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Accelerated ab initio Molecular Dynamics of III/V Semiconductor Thin-Film Epitaxy

Accelerated ab initio Molecular Dynamics of III/V Semiconductor Thin-Film Epitaxy
III/V 半导体薄膜外延的加速从头分子动力学
批准号:
1006452
负责人:
Kristen Fichthorn
金额:
$27.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-15 至 2014-08-31

项目摘要

项目成果

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中文摘要
翻译
该奖项支持材料模拟中持续挑战的计算和理论研究和教育:在长时间和长度尺度上进行结构演化的模拟,同时保留原子水平的准确细节。 PI旨在提高稀有事件模拟的能力,以实现对各种凝聚态系统的模拟。 PI的目的是开发方法,以提高加速分子动力学的当前能力。 一个加速的分子动力学协议将被开发为经典和从头计算模拟的基础上的键升压方法。 在该算法中,并行计算被用来参数化的Bond-Boost潜力的飞行,以及联合收割机这种基于超动力学的算法与并行副本动力学大加速与有效的并行缩放。 为了将加速分子动力学模拟外推到更大的长度和时间尺度,它们将被集成到动力学蒙特卡罗模型中。 加速分子动力学与动力学蒙特卡罗的结合将使这种技术的定量应用到多尺度问题,其中的长度和时间尺度范围从原子尺度到介观scales.The自适应Bond-Boost方法将应用于基于第一性原理的GaAs(001)薄膜生长的模拟-均同质外延和InAs异质外延将被研究。 在这些系统中的薄膜生长在技术上是重要的;在电子、光电子和自旋电子器件中有应用。从基本的角度来看,最近的实验工作表明,GaAs(001)衬底可以转变,并在同质外延过程中形成的扩散和形态中发挥积极作用。 该系统打破了传统的基板是一个静态模板的范例。 吸附原子扩散、岛形核和多层生长在这样的动态环境中发生的方式可能与在薄膜生长的常规图片中设想的方式相当不同。PI的目的是解决这些现象和它们在这种化合物半导体系统中的薄膜生长中的作用。 对于GaAs(001)上InAs异质外延的研究,现有的半经验势将针对实验和第一原理密度泛函理论进行测试,以获得广泛的属性列表。 结合经典和从头计算加速分子动力学模拟将被用来探测GaAs(001)上的InAs润湿层上的沉积和扩散。 InAs通过在GaAs衬底上的Stranski-Krastanov生长模式形成自组装量子点,拟议的研究将是第一个真实空间的原子尺度研究,以解决量子点从润湿层成核。该项目包括研究生和博士后培训以及本科生的参与。研究的各个方面将包括在研究生和本科生的课程。通过在会议上组织专题讨论会以及国际研讨会,将进一步提高对多尺度建模的理解。非技术总结该奖项支持材料模拟领域持续挑战的计算和理论研究与教育:使用最新的理论和算法发展,可以在很短的时间内描述少量原子,大约为百万分之一秒的百万分之一,用于描述具有多个原子的材料在制造过程中如何在通常的几秒到几小时的时间尺度上演变。 PI旨在提高加速分子动力学的能力。在普通的分子动力学中,每个原子的运动都是在计算机上模拟的。计算机步进通过非常小的时间增量,这是由需要包括从单个原子的相互作用发生的过程设置的。以这种速度,模拟太慢,无法达到相对而言描述一种材料的薄膜在另一种材料表面上的生长所需的长时间。加速分子动力学应用了统计力学的思想,使计算机模拟能够访问更长的时间尺度,并包括不经常发生但在确定薄膜结构等方面发挥重要作用的物理和化学过程。PI将使用新的模拟方法来模拟半导体材料砷化镓表面上材料薄膜的生长。这将作为理解其他材料上薄膜生长的模型,其中许多对于电子,光电和自旋电子器件(如激光,太阳能电池和未来的计算机)的应用非常重要。 技术瓶颈源于对分子束外延生长薄膜时薄膜结构如何演变的缺乏理解,分子束外延是指原子从蒸汽中沉积到表面。 通过模拟这种材料制造技术,PI的目标是开发新的见解,了解如何更有效地制造材料薄膜的应用。 研究的各个方面将包括在研究生和本科生的课程和了解多尺度建模的艺术状态将通过在会议上组织研讨会,以及国际研讨会的先进。学生将接受模拟材料和材料生长的先进方法的培训。
英文摘要
TECHNICAL SUMMARYThis award supports computational and theoretical research and education on a continuing challenge in materials simulation: Conducting simulations of structural evolution over long time and length scales, while retaining accurate detail at the atomic level. The PI intends to advance capabilities of rare-event simulations to enable simulations of a wide range of condensed-matter systems. The PI aims to develop methods to advance the current capabilities of accelerated molecular dynamics. An accelerated molecular dynamics protocol will be developed for both classical and ab initio simulations based on the Bond-Boost method. In this algorithm, parallel computing is exploited to parameterize the Bond-Boost potential on the fly, as well as to combine this hyperdynamics-based algorithm with parallel replica dynamics for large acceleration with efficient parallel scaling. To extrapolate accelerated molecular dynamics simulations to larger length and time scales, they will be integrated into kinetic Monte Carlo models. The combination of accelerated molecular dynamics with kinetic Monte Carlo will allow the quantitative application of this technique to multi-scale problems, where the length and time scales range from atomic scales to mesoscopic scales.The Adaptive Bond-Boost method will be applied in first-principles-based simulations of thin-film growth on GaAs(001) -- both homoepitaxy and InAs heteroepitaxy will be studied. Thin-film growth in these systems is technologically significant; there are applications in electronic, optoelectronic, and spintronic devices. From a fundamental perspective, recent experimental work has shown that GaAs(001) substrates can transform and play an active role in diffusion and the morphologies that form during homoepitaxy. This system breaks the conventional paradigm that the substrate is a static template. The way that adatom diffusion, island nucleation, and multi-layer growth occur in such a dynamical environment may be considerably different than that envisioned in the conventional picture of thin-film growth. The PI aims to resolve these phenomena and their role in thin-film growth in this compound semiconductor system. For studies