电子束诱导 L-半胱氨酸功能化氧化石墨烯纳米复合材料的微图案生成和非晶化

IF 4.7 3区 材料科学 Q2 CHEMISTRY, PHYSICAL Colloid and Interface Science Communications Pub Date : 2024-01-01 DOI:10.1016/j.colcom.2024.100766
Y. Melikyan , H. Gharagulyan , A. Vasil'ev , V. Hayrapetyan , M. Zhezhu , A. Simonyan , D.A. Ghazaryan , M.S. Torosyan , A. Kharatyan , J. Michalicka , M. Yeranosyan
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引用次数: 0

摘要

石墨烯材料的动态演化过程对于科学研究和技术应用都具有重大意义。扫描电子显微镜和透射电子显微镜是能够实时观测和控制此类动态过程的技术中的佼佼者。另一方面,功能化氧化石墨烯因其独特的性能而成为石墨烯族材料中进行此类研究的有利候选材料,这些性能包括大表面积、强大的热稳定性以及还原后值得注意的电气和机械性能。在此,我们报告了电化学剥离氧化石墨烯基底面上 L-半胱氨酸的表面结构和吸附动力学研究。我们发现,电子束辐照会促使功能化氧化石墨烯发生非晶化,同时形成由 L-半胱氨酸-氧化石墨烯纳米结构组成的几何形状可控的微图案。微图案的可控生长和预定排列以及电子束非晶化引起的可控结构紊乱反过来又可能提供定制的特性和功能,为纳米技术、传感器开发和表面工程的潜在应用铺平道路。我们的研究结果表明,氧化石墨烯可以覆盖 L-半胱氨酸,从而控制直径约 10-20 微米的新兴微结构的定位。此外,通过拉曼和 SAED 测量分析,材料中的非晶化程度超过 50%。我们的研究结果表明,这种技术能够直接创建 L-半胱氨酸-氧化石墨烯的微图案,而无需复杂的掩模图案化程序。
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E-beam induced micropattern generation and amorphization of L-cysteine-functionalized graphene oxide nano-composites

The evolution of dynamic processes in graphene-family materials are of great interest for both scientific purposes and technical applications. Scanning electron microscopy and transmission electron microscopy outstand among the techniques that allow both observing and controlling such dynamic processes in real time. On the other hand, functionalized graphene oxide emerges as a favorable candidate from graphene-family materials for such an investigation due to its distinctive properties, that encompass a large surface area, robust thermal stability, and noteworthy electrical and mechanical properties after its reduction. Here, we report on studies of surface structure and adsorption dynamics of L-Cysteine on electrochemically exfoliated graphene oxide's basal plane. We show that electron beam irradiation prompts an amorphization of functionalized graphene oxide along with the formation of micropatterns of controlled geometry composed of L-Cysteine-Graphene oxide nanostructures. The controlled growth and predetermined arrangement of micropatterns as well as controlled structure disorder induced by e beam amorphization, in its turn potentially offering tailored properties and functionalities paving the way for potential applications in nanotechnology, sensor development, and surface engineering. Our findings demonstrate that graphene oxide can cover L-Cysteine in such a way to provide a control on the positioning of emerging microstructures about 10–20 μm in diameter. Besides, Raman and SAED measurement analyses yield above 50% amorphization in a material. The results of our studies demonstrate that such a technique enables the direct creation of micropatterns of L-Cysteine-Graphene oxide eliminating the need for complicated mask patterning procedures.

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来源期刊
Colloid and Interface Science Communications
Colloid and Interface Science Communications Materials Science-Materials Chemistry
CiteScore
9.40
自引率
6.70%
发文量
125
审稿时长
43 days
期刊介绍: Colloid and Interface Science Communications provides a forum for the highest visibility and rapid publication of short initial reports on new fundamental concepts, research findings, and topical applications at the forefront of the increasingly interdisciplinary area of colloid and interface science.
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