Department of Physics, Northern Illinois University, DeKalb, IL 60115, USA.
School of Physics and Astronomy, Rochester Institute of Technology, Rochester, NY 14623, USA.
J Synchrotron Radiat. 2021 Mar 1;28(Pt 2):490-498. doi: 10.1107/S1600577521000035. Epub 2021 Jan 28.
An experimental setup to measure X-ray photon correlation spectroscopy during continuous sample translation is presented and its effectiveness as a means to avoid sample damage in dynamics studies of protein diffusion is evaluated. X-ray damage from focused coherent synchrotron radiation remains below tolerable levels as long as the sample is translated through the beam sufficiently quickly. Here it is shown that it is possible to separate sample dynamics from the effects associated with the transit of the sample through the beam. By varying the sample translation rate, the damage threshold level, D = 1.8 kGy, for when beam damage begins to modify the dynamics under the conditions used, is also determined. Signal-to-noise ratios, R ≥ 20, are obtained down to the shortest delay times of 20 µs. The applicability of this method of data collection to the next generation of multi-bend achromat synchrotron sources is discussed and it is shown that sub-microsecond dynamics should be obtainable on protein samples.
介绍了一种用于在连续样品平移过程中测量 X 射线光子相关光谱的实验装置,并评估了其作为避免蛋白质扩散动力学研究中样品损坏的一种手段的有效性。只要样品以足够快的速度通过光束,聚焦相干同步辐射的 X 射线损伤仍低于可容忍的水平。这里表明,有可能将样品动力学与与样品通过光束的传输相关的影响分离开来。通过改变样品平移速度,可以确定当光束损伤开始在使用的条件下改变动力学时的损伤阈值水平 D = 1.8 kGy。信噪比 R≥20,在最短的延迟时间 20 μs 下也可以获得。讨论了这种数据采集方法对下一代多弯消色差同步辐射源的适用性,并表明应该可以在蛋白质样品上获得亚微秒级的动力学。