单一电解质体系下恒电荷土壤胶体扩散双电层中滑动层厚度的计算
作者:
作者单位:

作者简介:

通讯作者:

中图分类号:

基金项目:

国家自然科学基金项目(41101223) 、重庆市自然科学基金项目(cstc2014jcyjA80031,CSTC2013jcyjA20024)、中央高校基本业务费专项资金项目(XDJK2014D049)和重庆市大学生创新创业训练计划项目(201410642005)资助


Calculation of thickness of shear plane in diffuse double layer of constant charge soil colloid in single electrolyte system
Author:
Affiliation:

Fund Project:

  • 摘要
  • |
  • 图/表
  • |
  • 访问统计
  • |
  • 参考文献
  • |
  • 相似文献
  • |
  • 引证文献
  • |
  • 资源附件
  • |
  • 文章评论
    摘要:

    土壤胶体颗粒表面滑动层厚度是一个重要的物理参数。利用Gouy-Chapman理论推导得到单一电解质体系中滑动层厚度计算公式,测得三种紫色土胶体颗粒表面电位值和ζ电位值,通过计算得到滑动层厚度值。结果表明: (1)在2:1型电解质体系中三种紫色土胶体表面电位和zeta电位绝对值均远低于1:1型电解质体系,两种单一电解质体系下三种紫色土表面电位值随电解质浓度变化差异要远大于zeta电位值;(2) 两种单一电解质体系下三种紫色土胶体滑动层均离双电层中Stern层较远,而与Gouy层靠近,并且在2:1电解质体系中的滑动层厚度要远低于1:1电解质体系; (3) 三种紫色土胶体颗粒随着电解质浓度升高,其滑动厚度均变薄。不同表面电位土壤胶体颗粒, 在电解质浓度较低时,它们的滑动层厚度差异显著;当电解质浓度较高时,它们的滑动层厚度之间差异不明显。

    Abstract:

    When a colloidal particle carrying surface charge is dispersed in an aqueous solution, it adsorbs a large volume of ions, reverse in charge at its solid/liquid interface, thus forming an electric double layer (EDL), which plays a vital role in ion sorption and desorption at the solid/liquid interface of charged colloidal particles and in stability of the colloidal particle suspension and stability of protein system According to the theory of the EDL model, a shear layer exists between the shear plane where Zeta potential (ζ) exists in the electric double layer and the particle surface, and thickness of the shear layer is the distance between the shear plane and the particle surface. Thickness of the shear layer is not only an important physical parameter in the research on colloid and interface chemistry, but also closely related with some electro-chemical properties, such as electrodialysis, electrophoresis, streaming potential and sedimentation potential. Nowadays, researchers commonly use the colloidal particle double electro layer model and DLVO theory in their studies on thickness of the shear layer and hold that the shear layer is very close to the Stern layer or the outer Helmholtz layer; and as thick as the diameter of about 2 ~ 3 water molecules, about 0.5 nm, because they deem zeta potential approximate to the surface charge of colloidal particles. Meanwhile some researchers have figured out that the shear layer is 0.03 μm, 0.1 μm, < 0.25 μm or no more than 2 μm and believe that particle surface charge is infinite. And also some researchers have concluded through theoretical analysis that the shear layer is very closed to the Gouy plane in the electric double layer, however, its actual position is hard to determine. In light of the above described analyses, it is quite clear that the results the researchers obtained as to thickness of the shear layer vary sharply, mainly because it is very hard to measure accurately colloidal particle surface charge. In the colloid diffuse electro double layer theory, although it is still not clear where the particle shear layer actually is, it is certain that it lies in-between the outer Helmholts layer and the Gouy layer. Therefore, it is feasible to use the Gouy-Chapman potential distribution equation to describe the relationship between potential φ(x) of any point in the double electro layer and its corresponding point x. In this paper, from the Gouy-Chapman theory an equation was derived to calculate thickness of the shear layer (xS) in the single electrolyte system. Based on the soil colloid surface potential and zeta potential measured by zetaPlus, thickness of the shear layer (xS) was calculated. (1) Surface potentials and zeta potentials of colloidal particles in acidic, neutral and calcareous purplish soil samples are much higher in the 1:1 type electrolyte system than in the 2:1 type electrolyte system, and in the two single electrolyte systems, the variation of surface potential with concentration of the electrolyte is much sharper than that of zeta potential. (2) In the two single electrolyte systems, all the three purplish soils show the colloidal shear layer is quite far away from the Stern layer, but quite close to the Gouy layer in the diffuse double layer (DDL), and the shear layer is much thinner in the 2:1 type electrolyte system than in the in 1:1 type electrolyte system. (3) The shear layer gets thinner with rising concentration of the electrolyte in all the three soils. On different soil colloidal particles with surface charge, the shear layers differed significantly in thickness when concentration of the electrolyte is low (p<0.05), and not so significantly when concentration of the electrolyte is high (p>0.05). This study has not only brought forth a new theory and method for calculating thickness of the shear layer of soil colloidal particles in the single electrolyte system, but also provided some bases for enriching the theories of colloid diffuse double layer structure.

    参考文献
    相似文献
    引证文献
引用本文

丁武泉,朱启红,王 磊,罗雅雪,李 强,朱华玲,胡斐南,朱龙辉,李 航.单一电解质体系下恒电荷土壤胶体扩散双电层中滑动层厚度的计算[J].土壤学报,2015,52(4):859-868. DOI:10.11766/trxb201409060453 Ding Wuqaun, Zhu Qihong, Wang Lei, Luo Yaxue, Li Qiang, Zhu Hualing, Hu Feinan, Zhu Longhui, Li Hang. Calculation of thickness of shear plane in diffuse double layer of constant charge soil colloid in single electrolyte system[J]. Acta Pedologica Sinica,2015,52(4):859-868.

复制
分享
文章指标
  • 点击次数:
  • 下载次数:
  • HTML阅读次数:
  • 引用次数:
历史
  • 收稿日期:2014-09-06
  • 最后修改日期:2014-11-25
  • 录用日期:2015-01-29
  • 在线发布日期: 2015-04-24
  • 出版日期: