从极低盐浓度下带电棒的玻璃状行为揭示晶体秩序。

IF 8.1 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Hanna Anop, Laura Dal Compare, Frédéric Nallet, Achille Giacometti, Eric Grelet
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引用次数: 0

摘要

带电胶体可以形成有序的结构,如维格纳晶体或玻璃在非常低的浓度,由于远程静电排斥。在这里,我们将小角度x射线散射(SAXS)和光学实验与模拟相结合,研究了带电棒状胶体在大范围盐浓度和填料分数下的相行为。在超低离子强度和填料分数下,我们通过实验和数值揭示了从向列相到晶晶近晶b相的直接转变,之前被确定为玻璃态。这种转变,绕过了smic - a中间相,是由于晶体结构波动导致的库仑排斥最小化和熵增益最大化的结果。这证明了远距离静电斥力如何显著改变棒状粒子的相行为,并突出了其在驱动各向异性粒子自组织中的关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unveiling Crystalline Order from Glassy Behavior of Charged Rods at Very Low Salt Concentrations.

Charged colloids can form ordered structures like Wigner crystals or glasses at very low concentrations due to long-range electrostatic repulsions. Here, we combine small-angle x-ray scattering (SAXS) and optical experiments with simulations to investigate the phase behavior of charged rodlike colloids across a wide range of salt concentrations and packing fractions. At ultralow ionic strength and packing fractions, we reveal both experimentally and numerically a direct transition from a nematic to a crystalline smectic-B phase, previously identified as a glass state. This transition, bypassing the smectic-A intermediate phase, results from minimizing Coulomb repulsion and maximizing entropic gains due to fluctuations in the crystalline structure. This demonstrates how long-range electrostatic repulsion significantly alters the phase behavior of rod-shaped particles and highlights its key role in driving the self-organization of anisotropic particles.

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来源期刊
Physical review letters
Physical review letters 物理-物理:综合
CiteScore
16.50
自引率
7.00%
发文量
2673
审稿时长
2.2 months
期刊介绍: Physical review letters(PRL)covers the full range of applied, fundamental, and interdisciplinary physics research topics: General physics, including statistical and quantum mechanics and quantum information Gravitation, astrophysics, and cosmology Elementary particles and fields Nuclear physics Atomic, molecular, and optical physics Nonlinear dynamics, fluid dynamics, and classical optics Plasma and beam physics Condensed matter and materials physics Polymers, soft matter, biological, climate and interdisciplinary physics, including networks
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