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Scaled Brownian motion: a paradoxical process with a time dependent diffusivity for the description of anomalous diffusion SCIE SCOPUS

Title
Scaled Brownian motion: a paradoxical process with a time dependent diffusivity for the description of anomalous diffusion
Authors
Jeon, Jae-HyungChechkin, Aleksei V.Metzler, Ralf
Date Issued
2014-06
Publisher
Royal Society of Chemistry
Abstract
Anomalous diffusion is frequently described by scaled Brownian motion (SBM), a Gaussian process with a power-law time dependent diffusion coefficient. Its mean squared displacement is < x(2)(t) similar or equal to 2K(t)t with K(t) similar or equal to t(alpha-1) for 0 < alpha < 2. SBM may provide a seemingly adequate description in the case of unbounded diffusion, for which its probability density function coincides with that of fractional Brownian motion. Here we show that free SBM is weakly non-ergodic but does not exhibit a significant amplitude scatter of the time averaged mean squared displacement. More severely, we demonstrate that under confinement, the dynamics encoded by SBM is fundamentally different from both fractional Brownian motion and continuous time random walks. SBM is highly non-stationary and cannot provide a physical description for particles in a thermalised stationary system. Our findings have direct impact on the modelling of single particle tracking experiments, in particular, under confinement inside cellular compartments or when optical tweezers tracking methods are used.
URI
https://oasis.postech.ac.kr/handle/2014.oak/38010
DOI
10.1039/C4CP02019G
ISSN
1463-9076
Article Type
Article
Citation
Physical Chemistry Chemical Physics, vol. 16, no. 30, page. 15811 - 15817, 2014-06
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