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通过脉冲激光沉积直接与热退火一步法制备的氮掺杂石墨烯薄膜的电分析性能

Electroanalytical Performance of Nitrogen-Doped Graphene Films Processed in One Step by Pulsed Laser Deposition Directly Coupled with Thermal Annealing.

作者信息

Bourquard Florent, Bleu Yannick, Loir Anne-Sophie, Caja-Munoz Borja, Avila José, Asensio Maria-Carmen, Raimondi Gaëtan, Shokouhi Maryam, Rassas Ilhem, Farre Carole, Chaix Carole, Barnier Vincent, Jaffrezic-Renault Nicole, Garrelie Florence, Donnet Christophe

机构信息

Laboratoire Hubert Curien, UMR 5516 CNRS, Université de Lyon, Université Jean Monnet, F-42000 Saint-Étienne, France.

Synchrotron SOLEIL, Université Paris-Saclay, Saint Aubin, F-91192 Gif sur Yvette, France.

出版信息

Materials (Basel). 2019 Feb 23;12(4):666. doi: 10.3390/ma12040666.

Abstract

Graphene-based materials are widely studied to enable significant improvements in electroanalytical devices requiring new generations of robust, sensitive and low-cost electrodes. In this paper, we present a direct one-step route to synthetize a functional nitrogen-doped graphene film onto a Ni-covered silicon electrode substrate heated at high temperature, by pulsed laser deposition of carbon in the presence of a surrounding nitrogen atmosphere, with no post-deposition transfer of the film. With the ferrocene methanol system, the functionalized electrode exhibits excellent reversibility, close to the theoretical value of 59 mV, and very high sensitivity to hydrogen peroxide oxidation. Our electroanalytical results were correlated with the composition and nanoarchitecture of the N-doped graphene film containing 1.75 at % of nitrogen and identified as a few-layer defected and textured graphene film containing a balanced mixture of graphitic-N and pyrrolic-N chemical functions. The absence of nitrogen dopant in the graphene film considerably degraded some electroanalytical performances. Heat treatment extended beyond the high temperature graphene synthesis did not significantly improve any of the performances. This work contributes to a better understanding of the electrochemical mechanisms of doped graphene-based electrodes obtained by a direct and controlled synthesis process.

摘要

基于石墨烯的材料得到了广泛研究,以显著改进需要新一代坚固、灵敏且低成本电极的电分析装置。在本文中,我们展示了一种直接的一步法路线,通过在周围氮气气氛存在下脉冲激光沉积碳,在高温加热的镍覆盖硅电极基底上合成功能化氮掺杂石墨烯薄膜,且薄膜无需进行沉积后转移。对于二茂铁甲醇体系,功能化电极表现出优异的可逆性,接近59 mV的理论值,并且对过氧化氢氧化具有非常高的灵敏度。我们的电分析结果与含1.75原子%氮的氮掺杂石墨烯薄膜的组成和纳米结构相关,该薄膜被确定为含有石墨氮和吡咯氮化学官能团平衡混合物的几层有缺陷且有纹理的石墨烯薄膜。石墨烯薄膜中不存在氮掺杂剂会严重降低一些电分析性能。超过高温石墨烯合成温度的热处理并未显著改善任何性能。这项工作有助于更好地理解通过直接且可控的合成过程获得的掺杂石墨烯基电极的电化学机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3bff/6416724/b7b4b6c4d79f/materials-12-00666-g001.jpg

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