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Akemeier, Dieter: Nano-prototyping and 3D bioimaging with dual beam microscopy. 2012
Inhalt
1 Introduction
2 Dual beam microscopes
2.1 Scanning electron microscope column
2.2 Focused ion beam
2.3 Detectors
2.4 Gas injection systems
2.4.1 Direct write lithography
2.5 Helios NanoLab 600i
3 Scripting - Automated structuring with dual beam microscopes
3.1 Basic scripting commands
3.2 Structure variables and loops
4 Small scale production of high precision optical components
4.1 Misalignment in multi colour fluorescence imaging
4.1.1 Calibration samples
4.1.2 Nanotextured calibration samples
4.2 Nanoaperture prototyping and production
4.2.1 Design
4.2.2 Materials and substrate preparation
4.2.3 Focused ion beam milling parameters
4.2.4 Scripting automatisation
4.2.5 Stitching routine
4.2.6 Process runtime improvements
4.2.7 Production interface
4.3 Results
4.3.1 Structuring results
4.3.2 Focused ion beam automation
4.3.3 Calibration using nanostructured shutters
4.4 Summary and Outlook
5 Focused ion beam structured nanoantennas for higher harmonic generation
5.1 Theoretical Background
5.1.1 Basic light matter interactions
5.1.2 Higher harmonic generation with intense laser fields
5.2 Designing optical antennas for higher harmonic generation
5.2.1 Thermal stability
5.2.2 Materials for optical antennas
5.2.3 Sticking layers and substrate material
5.3 Focused ion beam structuring of optical antennas
5.3.1 Enhanced edge milling
5.3.2 Proximity Effect
5.3.3 Redeposition of material
5.3.4 Effects of scan direction
5.3.5 Script controlled patterning
5.3.6 Opening angle of the bow tie elements
5.3.7 Detailed patterning process
5.3.8 Effect of beam astigmatism
5.3.9 Automatisation
5.4 Results
5.4.1 Automation results
5.4.2 Higher harmonic measurements of focused ion beam produced nanoantennas
5.4.3 Thermal stability measurements
5.4.4 Third and higher harmonic generation
5.5 Summary and Outlook
6 Focused ion beam tomography of a mouse kidney glomerulus
6.1 Background
6.1.1 Kidney histology
6.1.2 Approaches to analyse and reconstruct renal tissue
6.1.3 Tomography with a dual beam microscope
6.1.4 Resolution window
6.2 3D reconstruction of a mouse kidney glomerulus
6.2.1 Tissue preparation
6.2.2 Micromachining and identification of glomeruli
6.2.3 Serial sectioning and imaging
6.2.4 Image processing
6.3 Results
6.3.1 Reconstruction of the overview stack
6.3.2 Reconstruction of the high magnification stack
6.3.3 Biological interpretation of the datasets
6.4 Summary and Outlook
7 Outlook
Bibliography
A Publications and Conferences