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Rayleigh-scattering microscopy for tracking and sizing nanoparticles in focused aerosol beams

机译:瑞利散射显微镜用于跟踪和确定聚焦气溶胶束中的纳米粒子

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摘要

Ultra-bright femtosecond X-ray pulses generated by X-ray free-electron lasers (XFELs) can be used to image high-resolution structures without the need for crystallization. For this approach, aerosol injection has been a successful method to deliver 70–2000 nm particles into the XFEL beam efficiently and at low noise. Improving the technique of aerosol sample delivery and extending it to single proteins necessitates quantitative aerosol diagnostics. Here a lab-based technique is introduced for Rayleigh-scattering microscopy allowing us to track and size aerosolized particles down to 40 nm in diameter as they exit the injector. This technique was used to characterize the ‘Uppsala injector’, which is a pioneering and frequently used aerosol sample injector for XFEL single-particle imaging. The particle-beam focus, particle velocities, particle density and injection yield were measured at different operating conditions. It is also shown how high particle densities and good injection yields can be reached for large particles (100–500 nm). It is found that with decreasing particle size, particle densities and injection yields deteriorate, indicating the need for different injection strategies to extend XFEL imaging to smaller targets, such as single proteins. This work demonstrates the power of Rayleigh-scattering microscopy for studying focused aerosol beams quantitatively. It lays the foundation for lab-based injector development and online injection diagnostics for XFEL research. In the future, the technique may also find application in other fields that employ focused aerosol beams, such as mass spectrometry, particle deposition, fuel injection and three-dimensional printing techniques.
机译:由X射线自由电子激光器(XFEL)产生的超明亮飞秒X射线脉冲可用于对高分辨率结构进行成像,而无需进行结晶。对于这种方法,气溶胶注入是一种成功的方法,可以以低噪声有效地将70-2000 nm的粒子传输到XFEL光束中。改进气溶胶样品输送技术并将其扩展到单一蛋白质,需要定量气溶胶诊断。在这里,针对瑞利散射显微镜引入了一种基于实验室的技术,使我们能够跟踪和尺寸确定直径小于40纳米的雾化颗粒离开注射器时的大小。这项技术用于表征“ Uppsala进样器”,它是XFEL单颗粒成像的先驱且经常使用的气溶胶样品进样器。在不同的操作条件下测量了粒子束聚焦,粒子速度,粒子密度和注射产率。还显示了大颗粒(100-500 nm)如何达到高颗粒密度和良好的注射产率。发现随着粒径的减小,颗粒密度和进样产率下降,表明需要不同的进样策略才能将XFEL成像扩展到较小的目标,例如单个蛋白质。这项工作证明了瑞利散射显微镜在定量研究聚焦气溶胶束方面的能力。它为XFEL研究的基于实验室的进样器开发和在线进样诊断奠定了基础。将来,该技术还将在采用聚焦气溶胶束的其他领域中找到应用,例如质谱,粒子沉积,燃料喷射和三维打印技术。

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