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Direction-dependent dynamics of colloidal particle pairs and the Stokes-Einstein relation in quasi-two-dimensional fluids
被引:3
作者:
Barbhuiya, Noman Hanif
[1
]
Yodh, A. G.
[2
]
Mishra, Chandan K.
[1
]
机构:
[1] Indian Inst Technol Gandhinagar, Dept Phys, Gandhinagar 382055, Gujarat, India
[2] Univ Penn, Dept Phys & Astron, Philadelphia, PA 19104 USA
基金:
美国国家科学基金会;
关键词:
LONG-WAVELENGTH FLUCTUATIONS;
STRUCTURAL RELAXATION;
DIFFUSION;
D O I:
10.1038/s41467-023-40772-2
中图分类号:
O [数理科学和化学];
P [天文学、地球科学];
Q [生物科学];
N [自然科学总论];
学科分类号:
07 ;
0710 ;
09 ;
摘要:
Hydrodynamics and correlated motion of colloids in the near-field interactions are not fully understood. The authors report the motion of particles in particle-pairs is direction-dependent in the near-field and that the Stokes-Einstein relation is not applicable in this case. Hydrodynamic interactions are important for diverse fluids, especially those with low Reynolds number such as microbial and particle-laden suspensions, and proteins diffusing in membranes. Unfortunately, while far-field (asymptotic) hydrodynamic interactions are fully understood in two- and three-dimensions, near-field interactions are not, and thus our understanding of motions in dense fluid suspensions is still lacking. In this contribution, we experimentally explore the hydrodynamic correlations between particles in quasi-two-dimensional colloidal fluids in the near-field. Surprisingly, the measured displacement and relaxation of particle pairs in the body frame exhibit direction-dependent dynamics that can be connected quantitatively to the measured near-field hydrodynamic interactions. These findings, in turn, suggest a mechanism for how and when hydrodynamics can lead to a breakdown of the ubiquitous Stokes-Einstein relation (SER). We observe this breakdown, and we show that the direction-dependent breakdown of the SER is ameliorated along directions where hydrodynamic correlations are smallest. In total, the work uncovers significant ramifications of near-field hydrodynamics on transport and dynamic restructuring of fluids in two-dimensions.
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