Mechanism for Liquid Phase Exfoliation of MoS2

剥脱关节 超声 溶剂 产量(工程) 材料科学 化学 化学工程 聚乙烯醇缩丁醛 石墨烯 纳米技术 有机化学 色谱法 复合材料 工程类
作者
Ali M. Jawaid,Dhriti Nepal,Kyoungweon Park,Michael L. Jespersen,Anthony Qualley,Peter A. Mirau,Lawrence F. Drummy,Richard A. Vaia
出处
期刊:Chemistry of Materials [American Chemical Society]
卷期号:28 (1): 337-348 被引量:439
标识
DOI:10.1021/acs.chemmater.5b04224
摘要

A highly efficient, reproducible, and scalable approach for exfoliation of MoS2 is critical for utilizing these emerging materials from coatings and composites to printable devices. Additive-free techniques, such as solvent-assisted exfoliation via sonication, are considered to be the most viable approach, where N-methyl-2-pyrrolidone (NMP) is the most effective solvent. However, understanding the mechanism of exfoliation and the key role NMP plays during the process have been elusive and challenges effective improvements in product yield and quality. Here, we report systematic experiments to understand the mechanism of solvent-assisted exfoliation by elucidating the sonolysis chemistries associated with NMP. It is confirmed that in the presence of O2(g) dissolved moisture in NMP plays a critical role during sonication. The higher the moisture content, the more efficient the exfoliation process is. Conversely, when exfoliations are carried out with dried solvents with an inert atmosphere, reaction yields decrease. This is due to redox-active species formed in situ through an autoxidation pathway that converts NMP to N-methyl succinimide by hydroperoxide intermediates. These highly reactive species appear to aid exfoliation by oxidation at reactive edge sites; the charging creates Coulombic repulsion between neighboring sheets that disrupts interlayer basal plane bonding and enables electrostatic stabilization of particles in high-dipole solvents. From these insights, exfoliation in previously reported inactive solvents (e.g., acetonitrile), as well as in the absence of probe sonication, is demonstrated. These findings illustrate that exfoliation of MoS2, and possibly TMD’s in general, can be mediated through understanding the chemistry occurring at the surface–solvent interface.
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