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一种超薄高度还原氧化石墨烯薄膜的自组装及其高电催化活性。

Self-assembly of a thin highly reduced graphene oxide film and its high electrocatalytic activity.

作者信息

Bai Yan-Feng, Zhang Yong-Fang, Zhou An-Wei, Li Hai-Wai, Zhang Yu, Luong John H T, Cui Hui-Fang

机构信息

School of Life Sciences, Zhengzhou University, 100♯ Science Avenue, Zhengzhou, 450001, People's Republic of China.

出版信息

Nanotechnology. 2014 Oct 10;25(40):405601. doi: 10.1088/0957-4484/25/40/405601. Epub 2014 Sep 11.

Abstract

A thin highly reduced graphene oxide (rGO) film was self-assembled at the dimethyl formamide (DMF)-air interface through evaporation-induced water-assisted thin film formation at the pentane-DMF interface, followed by complete evaporation of pentane. The thin film was transferred onto various solid substrates for film characterization and electrochemical sensing. UV-visible spectrometry, scanning electron microscopy (SEM), atomic force microscopy (AFM) and electrochemistry techniques were used to characterize the film. An rGO film showing 82.8% of the transmittance at 550 nm corresponds to a few layers of rGO nanosheets. The rGO nanosheets cross-stack with each other, lying approximately in the plane of the film. An rGO film collected on a glassy carbon (GC) electrode exhibited improved electrical conductivity compared to GC, with the electrode charge-transfer resistance (Rct) reduced from 31 Ω to 22 Ω. The as-formed rGO/GC electrode was mechanically very stable, exhibiting significantly enhanced electrocatalytic activity to H(2)O(2) and dopamine. Multiple layers of the rGO films on the GC electrode showed even stronger electrocatalytic activity to dopamine than that of the single rGO film layer. The controllable formation of a stable rGO film on various solid substrates has potential applications for nanoelectronics and sensors/biosensors.

摘要

通过在戊烷 - 二甲基甲酰胺(DMF)界面处蒸发诱导水辅助薄膜形成,随后戊烷完全蒸发,在二甲基甲酰胺(DMF) - 空气界面自组装形成了一层薄的高度还原氧化石墨烯(rGO)薄膜。将该薄膜转移到各种固体基质上进行薄膜表征和电化学传感。使用紫外 - 可见光谱、扫描电子显微镜(SEM)、原子力显微镜(AFM)和电化学技术对薄膜进行表征。在550 nm处透光率为82.8%的rGO薄膜对应于几层rGO纳米片。rGO纳米片相互交叉堆叠,大致位于薄膜平面内。与玻碳(GC)电极相比,收集在玻碳(GC)电极上的rGO薄膜表现出更高的电导率,电极电荷转移电阻(Rct)从31 Ω降至22 Ω。所形成的rGO/GC电极在机械上非常稳定,对H₂O₂和多巴胺表现出显著增强的电催化活性。GC电极上多层rGO薄膜对多巴胺的电催化活性甚至比单层rGO薄膜更强。在各种固体基质上可控地形成稳定的rGO薄膜在纳米电子学和传感器/生物传感器方面具有潜在应用。

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