控制试样的方向和环境。

J N Turner, U Valdrè, A Fukami
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引用次数: 6

摘要

电子显微镜在各种研究领域的广泛应用对仪器的各种组成部分提出了不断扩大的要求。原位标本操作就是这样一种需求,并且通常对实验的成功至关重要。试样取向的控制是最常见的操作,但各种其他物理和化学参数的控制也可能是重要的。温度、气体和/或液体环境以及机械操作都是例子。在真空系统内的强磁场中操作的小型装置(占用几cm3)中控制和改变这些参数通常是一个相当大的挑战。这也必须在极端的稳定性下完成:至少与显微镜的分辨率极限一样好。舞台性能的优化往往牺牲光学性能,反之亦然。下一代物镜和标本台正在协同设计中:这种方法将导致一个改进的原位实验室,用最佳光学观察。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Control of specimen orientation and environment.

Application of electron microscopy in a wide variety of fields of investigation has placed ever-expanding demands on the various components of the instrument. In situ specimen manipulation is one such demand and can often be critical to the success of an experiment. Control of specimen orientation is the most common manipulation, but control of a variety of other physical and chemical parameters may also be important. Temperature, gaseous and/or liquid environment, and mechanical operations are examples. Control and variation of these parameters in a small device (occupying a few cm3) operated in a strong magnetic field inside a vacuum system is often a considerable challenge. This must also be done at extreme stability: at least as good as the resolution limit of the microscope. Optimization of stage performance is too often sacrificed for optical performance or vice versa. The next generation of objective lenses and specimen stages are being designed in concert: an approach which should lead to an improved in situ laboratory, observed with optimum optics.

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