This document roughly describes the operation of the femtosecond laser system and ultrafast electron diffraction (UED) setup of the R. J. Dwayne Miller group in room MP011 of the McLennan Physical Laboratories at the University of Toronto. It was prepared by Drs. Lai Chung Liu, Henrike M. Müller-Werkmeister, and Yifeng Jiang; last updated in February 2015. Comments may be address by posting in Issues or by contacting Dr. Samansa Maneshi or any of the current students of the group.
- Vent the sample vacuum chamber.
- Measure the pump and probe path lengths.
- Setup pump laser fluence.
- Setup pump laser spot size.
- Install in situ streak camera.
- Install a TEM mesh in the sample holder for pump–probe temporal overlapping.
- Setup the pump beam for the streak camera.
- Pump down the sample vacuum chamber.
- (Cool the sample.)
- Find the optimal RF power and phase for electron pulse compression.
- Set pump–probe spatial overlap.
- Set pump–probe temporal overlap using the mesh signal.
For reference, the experimental methods section of the theses by Meng Gao, Hubert Jean-Ruel, Yifeng Jiang, and Lai Chung Liu.
Settings | Value |
---|---|
Static IP Address | 128.100.148.66 |
DNS Addresses | 128.100.75.10, 128.100.75.99 |
Gateway Address | 128.100.148.1 |
MAC Address | 00-50-04-A3-6E-AB |
Subnet Mask | 255.255.255.0 |
IP Address | Device Name | MAC Address | Description |
---|---|---|---|
192.168.0.1 | 64-70-02-A5-3E-34 | TP-Link wireless router | |
192.168.0.100 – 192.168.0.199 | Reserved for wireless devices | ||
192.168.0.200 | Lagavulin | C0-3F-D5-B3-0C-79 | Main control PC |
192.168.0.201 | Talisker | 00-22-14-D4-BD-51 | Server PC |
192.168.0.202 | Oban | 00-17-31-24-8E-D2 | Laser monitoring PC |
192.168.0.203 | 00-50-C2-29-58-0C | New Focus ethernet controller (model 8752) for beam-pointing picomotors |
Port | Device |
---|---|
COM1 | Sample x,y,z translation stages (on backend serial port) |
COM6 | Shutter 1 (blue, on P1) |
COM8 | Time delay translation stage (on P5) |
COM9 | RS40 rotation stage (on separate serial-to-USB converter) |
COM10 | Shutter 2 (red, on P2) |
COM12 | Shutter 3 (yellow, on P4) |
COM18 | Electrometer (on P6) |
COM25 | High voltage power supply (on P3) |
- Switch on chillers.
- Switch on the main power bar and refrigeration of chiller (Neslab RTE-100) for REGEN Pockels cell.
- Switch on the chiller (Neslab Merlin M25) for REGEN pump laser.
- Check the REGEN chiller water temperature setting (20 C).
- Check the Micra chiller status (21 C).
- Check the CCD camera chiller status (20 C).
- Check that the water flow rate of the REGEN pockels chiller is about 2.5 gal/min.
- Check that the water flow rate of the REGEN pump laser chiller is about 10 gal/hr.
- Switch on oscillator.
- Turn the key (from standby to on) of Micra power supply controller (PSC).
- Open Micra shutter using Micra PSC.
- Wait about 5 min.
- Check for Micra power ~200 mW and Verdi power ~ 4.5 mW on PSC indicator.
- Enable automodelocking on Micra PSC by pressing
Menu Select
3 times. - Return to original status screen of Micra PSC by pressing
menu exit
2 times. - Wait about 1 min.
- Check for
automodelocked
status on Micra PSC indicator. - Expect Micra power to be about 290 mW.
- Wake up the Micra Synchro-Lock laptop by pressing its power button.
- Press
Go Left
orGo Right
in stepper motor controls to reduce frequency difference. - Make sure that
Galvo voltage
is about 0 V andP/D Det Slave
is greater than 1.0. - Enable fundamental and harmonic frequency lock by selecting
fund. enable
andharm. enable
in Coherent Synchro-Lock program interface; if unable to lock, modify value ofLoop Gain
.
- Switch on ND:YLF pump laser.
- Switch on power of IntraAction Q-switch driver using back panel push button.
- Switch on power of Xantrex power supply of Regen pump laser.
- Set output of Xantrex power supply to 15.3 V and 16.2 A; adjust both voltage and current dials whichever is limiting.
- Switch on and control the REGEN.
- Switch on power of oscilloscope positioned over REGEN.
- Slide on power switch of photodiode monitoring REGEN output power.
- Switch on power and HV on Regen controller (Clark-MXR DT-505).
- Turn shutter key of REGEN to
on
position.
- Optimize overlap for amplification step by looking at oscilloscope (3 pulses and 4th is coupled out); aim for it to look like entering saturation but not more.
