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Compressional and Shear Wakes in a 2D Dusty Plasma Crystal V. Nosenko, J. Goree & Z.W. Ma Univ. of Iowa A. Piel Univ. of Kiel D. Dubin UCSD
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charge Q 13000 e separation a = 762 46 m 2D Monolayer Lattice All experiments in this talk: a monolayer of particles 2D physics Triangular lattice with hexagonal symmetry
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Pair correlation function Ordered lattice Many peaks in g(r) Translation order length 9a
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Compressional and shear waves n / t = 0 v= 0
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Dispersion relations in 2D triangular lattice
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Mach cones (in air) courtesy of D. Dubin Shock wave behind an f-18
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Mach cone angle courtesy of D. Dubin C = U Sin U
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Lateral wake Transverse Wake Wake behind a ship courtesy of D. Dubin
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Havnes 1995 Existence predicted theoretically, for Saturn’s rings Mach cones in dusty plasmas Samsonov 1999 Discovered experimentally in lab Melzer & Nunomura 2000 Laser excitation of Mach cones
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chamber top-view camera laser illumination side-view camera vacuum chamber
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Experimental setup scanning mirror
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Gas Ar, 15 mTorr RF plasma 13.56 MHz 20 W Polymer microspheres diameter 8.69 0.17 m Experimental conditions
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Data analysis method Trace particle orbits Calculate particle velocity, number density Get top view images of the lattice Determine particle positions
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Laser manipulation of particles Ar laser beam 0.2 - 1 W motion of laser spot: to radiation force direction shown here, || motion is also possible radiation force
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Shear wave Mach cone V/C l = 0.51 V
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Speed map for compressional Mach cone particle speed v ( m/s)
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Lateral wake Transverse Wake Wake behind a ship courtesy of D. Dubin
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speed map for compressional Mach cone particle speed v ( m/s)
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V/C l = 2.23: compressional wave Mach cone Gray-scale speed map 2 mm Vector velocity map 2 mm n t Schlieren map 2 mm v vorticity map Big n/ t compressional waves small v not shear waves
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V/C l = 0.51: shear wave Mach cone Gray-scale speed mapVector velocity map n t Schlieren map 2 mm v vorticity map small n/ t not compressional big v shear waves
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Test of Mach cone angle relation C l = 22.1 mm/s C t = 5.8 mm/s
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Compressional & Shear wave Mach cones Scanning parallel to radiation force direction, V/C l = 1.35 Shear wave Mach cone
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Superposition of wakes
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Experimental image produced by two moving laser spots Superposition of wakes
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+ Synthesized image = Test of Linear Superposition Experimental image n/ t maps
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Experimental imageSynthesized image Test of Linear Superposition Agreement linear superposition is true
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Theory of wakes in a 2D plasma crystal Dubin, Phys. Plasmas 2000 Wakes with dispersion: c = c(k) /k Wave equation Phase mixing cancellation everywhere except where constructive interference occurs (loci of stationary phase) Linearity
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V/C l > 1: Mach cone and lateral wakes color map experimental n/ t Schlieren map no fitting parameter = 1.14 V/C l = 1.21 calculation by Dubin Mach cone lateral
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2 mm V/C l < 1: transverse wake transverse = 1.14 V/C l = 0.51 n/ t Schlieren map
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Summary Mach cones were observed in a 2D dusty plasma crystal Shear wave & Compressional Waves Compressional wave: Rich wake structure was observed for both supersonic and undersonic excitation, consisting of multiple lateral and transverse wakes Shear Wave: had a single-cone structure Linear superposition is true In far field, the wake structure in experiment is comparable to Dubin’s theory of wakes in dusty plasma crystal
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Solar system Rings of Saturn Comet tails Basic physics Coulomb crystals Waves Manufacturing Particle contamination (Si wafer processing) Nanomaterial synthesis Who cares about dusty plasmas?
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0 80 160 9 months data in 1999 Dusty plasma publications in APS & AIP journals
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Coulomb force –Interparticle interaction is repulsive Coulomb (Yukawa) –External confinement by natural electric fields present in plasma
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