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Development of a photophoretic optical guide for femtosecond x-ray diffractive imaging of aerosolized nanoparticles (Conference Presentation)

机译:气雾化纳米粒子飞秒X射线衍射成像的光导技术开发(会议演示)

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摘要

Optical trapping of light-absorbing particles in a gas environment is usually dominated by laser-induced thermal or photophoretic forces, which can be orders of magnitude higher than the force due to radiation pressure. Particle guiding with photophoretic forces over large distances in open air was recently realised by an optical pipeline, formed by a vortex laser beam of doughnut-like intensity profile, with a high-intensity ring of light that surrounds a dark core. We are adapting the optical pipeline concept for the purpose of guiding aerosolized particles into the intense focus of a x-ray free-electron laser (XFEL), in order to enable high-efficiency femtosecond x-ray coherent diffractive imaging (CDI). XFEL-based CDI allows single-shot nanometer-resolution imaging, and multi-shot Angstrom-resolution tomography in the case of reproducible nanoparticles, at a time resolution better than 10 femtoseconds. Remarkably, by imaging at timescales shorter than atomic motion, the crucial resolution-limiting effects of radiation damage may be overcome for radiation-sensitive targets such as viruses and biomolecules. Following on our previous work, we are developing an optical first-order Bessel-like beam with a variable-diameter hollow core and an axial-to-lateral aspect ratio up to ~2000, that can be used to guide particles with a spatial precision of less than a few µm over centimetre-long distances. We present the ways to control the beam divergence aiming to focus the stream of particles by thermal forces and forces of radiation pressure, analyse the forces acting on the particle in the beam, and uncover the beam structure and intensity to apply for a real-time experiment with XFEL. © (2016) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
机译:气体环境中吸光颗粒的光学捕获通常由激光诱导的热力或光动力主导,该力可能比辐射压力产生的力高几个数量级。最近,通过光导管实现了在远距离在室外用长距离的光导引导粒子,该光导管是由像甜甜圈一样的强度分布的涡旋激光束形成的,高强度的光环围绕着暗核。我们正在调整光管道概念,以将雾化的粒子引导到X射线自由电子激光器(XFEL)的强烈焦点中,以实现高效的飞秒X射线相干衍射成像(CDI)。基于XFEL的CDI允许在可再现纳米粒子的情况下进行单次纳米分辨率成像和多次Angstrom分辨率层析成像,其时间分辨率优于10飞秒。值得注意的是,通过以比原子运动更短的时间尺度成像,对于诸如病毒和生物分子等对辐射敏感的目标,可以克服辐射损伤的关键分辨率限制效应。在我们之前的工作之后,我们正在开发具有可变直径空心的一阶贝塞尔光学光束,其轴向/横向长宽比高达〜2000,可用于以空间精度引导粒子在厘米长的距离上小于几微米。我们提出了控制光束发散的方法,旨在通过热力和辐射压力将粒子流聚焦,分析作用在光束中的粒子的力,并揭示光束结构和强度以进行实时应用使用XFEL进行实验。 ©(2016)版权,光电仪器工程师协会(SPIE)。摘要的下载仅允许个人使用。

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