- Adjust exit mirror of ND:YLF pump laser to optimize laser output by maximizing 3rd pulse to be slightly less than the 4th pulse on the oscilloscope; rotate oscilloscope 180 deg for convenience.
- Adjust exit mirror of oscillator (input into stretcher) to further optimize laser output.
- Measure laser output power.
- Use the power meter(Coherent PowerMax, head PM10) to measure output laser power of the compressor (~52 mW at 100 Hz in the current conditions); ensure that power meter is always charged.
- Write down Micra power, REGEN pump current, and output power in notebook.
- Turn on control software.
- On the Server computer (Talisker): start the beam-pointing camera servers (
PGRFlyCapServer_cam0/1.exe
) in thelaser monitor
directory. - On the beam control computer (Oban): start beam-pointing Matlab program
FindBeamWidthInImages.m
in theC:/BeamMonitor
directory; clickGrab Image
;Load Settings
, andGrab Image
again; setMaxMove
threshold to 1000; enableRestore H
andRestore V
; check measured beam position if restored to reference; setMaxMove
threshold back to 100; clickStart Automatic Grabbing
; enableAuto H
andAuto V
; if cameras or mirrors are moved, clickAutoCalibrateMatrix
and wait about 5 min for re-calibration.
- Properly shut off HV power supply, RF compression system, and CCD camera.
- Close completely the isolation gate valve of the electron gun.
- Close the roughing pump valve which is located on top of the sample chamber.
- Press the power button of the turbopump controller to put the turbopump in standby mode.
- Check actual rotation speed by using the arrow buttons of the turbopump controller and switching to the
act rotspd
channel (309) . - Wait about 10 min for turbopump rotation speed to drop from 1000 Hz to 0 Hz.
- Make sure N₂ cylinder valves are all closed.
- Use controller arrow buttons to switch to
vent mode
channel (030). - Press both arrow buttons simultaneously to change
vent mode
from1
(vent valve closed) to2
(vent valve open). - Open the valves of the N₂ cylinder.
- Open slowly regulator valve until air flow reaches about 5 psi.
- Use a torque wrench to remove some of the screws of the main access flange; expect to hear a hiss caused by positive chamber pressure.
- Close the valves of the N₂ cylinder.
- Change turbopump
vent mode
from2
back to1
. - Remove remaining screws of main flange.
- Properly shut off HV power supply, RF compression system, and CCD camera.
- Close completely the isolation gate valve of the electron gun.
- Close the roughing pump valve which is located on top of the sample chamber.
- Close the valve of the gun chamber roughing pump located below the gun chamber turbopump by turning the knob until the solid line is horizontal.
- Press the power button of the sample chamber turbopump controller to put the sample chamber turbopump in standby mode.
- Press the power button of the gun chamber turbopump controller to put the gun chamber turbopump in standby mode.
- Wait about 20 min for the rotation speed of both turbopumps rotation to drop to 0 Hz.
- Wait for both chamber pressures to be between 10⁻³ and 10⁻² mbar.
- Open completely the isolation gate valve of the electron gun.
- Wait for the pressure between both chambers to be equalize.
- Clean the knife edge of the main access flange and the new copper gasket with solvent.
- Install gasket-flange onto sample chamber.
- Install screws in their numerical order.
- Hand-tighten the screws.
- Check turbopump
vent mode
to be1
. - Open slowly roughing pump valve; expect throttling noise from pump.
- Wait 15 mins for sample chamber pressure to be about 10 mbar.
- Switch on the power of the sample chamber turbopump.
- Check if the chamber pressure drops below 10⁻⁴ mbar before turbopump frequency reaches 1 kHz; troubleshoot otherwise.
- Wait about 6 hrs for pressure to be less than 10⁻⁷ mbar.
- Check turbopump motor current as a measure of the efficiency of the roughing pump; 0.50–0.70 A (sample chamber) or 0.20–0.30 A (electron gun chamber).
- Make sure that the RF voltage is 0 V by turning the RF power dial clockwise fully.
- Make sure that the vacuum pressure of the sample chamber is less than 10⁻⁷ mbar.
- On the control computer (Lagavulin): Start HV control Matlab program (HVControl.m), directory D:/Matlab.Routines/HVControl/, Set
Desired Voltage
to 94.1 kV, EnableAllow Arc Control?
andAuto Conditioning
. - Switch on the power of PLL chiller (IsoTemp 1016S)
- Switch on the power of vacuum motors using power bar behind HV power supply
- Switch on the power and
HV
output of HV power supply - On the Server Computer (Talisker), switch on the power of RF cavity chiller (Neslab RTE-7) using
ON
command on chiller server program (multilogger.bat
) or manual press the power button (works only if the chiller is not computer-controlled; the chiller can be switched off using either the computer or the button). - Switch on the power of oscilloscope above PLL.
- Switch on the power of RF waveform generator (Agilent 33220A).
- Switch on the power of PLL.
- Turn the RF attenuator dial clockwise to set RF voltage to 0.
