Project

General

Profile

Continuous tilt electron diffraction recording » History » Version 25

Anchi Cheng, 11/05/2020 07:55 PM

1 6 Anchi Cheng
h1. Continuous tilt electron diffraction recording use Ceta or Ceta-D camera and TFS scopes
2 1 Anchi Cheng
3 22 Anchi Cheng
Micro-ED involves recording 3D crystal electron diffraction pattern during a continuous stage tilt.  Leginon implementation of this application includes the listed components below and is available by using myami-beta branch until it is officially added to future release.  As is, it is only fully implemented for TFS Ceta or Ceta-D camera.
4 1 Anchi Cheng
5
Since many of the feature required here are not available through Standard or Advanced TEM Scripting from TFS, AutoIt scripts are used in several places.
6
7
h2. Components of the feature
8
9 5 Anchi Cheng
# Diffraction mode TEM instrument
10 8 Anchi Cheng
# Beamstop control: achieved by AutoIt Scripts BeamstopIn and BeamstopOut
11 9 Anchi Cheng
# Rolling-shutter movie acquisition using TIA interface
12 23 Anchi Cheng
# [[TIA raw data conversion|Data conversion]] and upload of the movies into Leginon database and crystallography format
13 4 Anchi Cheng
# [[ MSI-Diffr application ]]
14 11 Anchi Cheng
# [[Camera length calibration]]
15 1 Anchi Cheng
16
h2. Installation (assuming that you've already have Leginon installation).
17
18
# Check that you have access to Advanced TEM Scripting (frame-saving upgrade not needed).
19 25 Anchi Cheng
# Install or set environment to use git branch myami-3.5 ant up or the current myami-beta on TFS microscope with Ceta camera as well as your leginon linux box and webserver for myamiweb.
20 10 Anchi Cheng
# import updated Calibrations application (see [[Steps_involved_in_the_installation]])
21
# import MSI-diffraction  and settings from your_myami/leginon/applications (see general description of [[Steps_involved_in_the_installation]] regarding importing application and additional settings for the application)
22 5 Anchi Cheng
# [[Setup Diffraction mode TEM instrument]]
23 7 Anchi Cheng
# [[Setup Ceta to use Advanced TEM Scripting]]
24 3 Anchi Cheng
# [[AutoIt program and script compilation]]
25 20 Anchi Cheng
# [[Setup movie upload with diffrtransfer.py]]
26 21 Anchi Cheng
27 2 Anchi Cheng
h2. Usage
28
29 15 Anchi Cheng
h3.  Check these before you start:
30 1 Anchi Cheng
31 15 Anchi Cheng
1. Confirm that instruments.cfg is properly set up to use feicam for Ceta camera.  Especially if you use Falcon camera on the same instrument for imaging.
32 18 Anchi Cheng
2. Open TUI. Select and insert BM-Ceta in the camera tab. Confirm that tui_acquire.au3 validation items are set [[Autoit program and script compilation#TUIAcquire-Testing|correctly]]. 
33 19 Anchi Cheng
3. Make sure TIA window is available and the Export Series shortcut is shown as required by [[Autoit program and script compilation#TiaExportSeries-Testing|TiaExportSeries.au3]]
34 15 Anchi Cheng
35 13 Anchi Cheng
h3. Start MSI-DIffr application and assign client as required.
36
37 1 Anchi Cheng
h3. [[Setup df preset]]
38 15 Anchi Cheng
39
h3. Grid atlas collection
40
41
1. Select gr preset to scope, with flucam showing the grid and aperture, draw on the computer screen the location of the centerred small C2 aperture.
42
2. Select a larger C2 aperture for grid atlas collection.
43
3. collect grid atlas.
44
4. Reselect the small C2 aperture.  Make sure it is still centered.
45
46
h3. Queue up potential crystals
47
48
1. Pick square and then pick "hole" for intermediate mag image of potential crystals.  (This is no different from any other MSI application).
49
2. Submit preview targets in "DExposure Targeting" node for a small rotation image and confirm whether it diffracts or not.
50
3. Submit the good crystal positions as acquisition targets into the queue in "DExposure Targeting" node.  No focus target is needed.
51
4. If needed, modify "DExposure" settings for start, range, and speed of the tilt.
52
5. Click "process queue" tool to start collection
53 24 Anchi Cheng
54
h3. Diffraction series naming convension
55
56
The diffraction series is named after the parent image database id and target number in its target list.  For example, 123456_1