Difference between revisions of "Diamond Radiator Thinning Using an Excimer Laser"
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==Passivation for ArF== | ==Passivation for ArF== | ||
Revision as of 02:36, 13 December 2016
| Important Documents |
| UConn Laser Safety Manual |
| Excimer laser S.O.P. |
| Oxford GP 2000 User Manual |
Laser Thinning of Diamond
Laser ablation will be used to thin the diamond chip to the precise thickness required for the radiator. An older excimer laser offered by a local AMO group will be converted from a XeCl 308 nm beam to the required ArF 193 nm beam. Although the system was last used 10 years ago, it was left in a fully functioning state and was properly flushed upon decomposition. There may also be another unused excimer laser that can be used for parts in case any repair is needed. I have included a link to my current Lab Journal which I plan to update bi weekly.
Excimer Laser
Specs on EMG 101 MSC excimer laser.
Gas Purification System
specs on GP2000
Laser Beamline
laser optics
Focal Study
Ablation Rate
ablation rate
FORTRAN Simulations of Beam Spot
- A FORTRAN program has been written which simulates rays exiting the laser aperture and then propagating through a fused silica plano-convex lens. Using this program we can now observe the geometry of the beam as it passes through the focusing lens onto a target. We have seen that the beam leaving the laser aperture has a flat top distribution in the X plane and a Gaussian distribution in the Y. As the beam is focused both the X and Y projections achieve Gaussian distributions.
- Taking the X and Y projections of the focused beam and fitting them with a Gaussian distribution,we are able to attain and .
- Assuming a Gaussian distribution at the waist of the beam, we now find the FWHM (full width at half maximum) by the following relation,
- The smallest values of and were 1.49mm and 0.552mm respectively.
- The Rayleigh Length, is defined as the distance from the beam waist along the axis of propagation to the point where its cross section is doubled (). This value represents the "play" we will have when trying to focus the beam onto the diamond target for ablation. Taking as the beam waist, and using the as its value we are looking for the point where,
- Plotting as a function of distance away from the beam waist center, we find an average Rayleigh Length,
- and
- Knowing also allows us to calculate the theoretical fluence of the beam. Assuming maximum power of 220mJ over a 1.49mm x 0.552mm area yields Which is above the threshold value cited by Brookhaven National Laboratories who were conducting diamond ablation experiments with a 213nm Nd:YAG laser (213nm with the use of a 4 + 1 frequency mixing crystal). Our ArF excimer laser produces 193nm light that will be more readily absorbed by the surface of the diamond as diamond is opaque to wavelengths above the band gap. These calculations provide a level of confidence that we theoretically will be able to ablate diamond.
Ablation Chamber
XYZ Translation Stages
Ablation Software
Passivation for ArF
1) Bleed all lines prior to this process.
2) Turn on HV supply (turn key to on position) and allow the thyratron to warm up for at least ten minutes.
3) Evacuate the laser cavity until the fine gauge reads in the red (zero) by turning on the vacuum pump switch located on the laser head
4) Fill the system with 150mbar fluorine and 1850 He making the total pressure 2000mbar.
5) Set the Rep. Rate to 10Hz and turn on the HV supply (push button in)
6) Turn laser on (push button in) and set High Voltage to 20kV.
7) Laser will begin to pulse a red light, allow the laser to fire until the red light's intensity is reduced to about half. For the first few runs it may be necessary to re-fill a few times. The light should last AT LEAST 10 minutes.
Bpratt18 17:33, 28 June 2010 (UTC)