Femtosecond X-Ray Diffraction Studies of Crystalline Matter Deforming under Extreme Loading
极端载荷下晶体物质变形的飞秒 X 射线衍射研究
基本信息
- 批准号:EP/X031624/1
- 负责人:
- 金额:$ 63.41万
- 依托单位:
- 依托单位国家:英国
- 项目类别:Research Grant
- 财政年份:2024
- 资助国家:英国
- 起止时间:2024 至 无数据
- 项目状态:未结题
- 来源:
- 关键词:
项目摘要
X-ray free-electron lasers (XFELs) are the most brilliant sources of x-rays on Earth. The highly coherent, near-monochromatic, sub-picosecond bursts of radiation they deliver make them the ultimate 'high-speed camera', capable of capturing extremely fast, atomic-level phenomena as they unfold in unprecedented detail. XFELs are therefore ideally suited to probing matter undergoing laser-based dynamic compression, whereby one or more high-power optical lasers rapidly vaporise the surface of a solid target, launching into it a compression wave that generates internal stresses many millions of times greater than atmospheric pressure. During the few billionths of a second for which they survive before being disintegrated, these targets reach extreme pressures of the kind ordinarily encountered only in planetary interiors, and experience rates of deformation rivalling those of meteoric impact events. By illuminating these short-lived samples with extremely bright XFEL pulses, we can generate x-ray diffraction or absorption spectra rich with information about their atomic arrangement, structure, and dynamics in the moments before their destruction. This ability to diagnose the dynamic response of matter under extraordinary thermodynamic conditions is transforming experimental high-pressure physics, allowing us to better understand not only the internal structure, formation, and collision dynamics of planetary bodies, but how to synthesise and recover exotic high-pressure phases of matter, and how engineering alloys and ceramics respond to the huge dynamic stresses created by hypervelocity impacts.In this project, we aim to leverage the diagnostic power of the recently commissioned European XFEL (EuXFEL), an international XFEL facility backed by a consortium of twelve countries to which the UK has committed approximately £30M in capital to date. We will exploit the EuXFEL to shed new light on the plasticity and strength of model metals dynamically deforming at extreme pressures and strain rates. Our aim is to take the 'ordinary' physical processes controlling plastic deformation that materials scientists have studied for over a century, and to examine them under the 'extraordinary' thermodynamic conditions accessible via dynamic compression. Using the UK-built, high-repetition-rate, £8M DiPOLE-100 laser recently installed at EuXFEL, we will laser-compress a range of metals and alloys to planetary pressures over nanosecond timescales at an unprecedented shot rate. We will use femtosecond x-ray diffraction to measure the ultrafast rotation experienced by our samples' microstructure, and use it to identify the plasticity mechanisms that relieve the colossal shear stresses accumulated during compression. From these same diffraction measurements, we will extract the strain state of our metallic samples, allowing us to measure their dynamic strength at extreme strain rates. We will also use EuXFEL to study these samples' x-ray absorption properties under extreme loading, with which we can track their temperature dynamics in situ. Together, these XFEL-enabled experimental measurements of plasticity mechanisms, strength, and temperature evolution have the potential to transform our understanding of material deformation physics under extreme loading conditions.
