Division of Materials Sciences and Engineering, Ames Laboratory, Ames, IA 50011, USA
Department of Earth Science and Engineering, Imperial College London, South Kensington Campus, London SW7 2AZ, UK.
J R Soc Interface. 2017 Oct;14(135). doi: 10.1098/rsif.2017.0464.
The mapping of electrostatic potentials and magnetic fields in liquids using electron holography has been considered to be unrealistic. Here, we show that hydrated cells of strain AMB-1 and assemblies of magnetic nanoparticles can be studied using off-axis electron holography in a fluid cell specimen holder within the transmission electron microscope. Considering that the holographic object and reference wave both pass through liquid, the recorded electron holograms show sufficient interference fringe contrast to permit reconstruction of the phase shift of the electron wave and mapping of the magnetic induction from bacterial magnetite nanocrystals. We assess the challenges of performing magnetization reversal experiments using a fluid cell specimen holder, discuss approaches for improving spatial resolution and specimen stability, and outline future perspectives for studying scientific phenomena, ranging from interparticle interactions in liquids and electrical double layers at solid-liquid interfaces to biomineralization and the mapping of electrostatic potentials associated with protein aggregation and folding.
利用电子全息术对液体中的静电势和磁场进行映射被认为是不现实的。在这里,我们展示了使用离轴电子全息术在透射电子显微镜中的液池样品架中可以研究 菌株 AMB-1 的水合细胞和磁性纳米粒子的组装体。考虑到全息物体和参考波都通过液体,记录的电子全息图显示出足够的干涉条纹对比度,允许重建电子波的相移,并映射细菌磁铁矿纳米晶体的磁感应。我们评估了使用液池样品架进行磁化反转实验的挑战,讨论了提高空间分辨率和样品稳定性的方法,并概述了研究从液体中的粒子间相互作用和固液界面的双电层到生物矿化以及与蛋白质聚集和折叠相关的静电势映射等科学现象的未来前景。