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PH-and solute-dependent adsorption of single-wall carbon nanotubes onto hydrogels: Mechanistic insights into the metal/semiconductor separation

机译:PH和溶质依赖的单壁碳纳米管在水凝胶上的吸附:对金属/半导体分离的机理的了解

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The gel separation of single-wall carbon nanotubes (SWCNTs) suspended in sodium dodecyl sulfate (SDS) is expected to be one of the most successful methods of large-scale and high-purity separation. Understanding the mechanism of the gel separation helps improve the quality and quantity of separation and reveals the colloidal behaviors of SWCNTs, which reflects their band structures. In this study, we characterize the pH-and solute-dependent adsorption of SWCNTs onto agarose and Sephacryl hydrogels and provide a mechanistic model of the metal/semiconductor separation. The adsorbability of SWCNTs is substantially reduced under acidic pH conditions. Importantly, the pH dependence differs between metallic and semiconducting species; therefore, the adsorbability is related to the band-structure-dependent oxidation of the SWCNTs. Oxidation confers positive charges on SWCNTs, and these charges enhance the electrostatic interactions of the SWCNTs with SDS, thereby leading to the condensation of SDS on the SWCNTs. This increase in SDS density reduces the interactions between the SWCNTs and hydrogels. Under highly basic conditions, such as pH ~12.5, or in the presence of salts, the adsorption is dissociative because of the condensation of SDS on the SWCNTs through electrostatic screening by counterions. Desorption of the SWCNTs from the hydrogels due to the addition of urea implies a hydrophobic interface between SDS-dispersed SWCNTs and the hydrogels. These results suggest that the metal/semiconductor separation can be explained by the alteration of the interaction between SDS-dispersed SWCNTs and the hydrogels through changes in the conformation of SDS on the SWCNTs depending on the SWCNTs' band structures.
机译:悬浮在十二烷基硫酸钠(SDS)中的单壁碳纳米管(SWCNT)的凝胶分离有望成为大规模和高纯度分离最成功的方法之一。了解凝胶分离的机理有助于提高分离的质量和数量,并揭示SWCNTs的胶体行为,这反映了它们的能带结构。在这项研究中,我们表征了SWCNT在琼脂糖和Sephacryl水凝胶上的pH和溶质依赖性吸附,并提供了金属/半导体分离的机理模型。在酸性pH条件下,SWCNT的吸附能力大大降低。重要的是,金属和半导体物质之间的pH依赖性不同。因此,吸附性与SWCNT的能带结构相关的氧化有关。氧化使SWCNT上带有正电荷,这些电荷增强了SWCNT与SDS的静电相互作用,从而导致SDS在SWCNT上凝聚。 SDS密度的增加降低了SWCNT与水凝胶之间的相互作用。在高碱性条件下,例如pH〜12.5,或在盐的存在下,由于SDS通过抗衡离子的静电筛选,SDS在SWCNT上的缩合,因此吸附是解离的。由于添加了尿素,SWCNT从水凝胶中解吸,这意味着SDS分散的SWCNT与水凝胶之间存在疏水界面。这些结果表明金属/半导体的分离可以通过改变SDS分散的SWCNT与水凝胶之间的相互作用来解释,这取决于SWCNT的能带结构,从而改变了SWDS上SDS的构象。

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