1
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Lipaev AM, Naumkin VN, Khrapak SA, Usachev AD, Petrov OF, Thoma MH, Kretschmer M, Du CR, Kononenko OD, Zobnin AV. Wave dispersion in a three-dimensional complex plasma solid under microgravity conditions. Phys Rev E 2025; 111:015209. [PMID: 39972839 DOI: 10.1103/physreve.111.015209] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/28/2024] [Accepted: 01/03/2025] [Indexed: 02/21/2025]
Abstract
An analysis of lattice wave spectra in a three-dimensional dusty plasma structure formed in a direct current gas discharge with alternating polarity under microgravity conditions is reported. The spectra are determined using the Fourier transform of microparticle velocities, measured by tracking microparticles with subpixel resolution. Both longitudinal and transverse modes are detected and analyzed. The absence of a "k-gap" in the long-wavelength domain of the transverse mode strongly suggests that the microparticles form a solid structure. Therefore, the experimental spectra are compared with the spectra obtained from molecular dynamics simulations for different lattice structures and their orientation. This comparison yields important dusty plasma parameters, such as the particle charge and the plasma screening length. The measured longitudinal and transverse sound velocities allow us to estimate the elastic moduli of the particle component. These are rather small in the absolute magnitude, but when normalized by the number density and the interaction energy of the particles resemble those in conventional matter.
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Affiliation(s)
- Andrey M Lipaev
- Joint Institute for High Temperatures, RAS, Izhorskaya 13 Bd.2, Moscow 125412, Russia
| | - Vadim N Naumkin
- Joint Institute for High Temperatures, RAS, Izhorskaya 13 Bd.2, Moscow 125412, Russia
| | - Sergey A Khrapak
- Joint Institute for High Temperatures, RAS, Izhorskaya 13 Bd.2, Moscow 125412, Russia
| | - Alexandr D Usachev
- Joint Institute for High Temperatures, RAS, Izhorskaya 13 Bd.2, Moscow 125412, Russia
| | - Oleg F Petrov
- Joint Institute for High Temperatures, RAS, Izhorskaya 13 Bd.2, Moscow 125412, Russia
| | - Markus H Thoma
- Justus-Liebig-Universität, I. Physikalisches Institut, Heinrich-Buff-Ring 16, 35392 Gießen, Germany
| | - Michael Kretschmer
- Justus-Liebig-Universität, I. Physikalisches Institut, Heinrich-Buff-Ring 16, 35392 Gießen, Germany
| | - Cheng-Ran Du
- Donghua University, College of Physics, Shanghai 201620, People's Republic of China
- Ministry of Education, Member of Magnetic Confinement Fusion Research Centre, Shanghai 201620, People's Republic of China
| | - Oleg D Kononenko
- Gagarin Research and Test Cosmonaut Training Center, Star City 141160, Russia
| | - Andrey V Zobnin
- Joint Institute for High Temperatures, RAS, Izhorskaya 13 Bd.2, Moscow 125412, Russia
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2
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Du XC, Yang W, Nosenko V, Miao Y, Li WX, Yu JY, Huang H, Du CR. Observation of the hexatic phase in a two-dimensional complex plasma using machine learning. SOFT MATTER 2024; 20:7362-7366. [PMID: 39268683 DOI: 10.1039/d4sm00929k] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 09/17/2024]
Abstract
Complex plasmas consist of ionized gas and charged solid microparticles, representing the plasma state of soft matter. We apply machine learning methods to investigate a melting transition in a two-dimensional complex plasma. A convolutional neural network is constructed and trained with the numerical simulation. The hexatic phase is successfully identified and the evolution of topological defects is studied during melting transition in both simulations and experiments.
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Affiliation(s)
- Xin-Chi Du
- College of Physics, Donghua University, Shanghai 201620, People's Republic of China.
| | - Wei Yang
- College of Physics, Donghua University, Shanghai 201620, People's Republic of China.
- Member of Magnetic Confinement Fusion Research Centre, Ministry of Education, Shanghai 201620, P. R. China
| | - Volodymyr Nosenko
- Institut für Materialphysik im Weltraum, Deutsches Zentrum für Luft- und Raumfahrt (DLR), 51170 Cologne, Germany
| | - Yang Miao
- College of Physics, Donghua University, Shanghai 201620, People's Republic of China.
| | - Wen-Xin Li
- College of Physics, Donghua University, Shanghai 201620, People's Republic of China.
| | - Jia-Yi Yu
- College of Physics, Donghua University, Shanghai 201620, People's Republic of China.
| | - He Huang
- College of Physics, Donghua University, Shanghai 201620, People's Republic of China.
| | - Cheng-Ran Du
- College of Physics, Donghua University, Shanghai 201620, People's Republic of China.
