Hou Chang-Yu, Freed Denise E, Sen Pabitra N
Schlumberger-Doll Research, 1 Hampshire Street, Cambridge, Massachusetts 02139, USA.
35 Hazel Road, Berkeley, California 94705, USA.
Phys Rev E. 2017 Apr;95(4-1):042601. doi: 10.1103/PhysRevE.95.042601. Epub 2017 Apr 5.
We study the low-frequency polarization response of a surface-charged oblate spheroidal particle immersed in an electrolyte solution. Because the charged spheroid attracts counterions which form the electric double layer around the particle, using usual boundary conditions at the interface between the particle and electrolyte can be quite complicated and challenging. Hence, we generalize Fixman's boundary conditions, originally derived for spherical particles, to the case of the charged oblate spheroid. Given two different counterion distributions in the thin electric double-layer limit, we obtain analytic expressions for the polarization coefficients to the first nontrivial order in frequency. We find that the polarization response normal to the symmetry axis depends on the total amount of charge carried by the oblate spheroid while that parallel to the symmetry axis is suppressed when there is less charge on the edge of the spheroid. We further study the overall dielectric response for a dilute suspension of charged spheroids. We find that the dielectric enhancement at low frequency, which is driven by the presence of a large ζ potential (surface charge), is suppressed by high ion concentrations in the electrolyte and depends on the size of the suspended particles. In addition, spheroids with higher aspect ratios will also lead to a stronger dielectric enhancement due to the combination of the electric double layer and textural effects. The characteristic frequency associated with the dielectric enhancement scales inversely with the square of the particle size, the major radius of the spheroid, and it has a weak dependence on the shape of spheroids.
我们研究了浸没在电解质溶液中的表面带电扁球体颗粒的低频极化响应。由于带电球体吸引反离子,这些反离子在颗粒周围形成双电层,因此在颗粒与电解质之间的界面处使用常规边界条件可能相当复杂且具有挑战性。因此,我们将最初为球形颗粒推导的菲克斯曼边界条件推广到带电扁球体的情况。在薄双电层极限下给定两种不同的反离子分布,我们得到了极化系数在频率上一阶非平凡阶的解析表达式。我们发现,垂直于对称轴的极化响应取决于扁球体所携带的总电荷量,而当球体边缘电荷量较少时,平行于对称轴的极化响应会受到抑制。我们进一步研究了带电球体稀悬浮液的整体介电响应。我们发现,由大的ζ电位(表面电荷)引起的低频介电增强会被电解质中的高离子浓度抑制,并且取决于悬浮颗粒的大小。此外,由于双电层和纹理效应的结合,具有较高纵横比的球体也会导致更强的介电增强。与介电增强相关的特征频率与颗粒大小(球体的主半径)的平方成反比,并且对球体形状的依赖性较弱。