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应变调控氧化石墨烯的激发波长依赖荧光。

Excitation wavelength dependent fluorescence of graphene oxide controlled by strain.

机构信息

Department of Mechanical and Aerospace Engineering, West Virginia University, Morgantown, WV 26506-6106, USA.

Department of Industrial and Management Systems Engineering, West Virginia University, Morgantown, WV 26506-6070, USA.

出版信息

Nanoscale. 2017 Feb 9;9(6):2240-2245. doi: 10.1039/c6nr08286f.

Abstract

Unlike conventional fluorophores, the fluorescence emission of graphene oxide (GO) sheets can shift hundreds of nanometers as the excitation wavelength increases. The excitation wavelength dependent fluorescence is referred to as a giant red-edge effect and originates in a local reorganization potential slowing down the solvation dynamics of the excited state to the same time scale as the fluorescence lifetime. The present work has discovered that out-of-plane strain in the graphene oxide sheet leads to the intra-layer interaction necessary to slow down the solvation time scale. The oxygen percentage, dopant percentage, disorder, and strain are correlated with the presence and extent of the red-edge effect in oxygen, boron, nitrogen, and fluorine doped graphene oxide. Of these commonly cited possibilities, only out-of-plane strain is directly correlated to the red-edge effect. Furthermore, it is shown that the extent of the red-edge effect, or how far the emission wavelength can shift with increasing excitation wavelength, can be tuned by the electronegativity of the dopant. The present work interprets why the giant red-edge effect is present in some GO sheets but not in other GO sheets.

摘要

与传统荧光团不同,氧化石墨烯 (GO) 片的荧光发射可以随激发波长的增加移动数百纳米。这种激发波长依赖性荧光被称为巨大的红移效应,源于局部重组势减缓激发态的溶剂化动力学,使其与荧光寿命处于同一时间尺度。本工作发现,氧化石墨烯片的面外应变导致了层内相互作用,从而减缓了溶剂化时间尺度。氧、硼、氮和氟掺杂氧化石墨烯中的氧、硼、氮和氟的氧百分比、掺杂百分比、无序和应变与红移效应的存在和程度相关。在这些常见的可能性中,只有面外应变与红移效应直接相关。此外,还表明,红移效应的程度,或者说发射波长随激发波长增加的移动距离,可以通过掺杂剂的电负性来调节。本工作解释了为什么一些 GO 片具有巨大的红移效应,而另一些则没有。

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