- Member of Magnetic Confinement Fusion Research Centre, Ministry of Education, Shanghai 201620, P. R. China
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3
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Huang H, Ivlev AV, Nosenko V, Yang W, Du CR. Dissipative solitary waves in a two-dimensional complex plasma: Amorphous versus crystalline. Phys Rev E 2023; 107:045205. [PMID: 37198834 DOI: 10.1103/physreve.107.045205] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/06/2023] [Accepted: 03/22/2023] [Indexed: 05/19/2023]
Abstract
The propagation of a dissipative soliton was experimentally studied in a two-dimensional binary complex plasma. The crystallization was suppressed in the center of the particle suspension where two types of particles were mixed. The motions of individual particles were recorded using video microscopy, and the macroscopic properties of the solitons were measured in the amorphous binary mixture in the center and in the plasma crystal in the periphery. Although the overall shape and parameters of solitons propagating in amorphous and crystalline regions were quite similar, their velocity structures at small scales as well as the velocity distributions were profoundly distinct. Moreover, the local structure rearranged drastically in and behind the soliton, which was not observed in the plasma crystal. Langevin dynamics simulations were performed, and the results agreed with the experimental observations.
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Affiliation(s)
- He Huang
- College of Science, Donghua University, Shanghai 201620, People's Republic of China
| | - Alexei V Ivlev
- Max Plank Institute for Extraterrestrial Physics, Garching 85748, Germany
| | - Volodymyr Nosenko
- Institut für Materialphysik im Weltraum, Deutsches Zentrum für Luft- und Raumfahrt (DLR), Cologne 51147, Germany
| | - Wei Yang
- College of Science, Donghua University, Shanghai 201620, People's Republic of China
| | - Cheng-Ran Du
- College of Science, Donghua University, Shanghai 201620, People's Republic of China
- Member of Magnetic Confinement Fusion Research Centre, Ministry of Education, Shanghai 201620, People's Republic of China
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4
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Couëdel L, Nosenko V. Stability of two-dimensional complex plasma monolayers in asymmetric capacitively coupled radio-frequency discharges. Phys Rev E 2022; 105:015210. [PMID: 35193236 DOI: 10.1103/physreve.105.015210] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/14/2021] [Accepted: 01/11/2022] [Indexed: 06/14/2023]
Abstract
In this article, the stability of a complex plasma monolayer levitating in the sheath of the powered electrode of an asymmetric capacitively coupled radio-frequency argon discharge is studied. Compared to earlier studies, a better integration of the experimental results and theory is achieved by operating with actual experimental control parameters such as the gas pressure and the discharge power. It is shown that for a given microparticle monolayer at a fixed discharge power there exist two threshold pressures: (i) above a specific pressure p_{cryst}, the monolayer always crystallizes; (ii) below a specific pressure p_{MCI}, the crystalline monolayer undergoes the mode-coupling instability and the two-dimensional complex plasma crystal melts. In between p_{MCI} and p_{cryst}, the microparticle monolayer can be either in the fluid phase or the crystal phase: when increasing the pressure from below p_{MCI}, the monolayer remains in the fluid phase until it reaches p_{cryst} at which it recrystallizes; when decreasing the pressure from above p_{cryst}, the monolayer remains in the crystalline phase until it reaches p_{MCI} at which the mode-coupling instability is triggered and the crystal melts. A simple self-consistent sheath model is used to calculate the rf sheath profile, the microparticle charges, and the microparticle resonance frequency as a function of power and background argon pressure. Combined with calculation of the lattice modes the main trends of p_{MCI} as a function of power and background argon pressure are recovered. The threshold of the mode-coupling instability in the crystalline phase is dominated by the crossing of the longitudinal in-plane lattice mode and the out-of plane lattice mode induced by the change of the sheath profile. Ion wakes are shown to have a significant effect too.
