A pnCCD-based, fast direct single electron imaging camera for TEM and STEM

扫描透射电子显微镜 像素 探测器 光学 物理 衍射 图像传感器 灵敏度(控制系统) 电子 材料科学 毫秒 帧速率 透射电子显微镜 量子力学 天文 电子工程 工程类
作者
H. Ryll,Martin Simson,Robert Hartmann,P. Holl,Martin Huth,Sebastian Ihle,Yukihito Kondo,Paul G. Kotula,A. Liebel,Knut Müller‐Caspary,Andreas Rosenauer,Ryusuke Sagawa,Julia Schmidt,H. Soltau,L. Strüder
出处
期刊:Journal of Instrumentation [Institute of Physics]
卷期号:11 (04): P04006-P04006 被引量:108
标识
DOI:10.1088/1748-0221/11/04/p04006
摘要

We report on a new camera that is based on a pnCCD sensor for applications in scanning transmission electron microscopy. Emerging new microscopy techniques demand improved detectors with regards to readout rate, sensitivity and radiation hardness, especially in scanning mode. The pnCCD is a 2D imaging sensor that meets these requirements. Its intrinsic radiation hardness permits direct detection of electrons. The pnCCD is read out at a rate of 1,150 frames per second with an image area of 264 x 264 pixel. In binning or windowing modes, the readout rate is increased almost linearly, for example to 4000 frames per second at 4× binning (264 x 66 pixel). Single electrons with energies from 300 keV down to 5 keV can be distinguished due to the high sensitivity of the detector. Three applications in scanning transmission electron microscopy are highlighted to demonstrate that the pnCCD satisfies experimental requirements, especially fast recording of 2D images. In the first application, 65536 2D diffraction patterns were recorded in 70 s. STEM images corresponding to intensities of various diffraction peaks were reconstructed. For the second application, the microscope was operated in a Lorentz-like mode. Magnetic domains were imaged in an area of 256 x 256 sample points in less than 37 seconds for a total of 65536 images each with 264 x 132 pixels. Due to information provided by the two-dimensional images, not only the amplitude but also the direction of the magnetic field could be determined. In the third application, millisecond images of a semiconductor nanostructure were recorded to determine the lattice strain in the sample. A speed-up in measurement time by a factor of 200 could be achieved compared to a previously used camera system.
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