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Dive into the research topics where Thomas Langin is active.

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Featured researches published by Thomas Langin.


Physics of Plasmas | 2015

Ion temperature evolution in an ultracold neutral plasma

Patrick McQuillen; Trevor Strickler; Thomas Langin; T. C. Killian

We study the long-time evolution of the ion temperature in an expanding ultracold neutral plasma using spatially resolved, laser-induced-fluorescence spectroscopy. Adiabatic cooling reduces the ion temperature by an order of magnitude during the plasma expansion, to temperatures as low as 0.2 K. Cooling is limited by heat exchange between ions and the much hotter electrons. We also present evidence for an additional heating mechanism and discuss possible sources. Data are described by a model of the plasma evolution, including the effects of ion-electron heat exchange. We show that for appropriate initial conditions, the degree of Coulomb coupling of ions in the plasma increases during expansion.


Physical Review X | 2016

Experimental measurement of self-diffusion in a strongly coupled plasma

Trevor Strickler; Thomas Langin; Paul McQuillen; Jerome Daligault; T. C. Killian

Abstract : We present a study of the collisional relaxation of ion velocities in a strongly coupled, ultracold neutral plasma on short time scales compared to the inverse collision rate. The measured average velocity of a tagged population of ions is shown to be equivalent to the ion-velocity autocorrelation function. We thus gain access to fundamental aspects of the single-particle dynamics in strongly coupled plasmas and to the ion self-diffusion constant under conditions where experimental measurements have been lacking. Nonexponential decay towards equilibrium of the average velocity heralds non-Markovian dynamics that are not predicted by traditional descriptions of weakly coupled plasmas. This demonstrates the utility of ultracold neutral plasmas for studying the effects of strong coupling on collisional processes, which is of interest for dense laboratory and astrophysical plasmas.


Physical Review E | 2016

Demonstrating universal scaling for dynamics of Yukawa one-component plasmas after an interaction quench

Thomas Langin; Trevor Strickler; N. Maksimovic; Patrick McQuillen; Thomas Pohl; Daniel Vrinceanu; T. C. Killian

The Yukawa one-component plasma (OCP) model is a paradigm for describing plasmas that contain one component of interest and one or more other components that can be treated as a neutralizing, screening background. In appropriately scaled units, interactions are characterized entirely by a screening parameter, κ. As a result, systems of similar κ show the same dynamics, regardless of the underlying parameters (e.g., density and temperature). We demonstrate this behavior using ultracold neutral plasmas (UNPs) created by photoionizing a cold (T≤10 mK) gas. The ions in UNP systems are well described by the Yukawa model, with the electrons providing the screening. Creation of the plasma through photoionization can be thought of as a rapid quench of the interaction potential from κ=∞ to a final κ value set by the electron density and temperature. We demonstrate experimentally that the postquench dynamics are universal in κ over a factor of 30 in density and an order of magnitude in temperature. Results are compared with molecular-dynamics simulations. We also demonstrate that features of the postquench kinetic energy evolution, such as disorder-induced heating and kinetic-energy oscillations, can be used to determine the plasma density and the electron temperature.The Yukawa one-component plasma (OCP) is a paradigm model for describing plasmas that contain one component of interest and one or more other components that can be treated as a neutralizing, screening background. In appropriately scaled units, interactions are characterized entirely by a screening parameter, κ. As a result, systems of similar κ show the same dynamics, regardless of the underlying parameters (e.g., density and temperature). We demonstrate this behavior using ultracold neutral plasmas (UNP) created by photoionizing a cold (T ≤ 10mK) gas. The ions in UNP systems are well described by the Yukawa model, with the electrons providing the screening. Creation of the plasma through photoionization can be thought of as a rapid quench from κ0 = ∞ to a final κ value set by the electron density and temperature. We demonstrate experimentally that the post-quench dynamics are universal in κ over a factor of 30 in density and an order of magnitude in temperature. Results are compared with molecular dynamics simulations. We also demonstrate that features of the post-quench kinetic energy evolution, such as disorderinduced heating and kinetic-energy oscillations, can be used to determine the plasma density and the electron temperature.


Bulletin of the American Physical Society | 2014

Adiabatic expansion cooling of ions in ultracold neutral plasmas

Patrick McQuillen; Thomas Langin; Trevor Strickler; T. C. Killian


Bulletin of the American Physical Society | 2018

Laser Cooling of Ions in a Neutral Plasma

Grant Gorman; Thomas Langin; T. C. Killian


Bulletin of the American Physical Society | 2017

Progress Towards Laser Cooling of an Ultracold Neutral Plasma

Thomas Langin; Grant Gorman; Zhitao Chen; Kyle Chow; T. C. Killian


Physical Review E | 2016

Publisher's Note: Demonstrating universal scaling for dynamics of Yukawa one-component plasmas after an interaction quench [Phys. Rev. E 93, 023201 (2016)].

Thomas Langin; Trevor Strickler; N. Maksimovic; Patrick McQuillen; Thomas Pohl; Daniel Vrinceanu; T. C. Killian


Bulletin of the American Physical Society | 2016

Simulations Of Laser Cooling In An Ultracold Neutral Plasma

Thomas Langin; Trevor Strickler; Thomas Pohl; Daniel Vrinceanu; T. C. Killian


Bulletin of the American Physical Society | 2015

Kinetic Energy Oscillations during Disorder Induced Heating in an Ultracold Plasma

Thomas Langin; Patrick McQuillen; Trevor Strickler; Thomas Pohl; T. C. Killian


Bulletin of the American Physical Society | 2015

Self-Diffusion and Non-Markovian Dynamics in Strongly Coupled Ultracold Neutral Plasmas

Trevor Strickler; Thomas Langin; Patrick McQuillen; T. C. Killian

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Jerome Daligault

Los Alamos National Laboratory

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