论文标题

用于模拟带电粒子光学器件的可访问方法,并提供传输电子显微镜的示例

An Accessible Method for Simulating Charged-Particle Optics, with Examples for Transmission Electron Microscopy

论文作者

McBean, Patrick, Milne, Zachary, Kanthawar, Arjun, O'Byrne, Cameron, Hattar, Khalid, Jones, Lewys

论文摘要

传输电子显微镜(TEM)已成为纳米科学,材料科学和生物学创新的重要工具。尽管这些工具在行业和学术界都广泛使用,但由于该工具的大量购买价格,担心服务合同或停机时间在共享用户设施中无法接受,学者可能会犹豫对光学设置进行重大修改。对于行业中发现的工具,同样,风险回报的余额使实质性修改难以置信。这限制了根本新的光学几何形状的发展,并且由于目标镜头件的规范在很大程度上决定了TEM的性能,因此探索新型设计可能是有价值的。 或者,可以使用有限元分析多物理模拟软件包快速和廉价地分析潜在的镜头设计。有几个可用,但是在这里使用了comsol多物理学,这在许多大学中很容易获得。可以研究对镜头的几何形状或材料的变化,而无需拆卸,重新组装和重新调整TEM柱。在这里,我们展示了一种使用这种“数字双胞胎”方法模拟带电的粒子光学器件的直观且易于访问的方法,希望这鼓励Tem Lens设计和显微镜修改中的新创造性和可持续的基层创新。

The transmission electron microscope (TEM) has become an essential tool for innovation in nanoscience, material science, and biology. Despite these instruments being widely used across both industry and academia, academics may hesitate to propose substantial modifications to the optical setup due to the instrument's significant purchase price, fear of voiding the service contract, or downtime being unacceptable in shared user facilities. For instruments found in industry, similarly the risk-reward balance makes substantive modifications untenable. This limits the development of radically new optical geometries, and with the performance of the TEM largely being dictated by the specification of the objective lens pole-piece, exploring novel designs may be valuable. Alternatively, potential lens designs can be analyzed rapidly and inexpensively using finite element analysis multiphysics simulation packages. Several are available, but here COMSOL Multiphysics was used, which is readily available in many universities. Changes to the geometry or materials of the lens can be investigated without any need to disassemble, reassemble, and realign the TEM column. Here we demonstrate an intuitive and accessible method to simulate charged particle optics using this 'digital twin' approach, with the hope that this encourages new creative and sustainable grassroots innovation in TEM lens design and microscope modification.

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