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采用高精度压电扫描仪的高速光栅扫描同步辐射串行微晶学

High-speed raster-scanning synchrotron serial microcrystallography with a high-precision piezo-scanner.

作者信息

Gao Yuan, Xu Weihe, Shi Wuxian, Soares Alexei, Jakoncic Jean, Myers Stuart, Martins Bruno, Skinner John, Liu Qun, Bernstein Herbert, McSweeney Sean, Nazaretski Evgeny, Fuchs Martin R

机构信息

Photon Sciences, Brookhaven National Laboratory, Upton, NY 11973, USA.

出版信息

J Synchrotron Radiat. 2018 Sep 1;25(Pt 5):1362-1370. doi: 10.1107/S1600577518010354. Epub 2018 Aug 23.

Abstract

The Frontier Microfocus Macromolecular Crystallography (FMX) beamline at the National Synchrotron Light Source II with its 1 µm beam size and photon flux of 3 × 10 photons s at a photon energy of 12.66 keV has reached unprecedented dose rates for a structural biology beamline. The high dose rate presents a great advantage for serial microcrystallography in cutting measurement time from hours to minutes. To provide the instrumentation basis for such measurements at the full flux of the FMX beamline, a high-speed, high-precision goniometer based on a unique XYZ piezo positioner has been designed and constructed. The piezo-based goniometer is able to achieve sub-100 nm raster-scanning precision at over 10 grid-linepairs s frequency for fly scans of a 200 µm-wide raster. The performance of the scanner in both laboratory and serial crystallography measurements up to the maximum frame rate of 750 Hz of the Eiger 16M's 4M region-of-interest mode has been verified in this work. This unprecedented experimental speed significantly reduces serial-crystallography data collection time at synchrotrons, allowing utilization of the full brightness of the emerging synchrotron radiation facilities.

摘要

美国国家同步辐射光源II的前沿微聚焦大分子晶体学(FMX)光束线,其光束尺寸为1微米,在光子能量为12.66千电子伏特时的光子通量为3×10个光子/秒,已达到结构生物学光束线前所未有的剂量率。高剂量率对于串行微晶学而言具有极大优势,可将测量时间从数小时缩短至数分钟。为在FMX光束线的全通量下进行此类测量提供仪器基础,已设计并构建了一种基于独特XYZ压电定位器的高速、高精度测角仪。基于压电的测角仪能够在超过10对线/秒的频率下,对200微米宽的光栅进行飞扫描时实现低于100纳米的光栅扫描精度。在这项工作中,已验证了该扫描仪在实验室测量以及串行晶体学测量中的性能,测量最高可达Eiger 16M的4M感兴趣区域模式的750赫兹最大帧率。这种前所未有的实验速度显著缩短了同步加速器上串行晶体学数据的收集时间,使得能够充分利用新兴同步辐射设施的全部亮度。

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