Biological imaging with 4D ultrafast electron microscopy

David J. Flannigan, Brett Barwick, Ahmed H. Zewail

Research output: Chapter in Book/Report/Conference proceedingChapter

Abstract

Advances in the imaging of biological structures with transmission electron microscopy continue to reveal information at the nanometer length scale and below. The images obtained are static, i.e., time-averaged over seconds, and the weak contrast is usually enhanced through sophisticated specimen preparation techniques and/or improvements in electron optics and methodologies. Here we report the application of the technique of photon-induced near-field electron microscopy (PINEM) to imaging of biological specimens with femtosecond (fs) temporal resolution. In PINEM, the biological structure is exposed to single-electron packets and simultaneously irradiated with fs laser pulses that are coincident with the electron pulses in space and time. By electron energy-filtering those electrons that gained photon energies, the contrast is enhanced only at the surface of the structures involved. Thismethod is demonstrated here in imaging of protein vesicles and whole cells of Escherichia coli, both are not absorbing the photon energy, and both are of low-Z contrast. It is also shown that the spatial location of contrast enhancement can be controlled via laser polarization, time resolution, and tomographic tilting. The high-magnification PINEM imaging provides the nanometer scale and the fs temporal resolution. The potential of applications is discussed and includes the study of antibodies and immunolabeling within the cell.

Original languageEnglish (US)
Title of host publication4d Visualization of Matter
Subtitle of host publicationRecent Collected Works of Ahmed H Zewail, Nobel Laureate
PublisherWorld Scientific Publishing Co.
Pages263-267
Number of pages5
ISBN (Electronic)9781783265060
ISBN (Print)9781783265046
DOIs
StatePublished - Jan 1 2014
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2014 by Imperial College Press.

Keywords

  • Biostructure
  • Evanescent
  • Nanoscale

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