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Tuneable in-situ nanoCT workflow using FIB/SEM.

Paulína Barabasová1, Veronika Kováčová2, Pavel Stejskal1

  • 1Thermo Fisher Scientific, Vlastimila Pecha 12, 62700 Brno, Czech Republic.

Ultramicroscopy
|April 27, 2021
PubMed
Summary

A novel 3D X-ray imaging method integrated into a FIB-SEM microscope achieves nanometer resolution. This technique enables detailed imaging of both semiconductor and biological samples with unprecedented clarity.

Keywords:
3D reconstructionComputed tomographyTimepix detectorX-ray absorptionelectron microscoperadiograph

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Area of Science:

  • Materials Science
  • Microscopy
  • Imaging Technology

Background:

  • Standard computed tomography (CT) lacks the resolution for nanoscale imaging.
  • Existing FIB-SEM systems are not optimized for integrated 3D X-ray imaging workflows.

Purpose of the Study:

  • To develop and validate a new 3D X-ray imaging method within a FIB-SEM system.
  • To achieve nanoscale resolution for imaging diverse sample types.

Main Methods:

  • Integration of a TEM-like specimen stage (CompuStage) with in-lens STEM detection.
  • Utilizing a nanomanipulator (EasyLift) for in-situ sample transfer and a pixelated Timepix X-ray detector.
  • Employing dual rotational movements (α-tilt and β-tilt) for circular CT scans and in-situ target/sample preparation.
  • Adapting standard microCT reconstruction algorithms for nanoCT data.

Main Results:

  • Achieved ultimate resolution in the tens of nanometers for semiconductor samples using titanium and tungsten targets.
  • Demonstrated applicability to life sciences with a silver target, resolving structures in mouse brain and bone canaliculi.
  • Noise-free radiography with energy filtration provided high-quality data.

Conclusions:

  • The proposed FIB-SEM integrated 3D X-ray imaging method offers an unprecedented workflow for nanoscale imaging.
  • The system's flexibility and in-situ capabilities allow for precise control and preparation of samples and targets.
  • This technique opens new possibilities for high-resolution 3D structural analysis in materials science and life sciences.