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Mathematical methods for restricted domain ternary liquid mixture free energy determination using light scattering

机译:利用光散射确定受限域三元液体混合物自由能的数学方法

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We extend methods of solution of a light scattering partial differential equation for the free energy of mixing to apply to connected, isotropic ternary liquid composition domains that do not touch all three binary axes. To do so we mathematically analyze the problem of inferring needed Dirichlet boundary data, and solving for the free energy, with use of hypothetical static light scattering measurements that correspond to dielectric composition gradient vectors that have distinct directions. The physical idea behind the technique is that contrasting absorption properties of mixture components can result in such distinctly directed dielectric composition gradient vectors, due to their differing wavelength dependences of dielectric response. At suitably chosen wavelengths, contrasting light scattering efficiency patterns in the ternary composition triangle can then correspond to the same underlying free energy, and enlarge the scope of available information about the free energy, as shown here. We show how to use distinctly directed dielectric gradients to measure the free energy on both straight lines and curves within the ternary composition triangle, so as to provide needed Dirichlet conditions for light scattering partial differential equation solution. With use of Monte Carlo simulations of noisy light scattering data, we provide estimates of the overall system measurement time and sample spacing needed to determine the free energy to a desired degree of accuracy, for various angles between the assumed dielectric gradient vectors, and indicate how the measurement time depends on instrumental throughput parameters. The present analysis methods provide a way to use static light scattering to measure, directly, mixing free energies of many systems that contain such restricted liquid domains, including aqueous solutions of biological macromolecules, micellar mixtures and microemulsions, and many small molecule systems that are important in separation technology.
机译:我们扩展了混合自由能的光散射偏微分方程的求解方法,以应用于不接触所有三个二进制轴的连接的各向同性三元液体组成域。为此,我们使用假设的静态光散射测量来数学推断所需的Dirichlet边界数据并求解自由能,该假设与具有不同方向的介电成分梯度矢量相对应。该技术背后的物理思想是,由于混合成分的吸收特性不同,因此它们的介电响应对波长的依赖性不同,因此可导致这种定向不同的介电成分梯度矢量。然后在适当选择的波长,在三元成分三角形对比光散射效率模式可以对应于相同的基础自由能,和放大的关于自由能可用的信息的范围,如下所示。我们展示了如何使用不同方向的介电梯度来测量三元组分三角形内的直线和曲线上的自由能,从而为光散射偏微分方程解提供所需的Dirichlet条件。利用蒙特卡洛模拟法对嘈杂的光散射数据进行分析,我们为估计的介电梯度矢量之间的各个角度提供了整个系统测量时间和样本间距的估计,以确定所需的准确度,以确定自由能。测量时间取决于仪器的通量参数。本分析方法提供了一种使用静态光散射直接测量混合包含此类受限液体域的许多系统的自由能的方法,这些系统包括生物大分子水溶液,胶束混合物和微乳状液以及许多重要的小分子系统在分离技术上。

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