DOE OSTI · 2567923
Energy amplification in plasma crystals due to multiple torsions
Abstract
Interacting torsions are examined within a two-dimensional monolayer crystal suspended in an argon complex plasma for 1–10 W discharge powers and pressures of 135–155 mTorr. Two torsions embedded in a lattice are shown to amplify the kinetic energy and range of motion of particles located between the torsions to nearly three times that observed in single torsion systems. It is also shown that multiple torsions can interact via amplified particle energy when separated by up to 14 interparticle distances (Δ). The torsion separation distance also showed a positive linear trend with power and a slightly positive correlation with the pressure. This amplification of energy is possible due to the fact that multiple torsions in a lattice increase the interparticle distance of the lattice by 16% more than single torsion systems, leading to additional freedom of motion in the lattice plane. These combined findings show that multiple torsions heat the lattice differently depending on their separation from the other torsion. The midpoint particles between torsions absorb the majority of energy from the two torsions, and energy addition at the midpoint is nonlinear. The addition of more torsions to the lattice may lead to melting of the plasma crystal.
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Carmichael, Calvin (ORCID:0009000847982183), Martinez-Ortiz, Jorge, Adamson, Parker (ORCID:0000000269028218), Matthews, Lorin (ORCID:0000000317812868), Hyde, Truell (ORCID:0000000286032737). 2024-12-04. Energy amplification in plasma crystals due to multiple torsions. https://doi.org/10.1063/5.0241576
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