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Affiliation(s)
- L Couëdel
- Physics and Engineering Physics Department, University of Saskatchewan, Saskatoon, Saskatchewan S7N 5E2, Canada
- CNRS, Aix-Marseille Université, Laboratoire PIIM UMR 7345, 13397 Marseille cedex 20, France
| | - V Nosenko
- Institut für Materialphysik im Weltraum, Deutsches Zentrum für Luft- und Raumfahrt (DLR), D-82234 Weßling, Germany
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5
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Kryuchkov NP, Dmitryuk NA, Li W, Ovcharov PV, Han Y, Sapelkin AV, Yurchenko SO. Mean-field model of melting in superheated crystals based on a single experimentally measurable order parameter. Sci Rep 2021; 11:17963. [PMID: 34504154 PMCID: PMC8429456 DOI: 10.1038/s41598-021-97124-7] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/22/2021] [Accepted: 08/20/2021] [Indexed: 11/09/2022] Open
Abstract
Melting is one of the most studied phase transitions important for atomic, molecular, colloidal, and protein systems. However, there is currently no microscopic experimentally accessible criteria that can be used to reliably track a system evolution across the transition, while providing insights into melting nucleation and melting front evolution. To address this, we developed a theoretical mean-field framework with the normalised mean-square displacement between particles in neighbouring Voronoi cells serving as the local order parameter, measurable experimentally. We tested the framework in a number of colloidal and in silico particle-resolved experiments against systems with significantly different (Brownian and Newtonian) dynamic regimes and found that it provides excellent description of system evolution across melting point. This new approach suggests a broad scope for application in diverse areas of science from materials through to biology and beyond. Consequently, the results of this work provide a new guidance for nucleation theory of melting and are of broad interest in condensed matter, chemical physics, physical chemistry, materials science, and soft matter.
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Affiliation(s)
- Nikita P Kryuchkov
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5, Moscow, Russia, 105005
| | - Nikita A Dmitryuk
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5, Moscow, Russia, 105005
| | - Wei Li
- Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Hong Kong SAR, China
| | - Pavel V Ovcharov
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5, Moscow, Russia, 105005
| | - Yilong Han
- Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Hong Kong SAR, China
| | - Andrei V Sapelkin
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5, Moscow, Russia, 105005
- School of Physics and Astronomy, Queen Mary University of London, London, E1 4NS, England
| | - Stanislav O Yurchenko
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5, Moscow, Russia, 105005.
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6
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Wang W, Hu HW, I L. Surface-Induced Layering of Quenched 3D Dusty Plasma Liquids: Micromotion and Structural Rearrangement. PHYSICAL REVIEW LETTERS 2020; 124:165001. [PMID: 32383944 DOI: 10.1103/physrevlett.124.165001] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/28/2019] [Accepted: 03/09/2020] [Indexed: 06/11/2023]
Abstract
We experimentally demonstrate confinement surface induced layering with a fluctuating layering front, and investigate the heterogeneous 3D crystalline ordered structure, cooperative micromotion, and structural rearrangement in the layered region of a quenched dusty plasma liquid. It is found that, after quenching the liquid with 2 to 3 layers adjacent to its flat bottom boundary, the layering front invades upward and exhibits turbulentlike fluctuations with power law decays in spatial and temporal power spectra. The layered region can be viewed as a 2+1D system with vertically coupled horizontal 2D layers, in which particle translayer motions are nearly fully suppressed. Each layer exhibits hexatic structure with a slow decay of long-range triangular lattice order. The nearly parallel but with different horizontal shifts of intralayer lattice lines of adjacent layers allows the heterogeneous fcc, bcc, and hcp structures with specific lattice orientations. In each layer, particles exhibit thermally excited horizontal motions of alternative cage rattling and cooperative hopping, which cause intralayer lattice line wiggling and triangular crystalline domain rupture or healing, respectively. The different intralayer cooperative motion of adjacent layers is the key for interlayer slip causing the structural rearrangement of 3D crystalline ordered domains.
