激发在一个单一的实验。但是,如果没有理论模型,RIXS实验很难解释。此外,泵浦探测或时间分辨RIXS实验的最新发展迫切需要新的理论工具。该职业奖支持研究和教育,以开发用于模拟平衡和时间分辨RIXS实验的新理论框架。该项目的主要目标是扩展最先进的数值方法,如密度矩阵重整化群,量子蒙特卡罗和嵌入式集群技术,以模拟平衡RIXS实验,然后将这些相同的方法整合到时间分辨RIXS实验的新理论中。研究小组将应用这些方法来解决几个悬而未决的问题。示例包括:1)识别量子自旋液体中的分数准粒子激发,并了解它们在平衡状态和平衡状态下的动力学,2)确定相关量子材料中集体磁性和晶格激发的特定作用,以及3)确定RIXS如何提供回答这些问题的独特方式。这些问题中的许多问题将在自由电子激光设施(如直线加速器相干光源)正在进行的实验中得到解决。该项目将为理解RIXS实验提供一个先进的框架,这些实验广泛适用于各种量子材料,从而为理解这些系统和加速未来的发现做出重大贡献。该项目的教育部分侧重于提高代表性不足的少数群体对高级物理研究的参与。大约30%的大学适龄美国公民是少数种族群体的成员,但这些群体在科学,技术,工程和数学方面的代表性严重不足,其中物理学的差异最大。PI将与美国物理学会桥梁计划和NSF赞助的田纳西州路易斯斯托克斯少数民族参与计划联盟合作,在诺克斯维尔的田纳西大学率先建立桥梁计划。这些活动将有助于创造一个替代途径进入物理研究生课程的学生谁不会以其他方式申请或就读研究生院。该项目还支持本科生和研究生在物理学方面的研究机会,重点是先进的计算方法。该奖项反映了NSF的法定使命,并通过使用基金会的智力价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
NONTECHNICAL SUMMARYQuantum materials are at the forefront of materials research. In many cases, the remarkable properties of these materials derive from a subtle interplay between their electronic, magnetic, and structural properties. Over the last two decades, resonant inelastic x-ray scattering has emerged as a powerful experimental tool in this context, owing to its ability to simultaneously probe all of these properties in a single experiment. But this capability comes at a price, as these experiments are challenging to interpret without sophisticated theoretical models; there is an urgent need for new theoretical tools.This CAREER award supports computational and theoretical research and education aimed at obtaining a better understanding of resonant inelastic x-ray scattering techniques and their application to several novel quantum materials. The goal of the project is to develop new theoretical approaches and computer codes for modeling resonant x-ray scattering experiments. The research team will apply these methods to address several open questions in quantum materials, working in collaboration with experimental researchers. This project will provide advanced theoretical tools for modeling resonant x-ray scattering experiments that are broadly applicable to a wide range of quantum materials, thus contributing to our understanding of these systems and accelerating future discovery.This project's educational component focuses on increasing the participation of underrepresented minorities in advanced physics research. Approximately 30% of college-aged US citizens are members of racial minority groups, but these groups are drastically underrepresented in Science, Technology, Engineering, and Mathematics, with the largest disparity occurring in physics. The PI will spearhead the establishment of a Bridge Program at the University of Tennessee, Knoxville in partnership with the American Physical Society Bridge Program and the NSF-sponsored Tennessee Louis Stokes Alliance for Minority Participation Program. These activities will help create an alternative pathway into a physics graduate program for students who would not otherwise apply to or enroll in graduate school. This project also supports undergraduate and graduate research opportunities in physics with a focus on advanced computational methods.TECHNICAL SUMMARYStrongly correlated quantum materials realize a wide range of scientifically and technologically significant phases of matter. In many cases, the functional properties of these systems derive from the interplay of their spin, charge, orbital, and lattice excitations. In this context, resonant inelastic x-ray scattering (RIXS) has become a powerful tool, capable of simultaneously accessing all of these excitations in a single experiment. But RIXS experiments are difficult to interpret without theoretical models. Moreover, the recent development of pump-probe or time-resolved RIXS experiments has created an urgent need for new theoretical tools. This CAREER award supports research and education towards the development of new theoretical frameworks for modeling equilibrium and time-resolved RIXS experiments. The primary goals of