Schmidt Matthias, Byrne James M, Maasilta Ilari J
Helmholtz-Centre for Environmental Research GmbH - UFZ, Permoserstraße 15, 04318 Leipzig, Germany.
School of Earth Sciences, University of Bristol, Wills Memorial Building, Queens Road, Bristol BS8 1RJ, United Kingdom.
Beilstein J Nanotechnol. 2021 Jan 4;12:1-23. doi: 10.3762/bjnano.12.1. eCollection 2021.
Scanning helium-ion microscopy (HIM) is an imaging technique with sub-nanometre resolution and is a powerful tool to resolve some of the tiniest structures in biology. In many aspects, the HIM resembles a field-emission scanning electron microscope (FE-SEM), but the use of helium ions rather than electrons provides several advantages, including higher surface sensitivity, larger depth of field, and a straightforward charge-compensating electron flood gun, which enables imaging of non-conductive samples, rendering HIM a promising high-resolution imaging technique for biological samples. Starting with studies focused on medical research, the last decade has seen some particularly spectacular high-resolution images in studies focused on plants, microbiology, virology, and geomicrobiology. However, HIM is not just an imaging technique. The ability to use the instrument for milling biological objects as small as viruses offers unique opportunities which are not possible with more conventional focused ion beams, such as gallium. Several pioneering technical developments, such as methods to couple secondary ion mass spectrometry (SIMS) or ionoluminescence with the HIM, also offer the possibility for new and exciting research on biological materials. In this review, we present a comprehensive overview of almost all currently published literature which has demonstrated the application of HIM for imaging of biological specimens. We also discuss some technical features of this unique type of instrument and highlight some of the new advances which will likely become more widely used in the years to come.
扫描氦离子显微镜(HIM)是一种具有亚纳米分辨率的成像技术,是解析生物学中一些最微小结构的有力工具。在许多方面,HIM类似于场发射扫描电子显微镜(FE-SEM),但使用氦离子而非电子具有若干优势,包括更高的表面灵敏度、更大的景深以及直接的电荷补偿电子 flood 枪,这使得能够对非导电样品进行成像,使 HIM成为一种用于生物样品的有前景的高分辨率成像技术。从专注于医学研究的研究开始,在过去十年中,在专注于植物、微生物学、病毒学和地球微生物学的研究中出现了一些特别壮观的高分辨率图像。然而,HIM不仅仅是一种成像技术。使用该仪器对小至病毒的生物物体进行铣削的能力提供了独特的机会,这是使用更传统的聚焦离子束(如镓离子束)所无法实现的。一些开创性的技术发展,如将二次离子质谱(SIMS)或离子发光与 HIM 相结合的方法,也为生物材料的新的激动人心的研究提供了可能性。在本综述中,我们全面概述了几乎所有目前已发表的证明 HIM 在生物标本成像中的应用的文献。我们还讨论了这种独特类型仪器的一些技术特点,并强调了一些可能在未来几年更广泛应用的新进展。