Collective motion and its connection to the energy landscape in 2D soft crystals

被引:0
|
作者
Hassan, Md. Rakib [1 ]
Aronow, Sam R. [1 ]
Douglas, Jack F. [2 ]
Starr, Francis W. [1 ]
机构
[1] Wesleyan Univ, Phys Dept, Middletown, CT 06459 USA
[2] Natl Inst Stand & Technol, Mat Sci & Engn Div, Gaithersburg, MD 20899 USA
关键词
DYNAMICAL HETEROGENEITIES; POTENTIAL-ENERGY; RELAXATION; TRANSITION; DEFECTS; LIQUIDS;
D O I
10.1039/d4sm01405g
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We examine the collective motion in computational models of a two-dimensional dusty plasma crystal and a charged colloidal suspension as they approach their respective melting transitions. To unambiguously identify rearrangement events in the crystal, we map the trajectory of configurations from an equilibrium molecular dynamics simulation to the corresponding sequence of configurations of local potential energy minima ("inherent structures"). This inherent structure (IS) trajectory eliminates the ambiguity that arises from localized vibrational motion. We find that the evolution of the IS trajectory in the crystal can be split into comparatively longer-lived ground states and shorter-lived discrete excited states. These discrete excited energy levels are a consequence of discrete numbers of defect clusters in the crystal. We find that the collective rearrangement occurs through different mechanisms: (i) small closed-loop motion in the ground states without the facilitation of defects, and (ii) much larger and complex open-ended particle motions in excited states that are facilitated by clusters of defects. In both cases, clusters of displacing particles can be separated into much smaller groups of replacing particles with a loop-like structure. In contrast to glass-forming liquids, the mass of the rearranging groups grows on heating towards the melting temperature rather than cooling. We find that crystal melting in these systems can be anticipated by the merging of the average time the crystal spends in the ground state with the average time in the excited states.
引用
收藏
页码:2070 / 2080
页数:11
相关论文
共 50 条
  • [21] Rhodopsin photoproducts in 2D crystals
    Vogel, R
    Ruprecht, J
    Villa, C
    Mielke, T
    Schertler, GFX
    Siebert, F
    JOURNAL OF MOLECULAR BIOLOGY, 2004, 338 (03) : 597 - 609
  • [22] 2D quasiperiodic plasmonic crystals
    Christina Bauer
    Georg Kobiela
    Harald Giessen
    Scientific Reports, 2
  • [23] 2D Excitons as Primary Energy Carriers in Organic Crystals: The Case of Oligoacenes
    Emelianova, E. V.
    Athanasopoulos, S.
    Silbey, R. J.
    Beljonne, D.
    PHYSICAL REVIEW LETTERS, 2010, 104 (20)
  • [24] Structure and Motion of a 2D Glass
    Heyde, Markus
    SCIENCE, 2013, 342 (6155) : 201 - 202
  • [25] 2D motion with large deformations
    Bonetti, Elena
    Colli, Pierluigi
    Fremond, Michel
    BOLLETTINO DELLA UNIONE MATEMATICA ITALIANA, 2014, 7 (01): : 19 - 44
  • [26] Extraction of 2D motion trajectories and its application to hand gesture recognition
    Yang, MH
    Ahuja, N
    Tabb, M
    IEEE TRANSACTIONS ON PATTERN ANALYSIS AND MACHINE INTELLIGENCE, 2002, 24 (08) : 1061 - 1074
  • [27] 3D Reconstruction of 2D Crystals
    Zeng, Xiangyan
    Glover, James Ervin
    Hughes, Owen
    Stahlberg, Henning
    PROCEEDINGS OF THE 49TH ANNUAL ASSOCIATION FOR COMPUTING MACHINERY SOUTHEAST CONFERENCE (ACMSE '11), 2011, : 160 - 165
  • [28] 2D or Not 2D: Bridging the Gap Between Tracking and Structure from Motion
    Lebeda, Karel
    Hadfield, Simon
    Bowden, Richard
    COMPUTER VISION - ACCV 2014, PT IV, 2015, 9006 : 642 - 658
  • [29] Landscape-Inversion Phase Transition in Dipolar Colloids: Tuning the Structure and Dynamics of 2D Crystals
    Alert, Ricard
    Casademunt, Jaume
    Tierno, Pietro
    PHYSICAL REVIEW LETTERS, 2014, 113 (19)
  • [30] Collective States in Molecular Monolayers on 2D Materials
    Juergensen, Sabrina
    Kessens, Moritz
    Berrezueta-Palacios, Charlotte
    Severin, Nikolai
    Ifland, Sumaya
    Rabe, Juergen P.
    Mueller, Niclas S.
    Reich, Stephanie
    ACS NANO, 2023, 17 (17) : 17350 - 17358