Langmuir probe measurements of Nd-Yag laser produced copper plasmas
- 1. Pakistan Institute of Nuclear Science and Technology, Islamabad (Pakistan). Physics Div.
Description
The plasma was produced by focusing Nd-YAG laser pulses of 1064 nm wavelength and 10 ns duration on to a copper target. A time-resolving plane Langmuir probe was used to record the electron and ion currents during the plasma expansion in vacuum. Langmuir probe theory was used to determine the temporal variation of the plasma potential, electron temperature and ion density. At the time of maximum ion current the estimated plasma potential, electron temperature and ion density were 2.42 V, 3.28 eV and 2.30 X 1012 cm/sup -3/ respectively. In addition, time-of-flight signal was used to determine the ion density and velocity of the various ion components as a function of laser irradiance and probe angle w.r.t. target surface normal. For the range of laser irradiance, 4-13 X 108 W/cm/sup 2/, we found ion density in the range of 6.88 X 1010-2.64 X 1012 cm/sup -3/ and ion velocity in the range of 2.2-4.6 X 106 cm s/sup -1/ at the time of maximum ion current. In particular, velocity of the fastest plume component was most affected by the irradiance. The estimated threshold irradiance for the onset of plasma was 3.95 X 108 W/cm/sup 2/. The experimental scaling laws for the variation of ion velocity and ion charge with laser irradiance and probe angle were proposed. (orig./A.B.)
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Additional details
Publishing Information
- Imprint Title
- Annual Report 2010-11
- Imprint Pagination
- 123 p.
- Journal Page Range
- p. 9
- Report number
- INIS-PK--008
INIS
- Country of Publication
- Pakistan
- Country of Input or Organization
- Pakistan
- INIS RN
- 44019559
- Subject category
- S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
- Descriptors DEI
- COMPUTERIZED SIMULATION; COPPER IONS; LANGMUIR PROBE; LASER RADIATION; LASER-PRODUCED PLASMA; NEODYMIUM LASERS
- Descriptors DEC
- CHARGED PARTICLES; ELECTRIC PROBES; ELECTROMAGNETIC RADIATION; IONS; LASERS; PLASMA; PROBES; RADIATIONS; SIMULATION; SOLID STATE LASERS