Data-driven reaction coordinate discovery in overdamped and non-conservative systems: application to optical matter structural isomerization

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作者
Shiqi Chen
Curtis W. Peterson
John A. Parker
Stuart A. Rice
Andrew L. Ferguson
Norbert F. Scherer
机构
[1] University of Chicago,Department of Chemistry
[2] University of Chicago,James Franck Institute
[3] University of Chicago,Department of Physics
[4] University of Chicago,Pritzker School of Molecular Engineering
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Nature Communications | / 12卷
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摘要
Optical matter (OM) systems consist of (nano-)particle constituents in solution that can self-organize into ordered arrays that are bound by electrodynamic interactions. They also manifest non-conservative forces, and the motions of the nano-particles are overdamped; i.e., they exhibit diffusive trajectories. We propose a data-driven approach based on principal components analysis (PCA) to determine the collective modes of non-conservative overdamped systems, such as OM structures, and harmonic linear discriminant analysis (HLDA) of time trajectories to estimate the reaction coordinate for structural transitions. We demonstrate the approach via electrodynamics-Langevin dynamics simulations of six electrodynamically-bound nanoparticles in an incident laser beam. The reaction coordinate we discover is in excellent accord with a rigorous committor analysis, and the identified mechanism for structural isomerization is in very good agreement with the experimental observations. The PCA-HLDA approach to data-driven discovery of reaction coordinates can aid in understanding and eventually controlling non-conservative and overdamped systems including optical and active matter systems.
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[1]  
Simm GN(2019)Exploration of reaction pathways and chemical transformation networks J. Phys. Chem. A 123 385-399
[2]  
Vaucher AC(2017)Calculating iso-committor surfaces as optimal reaction coordinates with milestoning Entropy 19 219-235
[3]  
Reiher M(2018)Collective variables from local fluctuations J. Phys. Chem. Lett. 9 2776-2781
[4]  
Elber R(2002)Transition path sampling: throwing ropes over rough mountain passes Annu. Rev. Phys. Chem. 53 291-318
[5]  
Bello-Rvas JM(2010)Enhanced sampling of nonequilibrium steady states Annu. Rev. Phys. Chem. 61 441-459
[6]  
Ma P(1996)Aromatic van der Waals clusters: structure and nonrigidity J. Phys. Chem. 100 13348-13366
[7]  
Cardenas AE(2015)Colloidal matter: packing, geometry, and entropy Science 349 1253751-270
[8]  
Fathizadeh A(1997)Optical tweezers in colloid and interface science Curr. Opin. Colloid Interface Sci. 2 264-464
[9]  
Mendels D(2019)Cluster formation by acoustic forces and active fluctuations in levitated granular matter Nat. Phys. 15 460-3823
[10]  
Piccini G(1972)Roles of repulsive and attractive forces in liquids: the optimized random phase approximation J. Chem. Phys. 56 3812-250