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首页> 外文期刊>The Journal of Chemical Physics >Shape morphology of dipolar domains in planar and spherical monolayers
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Shape morphology of dipolar domains in planar and spherical monolayers

机译:平面和球形单层偶极域的形状形态

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We present a continuum theory for predicting the equilibrium shape and size of dipolar domains formed during liquid-liquid phase coexistence in planar and spherical monolayers. Our main objective is to assess the impact of the monolayer surface curvature on domain morphology. Following previous investigators, we base our analysis around minimizing the free energy, with contributions from line tension and electrostatic dipolar repulsions. Assuming a monodisperse system of circularly symmetric domains, we calculate self-energies and interaction energies for planar and spherical monolayers and determine the equilibrium domain size from the energy minima. We subsequently evaluate the stability of the circularly symmetric domain shapes to an arbitrary, circumferential distortion of the perimeter via a linear stability analysis. We find that the surface curvature generally promotes the formation of smaller, circularly symmetric domains instead of larger, elongated domains. We rationalize these results by examining the effect of the curvature on the intra- and inter-domain dipolar repulsions. We then present a phase diagram of domain shape morphologies, parameterized in terms of the domain area fraction and the monolayer curvature. For typical domain dimensions of 1-30 mu m, our theoretical results are relevant to monolayers (and possibly also bilayers) in liquid-liquid phase coexistence with radii of curvature of 1-100 mu m.
机译:我们提出了一种连续性理论,用于预测在平面和球形单层中液相共存期间形成的偶极结构域的平衡形状和大小。我们的主要目标是评估单层表面曲率对域形态的影响。在先前的调查员之后,我们将我们的分析基于最小化自由能,从线条张力和静电双极排斥力的贡献。假设圆形对称域的单分散系统,我们计算平面和球形单层的自能和相互作用能量,并确定从能量最小值的平衡域大小。我们随后通过线性稳定性分析评估圆形对称畴形状的稳定性到周边的任意,周向变形。我们发现表面曲率通常促进更小,圆形对称域而不是较大的细长域的形成。我们通过检查曲率对域内和域间偶极排斥性的影响来合理化这些结果。然后,我们提出了域形形态的相图,根据域面积分数和单层曲率参数化。对于1-30μm的典型域尺寸,我们的理论结果与液 - 液相共存的单层(并且可能也是双层),其含有1-100μm的曲率半径。

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