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Ionic solids from common colloids 期刊论文
NATURE, 2020, 580 (7804) : 487-+
作者:  Delord, T.;  Huillery, P.;  Nicolas, L.;  Hetet, G.
收藏  |  浏览/下载:23/0  |  提交时间:2020/07/03

Oppositely charged colloidal particles are assembled in water through an approach that allows electrostatic interactions to be precisely tuned to generate macroscopic single crystals.


From rock salt to nanoparticle superlattices, complex structure can emerge from simple building blocks that attract each other through Coulombic forces(1-4). On the micrometre scale, however, colloids in water defy the intuitively simple idea of forming crystals from oppositely charged partners, instead forming non-equilibrium structures such as clusters and gels(5-7). Although various systems have been engineered to grow binary crystals(8-11), native surface charge in aqueous conditions has not been used to assemble crystalline materials. Here we form ionic colloidal crystals in water through an approach that we refer to as polymer-attenuated Coulombic self-assembly. The key to crystallization is the use of a neutral polymer to keep particles separated by well defined distances, allowing us to tune the attractive overlap of electrical double layers, directing particles to disperse, crystallize or become permanently fixed on demand. The nucleation and growth of macroscopic single crystals is demonstrated by using the Debye screening length to fine-tune assembly. Using a variety of colloidal particles and commercial polymers, ionic colloidal crystals isostructural to caesium chloride, sodium chloride, aluminium diboride and K4C60 are selected according to particle size ratios. Once fixed by simply diluting out solution salts, crystals are pulled out of the water for further manipulation, demonstrating an accurate translation from solution-phase assembly to dried solid structures. In contrast to other assembly approaches, in which particles must be carefully engineered to encode binding information(12-18), polymer-attenuated Coulombic self-assembly enables conventional colloids to be used as model colloidal ions, primed for crystallization.


  
Loopy Levy flights enhance tracer diffusion in active suspensions 期刊论文
NATURE, 2020, 579 (7799) : 364-+
作者:  Hu, Bo;  Jin, Chengcheng;  Zeng, Xing;  Resch, Jon M.;  Jedrychowski, Mark P.;  Yang, Zongfang;  Desai, Bhavna N.;  Banks, Alexander S.;  Lowell, Bradford B.;  Mathis, Diane;  Spiegelman, Bruce M.
收藏  |  浏览/下载:24/0  |  提交时间:2020/07/03

A theoretical framework describing the hydrodynamic interactions between a passive particle and an active medium in out-of-equilibrium systems predicts long-range Levy flights for the diffusing particle driven by the density of the active component.


Brownian motion is widely used as a model of diffusion in equilibrium media throughout the physical, chemical and biological sciences. However, many real-world systems are intrinsically out of equilibrium owing to energy-dissipating active processes underlying their mechanical and dynamical features(1). The diffusion process followed by a passive tracer in prototypical active media, such as suspensions of active colloids or swimming microorganisms(2), differs considerably from Brownian motion, as revealed by a greatly enhanced diffusion coefficient(3-10) and non-Gaussian statistics of the tracer displacements(6,9,10). Although these characteristic features have been extensively observed experimentally, there is so far no comprehensive theory explaining how they emerge from the microscopic dynamics of the system. Here we develop a theoretical framework to model the hydrodynamic interactions between the tracer and the active swimmers, which shows that the tracer follows a non-Markovian coloured Poisson process that accounts for all empirical observations. The theory predicts a long-lived Levy flight regime(11) of the loopy tracer motion with a non-monotonic crossover between two different power-law exponents. The duration of this regime can be tuned by the swimmer density, suggesting that the optimal foraging strategy of swimming microorganisms might depend crucially on their density in order to exploit the Levy flights of nutrients(12). Our framework can be applied to address important theoretical questions, such as the thermodynamics of active systems(13), and practical ones, such as the interaction of swimming microorganisms with nutrients and other small particles(14) (for example, degraded plastic) and the design of artificial nanoscale machines(15).


  
Impact of Spatially Variable Collision Efficiency on the Transport of Biocolloids in Geochemically Heterogeneous Porous Media 期刊论文
WATER RESOURCES RESEARCH, 2018, 54 (6) : 3841-3862
作者:  Katzourakis, Vasileios E.;  Chrysikopoulos, Constantinos V.
收藏  |  浏览/下载:9/0  |  提交时间:2019/04/09
colloids  biocolloids  transport  reversible attachment  irreversible attachment  spatial variability  porous media  mathematical modeling  
Colloidal transport in the Gordon Gulch catchment of the Boulder Creek CZO and its effect on C-Q relationships for silicon 期刊论文
WATER RESOURCES RESEARCH, 2017, 53 (3)
作者:  Aguirre, Arnulfo A.;  Derry, Louis A.;  Mills, Taylor J.;  Anderson, Suzanne P.
收藏  |  浏览/下载:22/0  |  提交时间:2019/04/09
germanium-silicon  weathering  colloids  concentration-discharge  
Linking deposit morphology and clogging in subsurface remediation: Final Technical Report 科技报告
来源:US Department of Energy (DOE). 出版年: 2013
作者:  Mays, David C. [University of Colorado Denver]
收藏  |  浏览/下载:9/0  |  提交时间:2019/04/05
groundwater  remediation  permeability  clogging  colloids  fractal  
LONG-TERM COLLOID MOBILIZATION AND COLLOID-FACILITATED TRANSPORT OF RADIONUCLIDES IN A SEMI-ARID VADOSE ZONE 科技报告
来源:US Department of Energy (DOE). 出版年: 2012
作者:  Markus Flury;  James B. Harsh;  Fred Zhang;  Glendon W. Gee;  Earl D. Mattson;  Peter C. L
收藏  |  浏览/下载:7/0  |  提交时间:2019/04/05
colloids  vadose zone  
Partitioning of Nanoparticles into Organic Phases and Model Cells 科技报告
来源:US Department of Energy (DOE). 出版年: 2011
作者:  Aluzzi, F J
收藏  |  浏览/下载:11/0  |  提交时间:2019/04/05
nano particle  fate and transport  toxicology  nano-bio interface  colloids