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Molecular Insights into the Surface Morphology, Layering Structure, and Aggregation Kinetics of Surfactant-Stabilized Graphene Dispersions

机译:表面活性剂稳定的石墨烯分散体的表面形态,分层结构和聚集动力学的分子洞察

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摘要

The production of graphene with open band gaps for the manufacturing of graphene-based electronic and optical devices requires synthesis methods to either control the number of layers to enrich AB-stacked bilayer or trilayer graphene or control the extent of functionalization of monolayer graphene. Solution-phase dispersion of graphene is promising for both methods to create printable electronics and nanocomposites. However, both methods face common challenges, including controlling the surface morphology, reducing the turbostratic layering, and enhancing the dispersion stability. To address these challenges at the molecular level, we successfully combined molecular simulations, theoretical modeling, and experimental measurements. First, we probed the surface structure and electrostatic potential of monolayer graphene dispersed in a sodium cholate (SC) surfactant aqueous solution, which exhibits ID sheets partially covered with a monolayer of negatively charged cholate ions. Similar to the case of carbon nanotube functionalization, one may regulate the binding affinity of charged reactants for graphene functionalization by manipulating the surface morphology. Subsequently, we quantified the interactions between two graphene-surfactant assemblies by calculating the potential of mean force (PMF) between two surfactant-covered graphene sheets, which confirmed the existence of a metastable bilayer graphene structure due to the steric hindrance of the confined surfactant molecules. The traditional Derjaguin-Landau-Verwey-Overbeek (DLVO) theory was found to be adequate to explain the long-range electrostatic repulsions between the ionic surfactant-covered graphene sheets but was unable to account for the dominant, short-range steric hindrance imparted by the confined surfactant molecules. Interestingly, one faces a dilemma when using surfactants to disperse and stabilize graphene in aqueous solution: on the one hand, surfactants can stabilize graphene aqueous dispersions, but on the other hand, they prevent the formation of new AB-stacked bilayer and trilayer graphene resulting from the reaggregation process. Finally, the lifetime and time-dependent distribution of various graphene layer types were predicted using a kinetic model of colloid aggregation, and each graphene layer type was further decomposed into subtypes, including the AB-stacked species and various turbostratic species. The kinetic model of colloid aggregation developed here can serve as a useful tool to evaluate the quality of graphene dispersions for subsequent substrate-transferring or functionalization processes.
机译:具有开放带隙的石墨烯的生产用于制造基于石墨烯的电子和光学器件需要合成方法以控制层数以富集AB堆叠的双层或三层石墨烯或控制单层石墨烯的功能化程度。石墨烯的固溶相分散对于制造可印刷电子产品和纳米复合材料的两种方法都有希望。但是,这两种方法都面临共同的挑战,包括控制表面形态,减少涡轮层分层以及增强分散体稳定性。为了在分子水平上解决这些挑战,我们成功地将分子模拟,理论建模和实验测量相结合。首先,我们研究了分散在胆酸钠(SC)表面活性剂水溶液中的单层石墨烯的表面结构和静电势,该单层石墨烯的ID片部分被单层带负电荷的胆酸盐离子覆盖。与碳纳米管功能化的情况类似,可以通过控制表面形态来调节带电反应物对石墨烯功能化的结合亲和力。随后,我们通过计算两个表面活性剂覆盖的石墨烯片之间的平均力(PMF)的潜力来量化两个石墨烯-表面活性剂组件之间的相互作用,这证实了由于受限的表面活性剂分子的空间位阻而存在亚稳双层石墨烯结构的存在。发现传统的Derjaguin-Landau-Verwey-Overbeek(DLVO)理论足以解释离子表面活性剂覆盖的石墨烯片之间的远距离静电排斥,但不能解释由Derjaguin-Landau-Verwey-Overbeek造成的主要,近距离空间位阻受限的表面活性剂分子。有趣的是,在使用表面活性剂分散和稳定水溶液中的石墨烯时,一个难题:一方面,表面活性剂可以稳定石墨烯的水分散体,但另一方面,它们可以防止形成新的AB堆积的双层和三层石墨烯从重新聚合过程中。最后,使用胶体聚集的动力学模型预测了各种石墨烯层类型的寿命和时间依赖性分布,并且将每种石墨烯层类型进一步分解为亚型,包括AB堆积物种和各种涡轮层物种。本文开发的胶体聚集动力学模型可以用作评估石墨烯分散体质量的有用工具,以用于后续的底物转移或功能化过程。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2011年第32期|p.12810-12823|共14页
  • 作者单位

    Departments of Chemical, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States;

    Departments of Chemical, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States;

    Departments of Chemical, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States;

    Departments of Chemical, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 03:14:25

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