this project are to extend state-of-the-art numerical methods like the density matrix renormalization group, quantum Monte Carlo, and embedded cluster techniques to model equilibrium RIXS experiments and then integrate these same approaches into new theory for time-resolved RIXS experiments. The research team will apply these methods to address several open problems. Examples include: 1) identifying fractionalized quasiparticle excitations in quantum spin liquids and understanding their dynamics both in and out of equilibrium, 2) determining the specific roles of the collective magnetic and lattice excitations in correlated quantum materials, and 3) establishing how RIXS provides a unique way of answering these questions. Many of these questions will be addressed in the context of ongoing experiments at free electron laser facilities like the Linac Coherent Light Source. This project will provide an advanced framework for understanding RIXS experiments that are broadly applicable to a wide range of quantum materials, thus contributing significantly to the understanding of these systems and accelerating future discovery. This project's educational component focuses on increasing the participation of underrepresented minorities in advanced physics research. Approximately 30% of college-aged US citizens are members of racial minority groups, but these groups are drastically underrepresented in Science, Technology, Engineering, and Mathematics, with the largest disparity occurring in physics. The PI will spearhead the establishment of a Bridge Program at the University of Tennessee, Knoxville in partnership with the American Physical Society Bridge Program and the NSF-sponsored Tennessee Louis Stokes Alliance for Minority Participation Program. These activities will help create an alternative pathway into a physics graduate program for students who would not otherwise apply to or enroll in graduate school. This project also supports undergraduate and graduate research opportunities in physics with a focus on advanced computational methods.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(14)
专著(0)
科研奖励(0)
会议论文
Unraveling higher-order contributions to spin excitations probed using resonant inelastic x-ray scattering
揭示使用共振非弹性 X 射线散射探测的自旋激发的高阶贡献
DOI: 10.1103/physrevb.106.l060406
发表时间: 2022
期刊: Physical Review B
影响因子: 3.7
作者: [Kumar, Umesh, Nag, Abhishek, Li, Jiemin, Robarts, H. C., Walters, A. C., García-Fernández, Mirian, Saint-Martin, R., Revcolevschi, A., Schlappa, Justine, Schmitt, Thorsten]
通讯作者: Schmitt, Thorsten
DOI: 10.1103/physrevb.105.115105
发表时间: 2021-11
期刊: Physical Review B
影响因子: 3.7
作者: [Y. Peng;L. Martinelli;Qizhi Li;M. Rossi;M. Mitrano;R. Arpaia;M. M. Sala-M.;Qiang Gao;Xuefei Guo;G. M. D. Luca;Andrew Walters;A. Nag;A. Barbour;G. Gu;J. Pelliciari;N. Brookes;P. Abbamonte;M. Salluzzo;Xingjiang Zhou;K. Zhou;V. Bisogni;L. Braicovich;S. Johnston;G. Ghiringhelli]
通讯作者: Y. Peng;L. Martinelli;Qizhi Li;M. Rossi;M. Mitrano;R. Arpaia;M. M. Sala-M.;Qiang Gao;Xuefei Guo;G. M. D. Luca;Andrew Walters;A. Nag;A. Barbour;G. Gu;J. Pelliciari;N. Brookes;P. Abbamonte;M. Salluzzo;Xingjiang Zhou;K. Zhou;V. Bisogni;L. Braicovich;S. Johnston;G. Ghiringhelli
DOI: 10.1073/pnas.2001755117
发表时间: 2020-07-14
期刊: PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
影响因子: 11.1
作者: [Li, Jiemin, Nag, Abhishek, Zhou, Ke-Jin]
通讯作者: Zhou, Ke-Jin
Beyond the single-site approximation modeling of electron-phonon coupling effects on resonant inelastic X-ray scattering spectra
超越共振非弹性 X 射线散射光谱的电子-声子耦合效应的单点近似建模
DOI: 10.21468/scipostphys.11.3.062
发表时间: 2021
期刊: SciPost Physics
影响因子: 5.5
作者: [Bieniasz, Krzysztof, Johnston, Steven, Berciu, Mona]
通讯作者: Berciu, Mona
共 12 条
    Non-perturbative studies of electron-lattice interactions in quantum materials
    • 批准号:
      2401388
    • 项目类别:
      Continuing Grant
    • 资助金额:
      $35.13万
    • 财政年份:
      2024
    • 负责人:
      Steven Johnston
    • 依托单位:
    海外基金