of InAs heteroepitaxy on GaAs(001), existing semi-empirical potentials will be tested against experiment and first-principles density-functional theory for an extensive list of properties. A combination of classical and ab initio accelerated molecular dynamics simulations will be used to probe deposition and diffusion on an InAs wetting layer on GaAs(001). InAs forms self-assembled quantum dots via the Stranski-Krastanov growth mode on GaAs substrates and the proposed studies will be the first real-space, atomic scale studies to resolve the nucleation of quantum dots from the wetting layer.This project includes graduate student and postdoctoral training and involvement of undergraduate students. Aspects of the research will be included in graduate and undergraduate coursework. The state of the art in understanding multi-scale modeling will be advanced through organization of symposia at conferences, as well as international workshops.NON-TECHNICAL SUMMARYThis award supports computational and theoretical research and education on a continuing challenge in materials simulation: Using the newest theoretical and algorithmic developments, which can describe a small number of atoms for only a very short time, on the order of one millionth of one millionth of a second, to describe how materials with many atoms evolve over usual time scales of seconds to hours during their fabrication. The PI aims to advance capabilities of accelerated molecular dynamics. In ordinary molecular dynamics, the motion of each atom is simulated on a computer. The computer steps through very small time increments that are set by the need to include processes that occur from the interaction of individual atoms. At this rate, simulations are too slow to reach the, relatively speaking, long times needed to describe, for example the growth of a thin film of one material on the surface of another. Accelerated molecular dynamics applies ideas from statistical mechanics to enable computer simulations to access longer time scales and to include physical and chemical processes that happen infrequently but play an important role in determining, for example, the structure of a thin film. The PI will use new simulation methods that are developed to simulate the growth of thin-films of materials on the surfaces of the semiconductor material gallium arsenide. This will serve as model for understanding thin film growth on other materials, many being important for applications in electronic, optoelectronic, and spintronic devices, such as lasers, solar cells, and computers of the future. Technological bottle-necks arise from a lack of understanding of how the structure of thin films evolves as they are grown by molecular-beam epitaxy, in which atoms are deposited onto the surface from a vapor. By simulating this materials fabrication technique, the PI aims to develop new insight into how films of materials can be fabricated more effectively for applications. Aspects of the research will be included in graduate and undergraduate coursework and the state of the art in understanding multi-scale modeling will be advanced through organization of symposia at conferences, as well as international workshops. Students will be trained in advanced methods for simulating materials and materials growth.
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会议论文
2023 Crystal Growth and Assembly Gordon Research Conference and Gordon Research Seminar
  • 批准号:
    2326807
  • 项目类别:
    Standard Grant
  • 资助金额:
    $1.0万
  • 财政年份:
    2023
  • 负责人:
    Kristen Fichthorn
  • 依托单位:
Collaborative Research: NSCI Framework: Software: SCALE-MS - Scalable Adaptive Large Ensembles of Molecular Simulations
NRT-DESE: Computational Materials Education and Training - Bridging Methods and Applications (COMET)
Multi-Scale Simulation of Droplets on Solid Surfaces: Superhydrophobicity and Superspreading
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体外培养胚胎 Hsp90ab1基因异常表达影响子代端粒长度的机制研究
  • 批准号:
    24ZR1471400
  • 项目类别:
    省市级项目
  • 资助金额:
    --
  • 批准年份:
    2024
  • 负责人:
    薛金锋
  • 依托单位:
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