- Turn the mains power key of RF amplifier from
0
to1
. - Check that Micra is modelocked.
- Press
Latch reset
button on theRF Interlock and Timing
panel to reset the RF interlock. - Turn RF attenuator dial such that the purple output RF waveform matches the purple reference line.
- Turn
RF OFF
latch button to reset RF interlock. - Switch on the power of the CCD camera.
- Switch on the power of the magnetic lens power supply.
- Start the camera software.
- Start the camera software (SI Image SGL).
- Select
800-402.set
and clickOK
. - Set camera cooler to
ON
. - Update date of auto-save directory.
- In configuration tab, set
Shutter Delay
to10 ms
. - Start TCP/IP server in
Operate
Menu.
- Start the motion control program.
- Double click and run Motion Control program at
D:\Code\Sample.Motion.Control\Experiment_Control.vbp
. - Click
Connect
in theCamera
menu. - Select
ROI
inSI CCD
subsection. - Modify the camera ROI settings appropriately (Serial, SLen, Parallel, PLen): small ROI = (950,124,650,200), *medium ROI = (750,324,425,600), large ROI = (500,574,200,1000).
- Initialize translation stages.
- Click
Initialize
in theHorizontal (Indexer 1)
subsection. - Set
Operation Mode
toDestination
andReverse
(for the horizontal stage) orDown
(for the vertical stage); directions of the sample chamber translation stage:Reverse
= towards the lab door (negative encoder value, right on screen),Down
= towards the lab floor (positive encoder value, up on screen). - Set both
Destination
values to be100000
. - Click
Go
. - Wait for
motor idle
status; make sure that the stages do not hit the chamber walls. - Click
Reset
to reset the stage encoders to 0. - Click
Initialize
in theStage (Indexer 4)
subsection.
- Manually open the THG shutter (Uniblitz).
- Put the powermeter head after the last mirror.
- Disable
Avg
on the powermeter; pressDown
to reduce the indicator range. - Rotate the polarizer to maximize photocathode pump power (about 200 uJ).
- Turn the control dial of the compressor to further maximize pump power (about 600 uJ); this dial changes the stage position of the compressor grating.
- Manually close the THG shutter.
- Remove the powermeter head.
- Change to small ROI using the motion control program.
- Enable
continuous acquisition
in the camera program. - Use the cursor to enclose the electron beam on screen in a red box within the camera program.
- Adjust the position of the THG focusing lens to find the local symmetric maximum of the electron image mean value.
- Make sure that camera sensor has not saturated.
- Start
ElectronBeamCal
in theAutomation
menu of the motion control program. - Uncheck
Log result
. - Check
Track number
andContinuous acquire
. - In case of error (e.g. Ebeam directory not found), check the date settings in the camera program and restart
ElectronBeamCal
.
- Switch off the output of the magnetic lens power supply.
- Go to the pinhole position with the motion control program.
- Change to small ROI on the motion control program.
- Reduce to minimum pump laser power.
- Change exposure time to single shot mode (about 0.005 s at 100 Hz) in the camera program.
- Uncheck
Background
inImage Correction/Autocorrection
menu of the camera program. - Uncheck
Auto Z-scale
in the camera program. - Enable
Continuous acquire
on the camera program. - Use
Displacement
mode of the motion control program to get a centered electron beam spot. - Set laser repetition rate to 1 kHz (?).
- Open the red and blue shutters using the motion control program.
- Align the sample chamber camera, next to the main CCD camera, to get a good view of the pump laser beam spot.
- Adjust the lens at the pump laser window to optimize the laser spot brightness.
- Close red and blue shutters using the motion control program.
- Return the laser repetition rate to the previous setting (?).
To-do: Describe what each channel (A,B, etc.) on the pulse generator (Quantum Composers 9520 Series) means.
- Chillers: Water needs to be changed; add anti-algae product. Every 6 months, currently set for February and August.
- Big Thermo Fischer chiller: Change filter every 3–4 years, depending on the chiller flow rate (2–3 gal/min).
- High voltage power supply: Replace insulating oil every 2 years.
- Vacuum pumps: Change oil as needed or whenever the turbopump current is not ok; roughing pumps currently ok.
- Laser system: Clean the oscillator if modelocking is off or power is too low; clean the mirrors for the pump light in the REGEN every 2–4 weeks.
- Chemicals: Dispose of bin contents whenever full (7th floor of the Lash Miller building).
Problem | Solution |
---|---|
REGEN output peak selection is suboptimal | Press and check contacts of the delay 3 control dial of Pockels cell controller |
Artifacts (checkered streaks) on acquired CCD image | Restart camera controller and maybe the laser system |
PP30 stages unresponsive to control program | Restart PP30 power bar |
Sample stage unresponsive to control program | 'Jiggle' gently the cables of the Parker sample stage controllers |
Frequent arcing in the electron gun chamber | Carefully recondition the chamber using a low voltage ramp rate |
Beam-pointing program unresponsive | Restart MATLAB |