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探究 Keggin 型多金属氧酸盐离子液体门控石墨烯晶体管中的双电层电容。

Probing the electric double-layer capacitance in a Keggin-type polyoxometalate ionic liquid gated graphene transistor.

机构信息

Department of Physics, Indian Institute of Technology Madras, Chennai 600036, India.

出版信息

Phys Chem Chem Phys. 2018 Jul 11;20(27):18474-18483. doi: 10.1039/c8cp02307g.

Abstract

A variety of device applications has been proposed using polyoxometalate-based ionic liquids. However, the assembly of large polyoxometalate ions on surfaces and the associated interfacial properties are not well understood, particularly since the assembly is influenced by steric effects and stronger ion-ion interactions. In this study, graphene transistors gated with a polyoxometalate-based ionic liquid were probed with in situ Raman spectroscopy and charge transport studies. The ionic liquid comprised Cu-substituted lacunary Keggin anions, [PW11O39Cu]5-, which were surrounded by tetraoctyl ammonium cations, (C32H68N)+. The application of gate voltage caused these ions to assemble at the interface with graphene, which resulted in a shift of the Fermi level of the graphene monolayer grown on a copper foil. The shift was determined by the quantum capacitance, Cq, of graphene in series with the electric-double layer capacitance. Estimates of the electric-double layer thickness, spatial density of the ions and temporal rate of the assembly of the electric double-layer were obtained. This study provides insights into the microscopic understanding of the electric double-layer formation at the graphene interface.

摘要

已经提出了多种使用多金属氧酸盐基离子液体的器件应用。然而,大的多金属氧酸盐离子在表面上的组装及其相关的界面性质还没有得到很好的理解,特别是因为组装受到空间位阻效应和更强的离子-离子相互作用的影响。在这项研究中,用原位拉曼光谱和电荷输运研究探测了用多金属氧酸盐基离子液体门控的石墨烯晶体管。离子液体由取代的 Keggin 缺位阴离子[PW11O39Cu]5-组成,[PW11O39Cu]5-被四辛基铵阳离子(C32H68N)+包围。栅极电压的施加导致这些离子在与石墨烯的界面处组装,这导致了在铜箔上生长的石墨烯单层的费米能级发生了位移。这种位移是由与双电层电容串联的石墨烯的量子电容 Cq 决定的。还获得了双电层厚度、离子的空间密度和双电层组装的时间速率的估计值。这项研究提供了对石墨烯界面处双电层形成的微观理解的见解。

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