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Development of short-pulsed Thulium-doped fibre laser system for fast and deep tissue imaging application

Development of short-pulsed Thulium-doped fibre laser system for fast and deep tissue imaging application
开发用于快速深层组织成像应用的短脉冲掺铥光纤激光系统
批准号:
2601897
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2021
资助国家:
英国
项目状态:
未结题
起止时间:
2021 至 --

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中文摘要
翻译
该博士项目旨在开发新一代超快光纤激光器,以实现非侵入性、高分辨率、快速和深度的3D光学成像,用于人类健康诊断和治疗。该项目是EPSRC大型合作赠款的组成部分,旨在满足我们未来的医疗需求。整个项目团队包括从事激光开发、先进计算成像方法(包括人工智能)、新信号探测器的工作人员,以及来自爱丁堡大学、诺丁汉大学和南安普顿大学的医学博士。为了通过使用光来改进疾病的早期检测(与X射线不同,X射线是一种安全的非电离辐射形式),该技术最终应该提供一种快速、广泛使用的诊断工具,该诊断工具提供改进的护理和未来的成本节约,例如用于国民保健服务(http://www.inlightenus.chem.ed.ac.uk/)This项目将主要集中于研究:硬件:通过使用在脉冲参数(持续时间、重复频率和能量)方面提供极大灵活性的掺Tu光纤来开发工作在波长约2微米的飞秒和皮秒脉冲激光器),允许访问探索和优化成像过程和治疗所需的多个关键波长。软件:还将根据需要研究脉冲激光的集成以及与图像扫描和控制系统的同步,以实现高速和深度成像过程。这将需要与其他致力于开发新成像技术的项目合作伙伴密切互动。概括地说,项目学生所做的工作将结合实验和模拟,以加深我们对激光及其在医学成像中的应用的理解。
英文摘要
This PhD project aims to develop a new generation of ultra-fast fibre lasers tailored to enable non-invasive, high-resolution, fast and deep 3D optical imaging for human health diagnosis and therapy. The project is an integral part of a large collaborative EPSRC grant looking to fulfil our future healthcare needs. The full project team comprises those working on laser development, advanced computation imaging approaches (including AI), new signal detectors as well as medical doctors from the Universities of Edinburgh, Nottingham and Southampton. Aiming to improve early detection of disease by using light (unlike X-rays a safe non-ionising form of radiation) the technology should ultimately provide a fast widely used diagnostic tool offering both improved care and future cost savings e.g. for example for the NHS (http://www.inlightenus.chem.ed.ac.uk/)This project will focus primarily on the research:Hardware: development of femtosecond and picosecond pulsed lasers operating at wavelengths around 2 micron wavelength by using Thulium doped fibres that offer great flexibility in terms of pulse parameters (duration, repetition rate and energy) and, that through nonlinear frequency conversion, allow access to the multiple key wavelengths needed to explore and optimise imaging process and treatment.Software: Integration of the pulsed lasers and synchronization to the image scanning and control systems will also be studied as needed to achieve high speed and deep imaging process. This will require close interaction with other project partners working on the development of novel imaging techniques.In broad terms, the work undertaken by the project student will combine experiments and simulations to further our understanding of lasers and their use in medical imaging.
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  • 批准年份:
    2021
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与SHORT-ROOT和SCARECROW发育途径相关的IDD家族基因的确定和功能研究
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long-TSLP和short-TSLP调控肺成纤维细胞有氧糖酵解在哮喘气道重塑中的作用和机制研究
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    81700034
  • 项目类别:
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  • 批准年份:
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