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首页> 外文期刊>Biophysical Chemistry: An International Journal Devoted to the Physical Chemistry of Biological Phenomena >TRANSIENT ELECTRIC BIREFRINGENCE OF COLLOIDAL PARTICLES IMMERSED IN SHEAR FLOW .2. THE INITIAL RESPONSE UNDER THE ACTION OF A RECTANGULAR ELECTRIC PULSE AND THE BEHAVIOR AT A LOW ALTERNATING ELECTRIC FIELD
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TRANSIENT ELECTRIC BIREFRINGENCE OF COLLOIDAL PARTICLES IMMERSED IN SHEAR FLOW .2. THE INITIAL RESPONSE UNDER THE ACTION OF A RECTANGULAR ELECTRIC PULSE AND THE BEHAVIOR AT A LOW ALTERNATING ELECTRIC FIELD

机译:剪切流中浸入的胶体粒子的瞬态电双折射2。矩形电脉冲作用下的初始响应及低交变电场下的行为

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摘要

The time-dependent rotational diffusion equation for rigid macromolecules in solution has been approximately solved for two cases in order to extend the electric birefringence technique to streaming-electric birefringence. One is for the initial period through the application of a rectangular electric pulse to the solution immersed in a low shear flow. The purpose of this is expansion of the distribution function into a function series made by the product of the powers of reduced time (= Theta t) and hydrodynamic field alpha (= G/Theta, G: velocity gradient, Theta: rotary diffusion constant) and a surface harmonic P-i(j) cos j phi. The solution for the build-up process at arbitrary electric field strength is found, but is limited to low hydrodynamic fields. The other is for the response when an alternating electric field is applied to the solution in a shear flow. Here, instead of reduced time, the maximum electric field E(O) is chosen as a parameter for the expansion. The expressions for the intensity of the transmitted light through crossed Nicols are derived in two optical systems where the polarizer is set at an angle of 45 degrees and 0 degrees to the direction of the electric field. The results in the former case show that we can determine four parameters, the ratio of velocity gradient to rotary diffusion constant, the axial ratio of a particle, the anisotropy of electric polarizability, and the optical anisotropy factor, from four values observed in two optical systems, namely, two light intensities before applying an electric field and two initial slopes of the build-up after applying an electric field. On the other hand, when a low alternating electric field with extremely high frequency is applied, the build-up of the light intensity in the former case is the same as that of electric birefringence for pure induced dipole orientation. The build-up for the latter optical system is the same as the expression for pure induced dipole orientation of Eq. (38) shown in a previous work. [References: 17]
机译:为了将电双折射技术扩展到流电双折射,已经针对两种情况近似求解了溶液中刚性大分子随时间变化的旋转扩散方程。一种方法是在初始阶段通过向浸没在低剪切流中的溶液施加矩形电脉冲。这样做的目的是将分布函数扩展为由减少时间(= Theta t)的幂和流体力学场α(= G / Theta,G:速度梯度,Theta:旋转扩散常数)的乘积组成的函数系列表面谐波Pi(j)cos j phi。找到了在任意电场强度下建立过程的解决方案,但仅限于低水动力场。另一个是当在剪切流中向溶液施加交变电场时的响应。在此,代替减少的时间,选择最大电场E(O)作为膨胀的参数。通过交叉尼科耳棱镜的透射光强度的表达式是在两个光学系统中得出的,在这些光学系统中,偏光器设置为与电场方向成45度和0度的角度。前一种情况的结果表明,我们可以从在两个光学系统中观察到的四个值确定四个参数,即速度梯度与旋转扩散常数的比,粒子的轴向比,电极化率的各向异性和光学各向异性因子。系统,即施加电场之前的两个光强度和施加电场之后的两个初始堆积坡度。另一方面,当施加具有极高频率的低交变电场时,在前一种情况下光强度的累积与用于纯感应偶极子取向的电双折射的累积相同。后一个光学系统的建立与等式的纯感应偶极子定向的表达式相同。 (38)在以前的作品中显示。 [参考:17]

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