4.6 Article

Structural features and electrostatic energy storage of electric double layers in confined polyelectrolyte solutions under low-salt conditions

期刊

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
卷 24, 期 44, 页码 27009-27022

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2cp03576f

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资金

  1. National Natural Science Foundation of China [51976157]
  2. Xi'an Science and Technology Bureau [2020KJRC0057]
  3. Fundamental Research Funds for the Central Universities [xzy012020075]
  4. China Scholarship Council [202106280109]

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An electric double layer (EDL) in a polyelectrolyte solution has distinct characteristics compared to those in simple electrolyte solutions. The EDL structures have different characteristic length scales for positively and negatively charged surfaces. The scaling law for the electrostatic energy stored in polyelectrolyte EDLs is different from that in electrolyte EDLs.
An electric double layer (EDL) in a polyelectrolyte solution plays a crucial role in diverse fields ranging from physical and life sciences to modern technologies. Due to the nonnegligible excluded volume effects, chain connectivity and complex intermolecular interactions, the EDLs in (confined) polyelectrolyte solutions display distinct features compared to those in simple electrolyte solutions. Here, we conducted a systematic study on the characteristics of EDLs in confined polyelectrolyte solutions for salt-free and low salt concentration systems using self-consistent field theory. Results suggest that the characteristic length scales measuring the EDL structures are different for positively and negatively charged surfaces. The former is the same as in the electrolyte solutions, while the latter is smaller due to the accumulation of oppositely charged polyelectrolytes near the surface. Furthermore, for low surface charge densities, a scaling law for the electrostatic energy stored in polyelectrolyte EDLs (in units of mJ m(-2)) was found to be U proportional to |sigma|(nu) with nu similar to 2-2.7, which differs from the electrolyte EDLs with nu similar to 2; however, such a scaling law breaks down for high surface charge densities.

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