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Affiliation(s)
- Wen Wang
- Department of Physics and Center for Complex Systems, National Central University, Jhongli, Taiwan 32001, Republic of China
- Molecular Sciences and Technology, Taiwan International Graduate Program, Academia Sinica and National Central University, Taiwan 10617, Republic of China
| | - Hao-Wei Hu
- Department of Physics and Center for Complex Systems, National Central University, Jhongli, Taiwan 32001, Republic of China
| | - Lin I
- Department of Physics and Center for Complex Systems, National Central University, Jhongli, Taiwan 32001, Republic of China
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7
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Yakovlev EV, Kryuchkov NP, Ovcharov PV, Pitiot K, Sapelkin AV, Yurchenko SO. Defect-governed double-step activation and directed flame fronts. Phys Rev E 2019; 100:023203. [PMID: 31574655 DOI: 10.1103/physreve.100.023203] [Citation(s) in RCA: 6] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/27/2019] [Indexed: 11/07/2022]
Abstract
Defects play a crucial role in physics of solids, affecting their mechanical, electromagnetic, and chemical properties. However, influence of thermal defects on wave propagation in exothermic reactions (flame fronts) still remains poorly understood at the molecular level. Here, we show that thermal behavior of the defects exhibits essential features of double-step exothermic reactions with preequilibrium. We use experiments with monolayer complex (dusty) plasma and find that it can show a double-step activation thermal behavior, similar to chemically reactive media. Furthermore, we demonstrate capabilities to control flame fronts using defects and the different dynamic regimes of the thermal defects in complex (dusty) plasmas, from a nonactivated one to being sound and self-activated (like in active soft matter). The results suggest that a range of challenging phenomena at the forefront of modern science (e.g., defect activation, flame front dynamics, reaction waves, etc.) can now be experimentally interrogated on a microscopic scale.
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Affiliation(s)
- Egor V Yakovlev
- Physics Department, Bauman Moscow State Technical University, 2nd Baumanskaya street 5, 105005 Moscow, Russia.,Institute for High Pressure Physics RAS, Kaluzhskoe shosse 14, Troitsk, 108840 Moscow, Russia
| | - Nikita P Kryuchkov
- Physics Department, Bauman Moscow State Technical University, 2nd Baumanskaya street 5, 105005 Moscow, Russia.,Institute for High Pressure Physics RAS, Kaluzhskoe shosse 14, Troitsk, 108840 Moscow, Russia
| | - Pavel V Ovcharov
- Physics Department, Bauman Moscow State Technical University, 2nd Baumanskaya street 5, 105005 Moscow, Russia
| | - Killian Pitiot
- Physics Department, Bauman Moscow State Technical University, 2nd Baumanskaya street 5, 105005 Moscow, Russia
| | - Andrei V Sapelkin
- Department of Physics, Queen Mary University of London, E14NS London, England
| | - Stanislav O Yurchenko
- Physics Department, Bauman Moscow State Technical University, 2nd Baumanskaya street 5, 105005 Moscow, Russia.,Institute for High Pressure Physics RAS, Kaluzhskoe shosse 14, Troitsk, 108840 Moscow, Russia
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8
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Yakovlev EV, Chaudhuri M, Kryuchkov NP, Ovcharov PV, Sapelkin AV, Yurchenko SO. Experimental validation of interpolation method for pair correlations in model crystals. J Chem Phys 2019; 151:114502. [PMID: 31542035 DOI: 10.1063/1.5116176] [Citation(s) in RCA: 12] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/14/2022] Open
Abstract
Accurate analysis of pair correlations in condensed matter allows us to establish relations between structures and thermodynamic properties and, thus, is of high importance for a wide range of systems, from solids to colloidal suspensions. Recently, the interpolation method (IM) that describes satisfactorily the shape of pair correlation peaks at short and at long distances has been elaborated theoretically and using molecular dynamics simulations, but it has not been verified experimentally as yet. Here, we test the IM by particle-resolved studies with colloidal suspensions and with complex (dusty) plasmas and demonstrate that, owing to its high accuracy, the IM can be used to experimentally measure parameters that describe interaction between particles in these systems. We used three- and two-dimensional colloidal crystals and monolayer complex (dusty) plasma crystals to explore suitability of the IM in systems with soft to hard-sphere-like repulsion between particles. In addition to the systems with pairwise interactions, if many-body interactions can be mapped to the pairwise ones with some effective (e.g., density-dependent) parameters, the IM could be used to obtain these parameters. The results reliably show that the IM can be effectively used for analysis of pair correlations and interactions in a wide variety of systems and therefore is of broad interest in condensed matter, complex plasma, chemical physics, physical chemistry, materials science, and soft matter.
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Affiliation(s)
- Egor V Yakovlev
- Bauman Moscow State Technical University, 2nd Baumanskaya Street 5, 105005 Moscow, Russia
| | - Manis Chaudhuri
- School of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, USA
| | - Nikita P Kryuchkov
- Bauman Moscow State Technical University, 2nd Baumanskaya Street 5, 105005 Moscow, Russia
| | - Pavel V Ovcharov
- Bauman Moscow State Technical University, 2nd Baumanskaya Street 5, 105005 Moscow, Russia
| | - Andrei V Sapelkin
- School of Physics and Astronomy, Queen Mary University of London, London E14NS, United Kingdom
| | - Stanislav O Yurchenko
- Bauman Moscow State Technical University, 2nd Baumanskaya Street 5, 105005 Moscow, Russia
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9
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Hu HW, Wang W, I L. Multiscale Coherent Excitations in Microscopic Acoustic Wave Turbulence of Cold Dusty Plasma Liquids. PHYSICAL REVIEW LETTERS 2019; 123:065002. [PMID: 31491159 DOI: 10.1103/physrevlett.123.065002] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 01/16/2019] [Revised: 04/09/2019] [Indexed: 06/10/2023]
Abstract
We experimentally demonstrate the observation of thermally excited microscopic acoustic wave turbulence at the discrete level in quasi-two-dimensional cold dusty plasma liquids. Through multidimensional empirical mode decomposition of individual dust particle motions over a large area, the turbulence is decomposed into multiscale traveling wave modes, sharing self-similar dynamics. All modes exhibit intermittent excitation, propagation, scattering, and annihilation of coherent waves, in the form of clusters in the xyt space, with cluster sizes exhibiting self-similar power law distribution. The poor particle interlocking in the region with poor structural order is the key origin of the easier excitations of the large amplitude slow modes. The sudden phase synchronization of slow wave modes switches particle motion from cage rattling to cooperative hopping.
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Affiliation(s)
- Hao-Wei Hu
- Department of Physics and Center for Complex Systems, National Central University, Jhongli, Taiwan 32001, Republic of China
| | - Wen Wang
- Department of Physics and Center for Complex Systems, National Central University, Jhongli, Taiwan 32001, Republic of China
- Molecular Science and Technology, Taiwan International Graduate Program, Academia Sinica and National Central University, Taipei, Taiwan 10617, Republic of China
| | - Lin I
- Department of Physics and Center for Complex Systems, National Central University, Jhongli, Taiwan 32001, Republic of China
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10
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Kryuchkov NP, Mistryukova LA, Brazhkin VV, Yurchenko SO. Excitation spectra in fluids: How to analyze them properly. Sci Rep 2019; 9:10483. [PMID: 31324848 PMCID: PMC6642218 DOI: 10.1038/s41598-019-46979-y] [Citation(s) in RCA: 25] [Impact Index Per Article: 4.2] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/08/2019] [Accepted: 07/09/2019] [Indexed: 11/25/2022] Open
Abstract
Although the understanding of excitation spectra in fluids is of great importance, it is still unclear how different methods of spectral analysis agree with each other and which of them is suitable in a wide range of parameters. Here, we show that the problem can be solved using a two-oscillator model to analyze total velocity current spectra, while other considered methods, including analysis of the spectral maxima and single mode analysis, yield rough results and become unsuitable at high temperatures and wavenumbers. To prove this, we perform molecular dynamics (MD) simulations and calculate excitation spectra in Lennard-Jones and inverse-power-law fluids at different temperatures, both in 3D and 2D cases. Then, we analyze relations between thermodynamic and dynamic features of fluids at (Frenkel) crossover from a liquid- to gas-like state and find that they agree with each other in the 3D case and strongly disagree in 2D systems due to enhanced anharmonicity effects. The results provide a significant advance in methods for detail analysis of collective fluid dynamics spanning fields from soft condensed matter to strongly coupled plasmas.
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Affiliation(s)
- Nikita P Kryuchkov
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5, Moscow, 105005, Russia
| | - Lukiya A Mistryukova
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5, Moscow, 105005, Russia
| | - Vadim V Brazhkin
- Institute for High Pressure Physics RAS, Kaluzhskoe shosse, 14, Troitsk, Moscow, 108840, Russia
| | - Stanislav O Yurchenko
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5, Moscow, 105005, Russia.
