Highly Resolved Brownian Motion in Space and in Time

被引:0
作者
Mo, Jianyong
Raizen, Mark G. [1 ]
机构
[1] Univ Texas Austin, Ctr Nonlinear Dynam, Austin, TX 78712 USA
来源
ANNUAL REVIEW OF FLUID MECHANICS, VOL 51 | 2019年 / 51卷
关键词
short-timescale Brownian motion; optical tweezers; hydrodynamics; boundary effects; nonequilibrium; MAXWELLIAN VELOCITY DISTRIBUTION; INSTANTANEOUS VELOCITY; HYDRODYNAMIC THEORY; OPTICAL LEVITATION; DIELECTRIC SPHERE; PARTICLE TRACKING; KINETIC-THEORY; MANIPULATION; LIQUIDS; DEVIATION;
D O I
10.1146/annurev-fluid-010518-040527
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Since the discovery of Brownian motion in bulk fluids by Robert Brown in 1827, Brownian motion at long timescales has been extensively studied both theoretically and experimentally for over a century. The theory for short-timescale Brownian motion was also well established in the last century, while experimental studies were not accessible until this decade. This article reviews experimental progress on short-timescale Brownian motion and related applications. The ability to measure instantaneous velocity enables new fundamental tests of statistical mechanics of Brownian particles, such as the Maxwell-Boltzmann velocity distribution and the energy equipartition theorem. In addition, Brownian particles can be used as probes to study boundary effects imposed by a solid wall, wettability at solid-fluid interfaces, and viscoelasticity. We propose future studies of fluid compressibility and nonequilibrium physics using short-duration pulsed lasers. Lastly, we also propose that an optically trapped particle can serve as a new testing ground for nucleation in a supersaturated vapor or a supercooled liquid.
引用
收藏
页码:403 / 428
页数:26
相关论文
共 50 条
[41]   Brownian motion of ellipsoidal particles on a granular magnetic bath [J].
Tapia-Ignacio, C. ;
Moctezuma, R. E. ;
Donado, F. ;
Weeks, Eric R. .
PHYSICAL REVIEW E, 2020, 102 (02)
[42]   Modeling Brownian Motion as a Timelapse of the Physical, Persistent Trajectory [J].
Cademartiri, Ludovico .
JOURNAL OF PHYSICAL CHEMISTRY B, 2025, 129 (22) :5511-5519
[43]   A perfect probe: Resonance of underdamped scaled Brownian motion [J].
Luo, Yuhui ;
Zeng, Chunhua ;
Li, Baowen .
EPL, 2022, 137 (02)
[44]   Brownian motion hydrodynamics: A study on logic, fact, and similitude [J].
Giona, Massimiliano ;
Procopio, Giuseppe ;
Pezzotti, Chiara .
PHYSICS OF FLUIDS, 2025, 37 (02)
[45]   Brownian Motion in Optical Tweezers, a Comparison between MD Simulations and Experimental Data in the Ballistic Regime [J].
Zembrzycki, Krzysztof ;
Pawlowska, Sylwia ;
Pierini, Filippo ;
Kowalewski, Tomasz Aleksander .
POLYMERS, 2023, 15 (03)
[46]   Exploring Green Fluorescent Protein Brownian Motion: Temperature and Concentration Dependencies Through Luminescence Thermometry [J].
Guo, Yongwei ;
Maturi, Fernando E. ;
Brites, Carlos D. S. ;
Carlos, Luis D. .
ADVANCED PHYSICS RESEARCH, 2024, 3 (11)
[47]   Nanoparticle Brownian motion and hydrodynamic interactions in the presence of flow fields [J].
Uma, B. ;
Swaminathan, T. N. ;
Radhakrishnan, R. ;
Eckmann, D. M. ;
Ayyaswamy, P. S. .
PHYSICS OF FLUIDS, 2011, 23 (07)
[48]   A quantitative immunosensing technique based on the measurement of nanobeads' Brownian motion [J].
Fan, Yu-Jui ;
Sheen, Horn-Jiunn ;
Hsu, Chia-Jui ;
Liu, Cheng-Pang ;
Lin, Shiming ;
Wu, Kuang-Chong .
BIOSENSORS & BIOELECTRONICS, 2009, 25 (04) :688-694
[49]   Brownian motion and polarized three-dimensional quantum vacuum [J].
Fiscaletti, D. .
REVISTA MEXICANA DE FISICA, 2021, 67 (04)
[50]   Brownian motion probe for water-ethanol inhomogeneous mixtures [J].
Furukawa, Kazuki ;
Judai, Ken .
JOURNAL OF CHEMICAL PHYSICS, 2017, 147 (24)