X 射线自由电子激光器 (XFEL) 是地球上最明亮的 X 射线源,它们提供的高度相干、近单色、亚皮秒的辐射脉冲使其成为终极的“高速相机”。因此,XFEL 能够以前所未有的细节捕捉极快的原子级现象,非常适合探测基于激光动态压缩的物质,从而使一个或多个高功率光学激光器快速汽化固体表面。目标,向其发射压缩波,产生比大气压力大数百万倍的内应力,在它们解体之前的数十亿分之一秒内,这些目标达到了通常只在行星内部遇到的极端压力。 ,并经历与流星撞击事件相媲美的变形率 通过用极其明亮的 XFEL 脉冲照射这些短暂的样本,我们可以生成富含其原子信息的 X 射线衍射或吸收光谱。这种在异常热力学条件下诊断物质动态响应的能力正在改变实验高压物理学,使我们不仅能够更好地理解内部结构、形成和碰撞动力学。行星体的结构,但如何合成和恢复奇异的高压物质相,以及工程合金和陶瓷如何响应超高速撞击产生的巨大动态应力。在这个项目中,我们的目标是利用最近委托的诊断能力欧洲XFEL (EuXFEL),这是一个由 12 个国家组成的财团支持的国际 XFEL 设施,迄今为止,英国已向该财团投入了约 3000 万英镑的资金。我们将利用 EuXFEL 来揭示极端动态变形模型金属的可塑性和强度。我们的目标是采用材料科学家研究了一个多世纪的控制塑性变形的“普通”物理过程,并在“特殊”热力学条件下检查它们。通过动态压缩,我们将使用最近安装在 EuXFEL 的英国制造、高重复率、价值 800 万英镑的 DiPOLE-100 激光器,以前所未有的发射速率在纳秒时间尺度上将一系列金属和合金激光压缩到行星压力。将使用飞秒 X 射线衍射来测量样品微观结构所经历的超快旋转,并用它来确定可缓解压缩过程中积累的巨大剪切应力的塑性机制。从这些相同的衍射测量中,我们将提取金属样品的应变状态,从而测量它们在极端应变率下的动态强度。我们还将使用 EuXFEL 研究这些样品在极端负载下的 X 射线吸收特性。我们可以原位跟踪它们的温度动态,这些 XFEL 支持的塑性机制、强度和温度演化实验测量有可能改变我们对极端负载条件下材料变形物理的理解。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Justin Wark其他文献
New bounds on heavy axions with an X-ray free electron laser
X 射线自由电子激光器对重轴子的新限制
- DOI:
- 发表时间:
2024-04-26 - 期刊:
- 影响因子:0
- 作者:
Jack W. D. Halliday;G. Marocco;Konstantin A. Beyer;Charles Heaton;M. Nakatsutsumi;Thomas R. Preston;C. D. Arrowsmith;C. Baehtz;S. Goede;O. Humphries;Alej;ro Laso Garcia;ro;R. Plackett;Pontus Svensson;Georgios Vacalis;Justin Wark;Daniel Wood;U. Zastrau;R. Bingham;I. Shipsey;Subir Sarkar;Gianluca Gregori - 通讯作者:
Gianluca Gregori
Justin Wark的其他文献
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{{ truncateString('Justin Wark', 18)}}的其他基金
Exploiting the European XFEL for a Novel Generation of High Energy Density and Materials Science
利用欧洲 XFEL 实现新一代高能量密度和材料科学
- 批准号:
EP/S025065/1 - 财政年份:2019
- 资助金额:
$ 63.41万 - 项目类别:
Research Grant
Physics of Ignition: Collaboration with the National Ignition Facility: Diagnosing Hot-Spot Mix via X-Ray Spectroscopy
点火物理学:与国家点火装置合作:通过 X 射线光谱诊断热点混合物
- 批准号:
EP/L000849/1 - 财政年份:2013
- 资助金额:
$ 63.41万 - 项目类别:
Research Grant
The Creation and Diagnosis of Solid-State Matter at Multi-TeraPascal Pressures
兆帕斯卡压力下固态物质的产生和诊断
- 批准号:
EP/J017256/1 - 财政年份:2012
- 资助金额:
$ 63.41万 - 项目类别:
Research Grant
X-ray Studies of Exotic Novel States of Solid-Density Matter Created with 4th Generation Light Sources
用第四代光源产生的固体密度物质的奇异新状态的 X 射线研究
- 批准号:
EP/H035877/1 - 财政年份:2010
- 资助金额:
$ 63.41万 - 项目类别:
Research Grant
High Energy Density Plasmas Generated and Probed with Fourth Generation Light Sources
使用第四代光源产生和探测高能量密度等离子体
- 批准号:
EP/F020449/1 - 财政年份:2007
- 资助金额:
$ 63.41万 - 项目类别:
Research Grant
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