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11
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Couëdel L, Nosenko V. Tracking and Linking of Microparticle Trajectories During Mode-Coupling Induced Melting in a Two-Dimensional Complex Plasma Crystal. J Imaging 2019; 5:jimaging5030041. [PMID: 34460469 PMCID: PMC8320910 DOI: 10.3390/jimaging5030041] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/28/2019] [Revised: 03/11/2019] [Accepted: 03/12/2019] [Indexed: 11/17/2022] Open
Abstract
In this article, a strategy to track microparticles and link their trajectories adapted to the study of the melting of a quasi two-dimensional complex plasma crystal induced by the mode-coupling instability is presented. Because of the three-dimensional nature of the microparticle motions and the inhomogeneities of the illuminating laser light sheet, the scattered light intensity can change significantly between two frames, making the detection of the microparticles and the linking of their trajectories quite challenging. Thanks to a two-pass noise removal process based on Gaussian blurring of the original frames using two different kernel widths, the signal-to-noise ratio was increased to a level that allowed a better intensity thresholding of different regions of the images and, therefore, the tracking of the poorly illuminated microparticles. Then, by predicting the positions of the microparticles based on their previous positions, long particle trajectories could be reconstructed, allowing accurate measurement of the evolution of the microparticle energies and the evolution of the monolayer properties.
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Affiliation(s)
- Lénaïc Couëdel
- Department of Physics and Engineering Physics, University of Saskatchewan, Saskatoon, SK S7N 5E2, Canada
- CNRS, Aix-Marseille Université, PIIM, UMR 7345, 13397 Marseille CEDEX 20, France
- Correspondence: or
| | - Vladimir Nosenko
- Institut für Materialphysik im Weltraum, Deutsches Zentrum für Luft- und Raumfahrt (DLR), D-82234 Weßling, Germany
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12
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Kryuchkov NP, Ivlev AV, Yurchenko SO. Dissipative phase transitions in systems with nonreciprocal effective interactions. SOFT MATTER 2018; 14:9720-9729. [PMID: 30468440 DOI: 10.1039/c8sm01836g] [Citation(s) in RCA: 13] [Impact Index Per Article: 1.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/09/2023]
Abstract
The reciprocity of effective interparticle forces can be violated in various open and nonequilibrium systems, in particular, in colloidal suspensions and complex (dusty) plasmas. Here, we obtain a criterion under which a nonreciprocal system can be strictly reduced to a pseudo-Hamiltonian system with a detailed dynamic equilibrium. In particular, the criterion is satisfied for catalytically active colloids interacting via nonreciprocal diffusiophoretic forces. However, in the general case, when this criterion is not satisfied, the steady state is determined by the interplay between dissipation and the energy source due to the nonreciprocity of interactions. The results indicate the realization of bistability and dissipative spinodal decomposition in a broad class of systems with nonreciprocal effective interactions.
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Affiliation(s)
- Nikita P Kryuchkov
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5, 105005 Moscow, Russia.
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13
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Kryuchkov NP, Yakovlev EV, Gorbunov EA, Couëdel L, Lipaev AM, Yurchenko SO. Thermoacoustic Instability in Two-Dimensional Fluid Complex Plasmas. PHYSICAL REVIEW LETTERS 2018; 121:075003. [PMID: 30169052 DOI: 10.1103/physrevlett.121.075003] [Citation(s) in RCA: 10] [Impact Index Per Article: 1.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 04/09/2018] [Revised: 06/19/2018] [Indexed: 06/08/2023]
Abstract
Thermoacoustic instability in a fluid monolayer complex plasma is studied for the first time. Experiments, theory, and simulations demonstrate that nonreciprocal effective interactions between particles (mediated by plasma flows) provide positive thermal feedback leading to acoustic sound amplification. The form of the generated sound spectra obtained both in experiments and simulations excellently agrees with theory, justifying thermoacoustic instability in the fluid complex plasma. The results indicate a physical analogy between collective fluctuation dynamics in reactive media and in systems with nonreciprocal effective interactions exposing an activation behavior.
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Affiliation(s)
- Nikita P Kryuchkov
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5/1, 105005 Moscow, Russia
| | - Egor V Yakovlev
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5/1, 105005 Moscow, Russia
| | - Evgeny A Gorbunov
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5/1, 105005 Moscow, Russia
| | - Lenaic Couëdel
- CNRS, Aix Marseille Université, PIIM, UMR 7345-F-13397 Marseille, France
- Physics and Engineering Physics Department, University of Saskatchewan, 116 Science Place, S7N 5E2 Saskatoon, Canada
| | - Andrey M Lipaev
- Joint Institute for High Temperatures, 125412 Moscow, Russia
| | - Stanislav O Yurchenko
- Bauman Moscow State Technical University, 2nd Baumanskaya street 5/1, 105005 Moscow, Russia
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