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在水悬浮液中通过控制臭氧和热处理来修饰还原/氧化石墨烯的光学性质。

Modifying optical properties of reduced/graphene oxide with controlled ozone and thermal treatment in aqueous suspensions.

机构信息

Department of Physics and Astronomy, Texas Christian University, TCU Sid Richardson Building, TCU Box 298840, Fort Worth, TX 76129, USA.

出版信息

Nanotechnology. 2017 Feb 10;28(6):065705. doi: 10.1088/1361-6528/aa5232. Epub 2017 Jan 4.

Abstract

Graphene possesses a number of advantageous properties, however, does not exhibit optical emission, which limits its use in optoelectronics. Unlike graphene, its functional derivative, graphene oxide (GO) exhibits fluorescence emission throughout the visible. Here, we focus on controlled methods for tuning the optical properties of GO. We introduce ozone treatment of reduced graphene oxide (RGO) in order to controllably transform it from non-emissive graphene-like material into GO with a specific fluorescence emission response. Solution-based treatment of RGO for 5-45 min with ∼1.2 g l ozone/oxygen gas mixture yields a drastic color change, bleaching of the absorption in the visible and the stepwise increase in fluorescence intensity and lifetime. This is attributed to the introduction of oxygen-containing functional groups to RGO graphitic platform as detected by the infrared spectroscopy. A reverse process: controllable quenching of this fluorescence is achieved by the thermal treatment of GO in aqueous suspension up to 90 °C. This methodology allows for the wide range alteration of GO optical properties starting from the dark-colored non-emissive RGO material up to nearly transparent highly ozone-oxidized GO showing substantial fluorescence emission. The size of the GO flakes is concomitantly altered by oxidation-induced scission. Semi-empirical PM3 theoretical calculations on HyperChem models are utilized to explore the origins of optical response from GO. Two models are considered, attributing the induced emission either to the localized states produced by oxygen-containing addends or the islands of graphitic carbon enclosed by such addends. Band gap values calculated from the models are in the agreement with experimentally observed transition peak maxima. The controllable variation of GO optical properties in aqueous suspension by ozone and thermal treatments shown in this work provides a route to tune its optical response for particular optoelectronics or biomedical applications.

摘要

石墨烯具有许多优良的性能,但不具有光致发光性,这限制了其在光电子学中的应用。与石墨烯不同,其功能衍生物氧化石墨烯(GO)在整个可见光范围内都表现出荧光发射。在这里,我们专注于调控 GO 光学性质的可控方法。我们引入了氧化石墨烯(RGO)的臭氧处理,以便将其从无发射的类石墨烯材料可控地转化为具有特定荧光发射响应的 GO。用 1.2 g l 臭氧/氧气混合气对 RGO 进行 5-45 min 的溶液处理,导致颜色急剧变化,可见吸收漂白,荧光强度和寿命逐渐增加。这归因于含氧官能团被引入到 RGO 石墨平台,如红外光谱所检测到的。通过将 GO 在水悬浮液中热处理至 90°C,可以实现相反的过程:即对该荧光的可控猝灭。这种方法允许从深颜色的无发射 RGO 材料到几乎透明的高度臭氧氧化的 GO,大范围改变 GO 的光学性质,后者表现出显著的荧光发射。GO 薄片的尺寸也同时通过氧化诱导的断裂而改变。利用 HyperChem 模型上的半经验 PM3 理论计算来探索 GO 的光学响应的起源。考虑了两种模型,将诱导发射归因于含氧添加物产生的局域态或被这些添加物包围的石墨碳岛。从模型计算的带隙值与实验观察到的跃迁峰最大值一致。本文所示的在水悬浮液中通过臭氧和热处理对 GO 光学性质的可控变化为其在特定光电子学或生物医学应用中的光学响应调节提供了途径。

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