THz frequency structures for particle accelerators: Realising ultrafast electron beam manipulation and diagnostics
THz frequency structures for particle accelerators: Realising ultrafast electron beam manipulation and diagnostics
批准号:
ST/Y510002/1
负责人:
Steven Jamison
金额:
$63.97万
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
项目状态:
未结题
起止时间:
2024 至 --
中文摘要
在过去概念验证研究和加速器测试设施演示的基础上,我们将开发一种太赫兹(THz)驱动的电子束加速和偏转系统,该系统可以提供亚皮秒粒子束的阶跃变化和加速器设施的诊断能力。我们的目标是利用我们在激光衍生的高功率太赫兹频率电磁源和太赫兹频率相互作用结构方面的进展和知识,开发一个技术准备就绪的系统TRL-4/5。该系统将纳入经过验证的概念,并在太赫兹源和相互作用结构调整、横向模式转换和源-结构耦合方面取得更多进展。系统性能将在加速器测试设施中进行验证,作为商业开发合作伙伴参与的一步。我们最近开发了用于太赫兹驱动电子束加速的介质衬里矩形波导结构[1,2],以及为其供电的高功率(MW)太赫兹源[3]。我们的结构和源实现了与相对论能量下同向传播的电子束的太赫兹相速度匹配。通过所提出的发展,我们预见介质线波导和激光驱动的太赫兹光源在用于亚皮秒相空间操控电子束和正电子束的集成系统中将被广泛采用。该系统还将在先进的加速器设施中广泛应用于超短、亚100飞秒的电子束的表征。该技术目前在TRL-3上,制定了THz-电子相互作用结构和THz源的技术概念和概念验证演示。这项拟议的研究将寻求在未来与商业合作伙伴进行全面原型开发之前,将技术开发到TRL 5,以及早期原型集成系统。该提案有三个目标:高功率(MW)太赫兹源和相互作用结构的技术和科学开发。具体的开发包括源和结构频率调谐、模式转换和太赫兹发电效率。交付适合加速器设施测试的集成系统,并作为商业开发的途径。建立知识产权,并与业界建立战略合作伙伴关系,以开发我们的太赫兹诊断技术的商业潜力。为太赫兹驱动的电子束偏转而设计的介质衬里波导中的色散。APPL太棒了。让我们来吧。144102(2021年)[2]M.T.希伯德?等人的研究。使用激光产生的太赫兹脉冲加速相对论光束。自然之光。14,755(2020)[3]C.D.W.莫斯利等人。大面积周期性极化的LiNbate晶片堆栈,优化了高能窄带太赫兹发电。光学快报4041、31、(2023)
英文摘要
Building on past proof-of-concept research and accelerator test-facility demonstrations, we will develop a terahertz (THz) driven electron beam acceleration and deflection system that can provide a step-change in the sub-picosecond particle-beam and diagnostic capabilities at accelerator facilities. Our goal is to take our advances and knowledge in laser-derived high-power terahertz frequency electromagnetic sources, and in terahertz-frequency interaction structures, and develop a system at technology readiness TRL-4/5. The system will incorporate proven concepts, with additional advances in THz source and interaction structure tuning, in transverse mode-conversion, and in source-structure coupling. The system performance will be verified at an accelerator test facility as a step towards engagement of commercial development partners.We have recently developed dielectric-lined rectangular waveguide structures for terahertz-driven acceleration of electron beams [1,2], and the high-power (MW) THz sources for powering them [3]. Our structures and sources achieve THz phase velocity matching with co-propagating electron bunches at relativistic energies. Through the proposed developments, we envisage the widespread uptake of dielectric-lined waveguides and laser-driven THz sources within integrated systems for sub-picosecond phase-space manipulation of electron and positron beams. The systems will also find widespread application in the characterisation of ultrashort, sub-100 femtosecond, electron beams at advanced accelerator facilities.The technology is currently at TRL-3 with the technology concept formulated and proof-of-concept demonstrations of THz-electron interaction structures and of THz sources. This proposed research will seek to develop the technology to TRL 5, with an early-stage prototype integrated system, in advance of future full prototype development with commercial partners.This proposal has three objectives:Technical and scientific development of high-power (MW) THz source and interaction structures. Specific developments include source and structure frequency tuning, mode-conversion, and THz generation efficiency.Delivering an integrated system suitable for accelerator facility testing, and as pathway to commercial development.Establishing intellectual property, and forming a strategic partnership with industry to exploit the commercial potential of our THz diagnostic technology.[1] V. Georgiadis, et al. "Dispersion in dielectric-lined waveguides designed for terahertz-driven deflection of electron beams". Appl. Phys. Lett. 118, 144102 (2021)[2] M.T. Hibberd? et al. "Acceleration of relativistic beams using laser-generated terahertz pulses". Nature Photon. 14, 755 (2020)[3] C.D.W. Mosley, et al. "Large-area periodically-poled lithium niobate wafer stacks optimized for high-energy narrowband terahertz generation". Optics Express 4041, 31, (2023)
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会议论文
Cryogenics systems for the development of a THz-driven electron injector and linac
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批准号:ST/X005054/1
-
项目类别:Research Grant
-
资助金额:$13.67万
-
财政年份:2022
-
负责人:Steven Jamison
-
依托单位:
THz driven injection for high-quality high-gradient novel acceleration
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批准号:ST/T002735/1
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项目类别:Research Grant
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资助金额:$16.14万
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财政年份:2019
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负责人:Steven Jamison
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依托单位:
Cockcroft Institute Capital bid 2018
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批准号:ST/S002200/1
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项目类别:Research Grant
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资助金额:$22.17万
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财政年份:2018
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负责人:Steven Jamison
-
依托单位:
国内基金
海外基金
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