绿色工艺中的石墨烯纳米结构及其在生物医学传感器中的应用

IF 9.9 Q1 MATERIALS SCIENCE, COMPOSITES Advanced Industrial and Engineering Polymer Research Pub Date : 2024-01-01 DOI:10.1016/j.aiepr.2023.03.001
Rebecca Goodrum , Haftom Weldekidan , Huiyan Li , Amar K. Mohanty , Manjusri Misra
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引用次数: 0

摘要

石墨烯具有不同寻常的物理特性,如高导热性、高导电性、高弹性和独特的光学特性,因此适合生物传感和药物输送等多种生物医学应用。石墨烯和石墨烯衍生物的纳米结构已被制造出来并应用于不同类型的生物传感器。在这篇文章中,我们回顾了石墨烯和石墨烯衍生物纳米材料制造的最新进展,尤其关注生产生物基石墨烯纳米结构的绿色工艺。我们深入讨论了用于合成几层石墨烯薄片的各种方法,包括自上而下和自下而上的方法。分析了使用这些绿色工艺的好处和当前面临的挑战。我们还讨论了这些纳米材料在生物医学传感器中的应用。目前有关石墨烯基纳米结构在生物医学传感器中应用的综述简要总结了当前的技术。我们对目前最先进的石墨烯基生物传感器进行了综述,并深入总结了它们的工作机制以及如何使用石墨烯纳米材料来提高它们的灵敏度。我们根据这些传感器的工作原理对其进行了分组,如用于检测和量化各种生物分子和细胞的光学和电化学传感器。我们将基于石墨烯纳米材料的生物传感器的性能与传统生物传感技术进行了比较,并讨论了它们的优缺点。文章最后总结了我们的研究成果,讨论了当前面临的挑战,并概述了将石墨烯基纳米结构用于生物传感应用的未来方向。
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Graphene-based nanostructures from green processes and their applications in biomedical sensors

Graphene has unusual physical properties such as high thermal and electrical conductivity, high elasticity, and unique optical properties, making it suitable for a variety of biomedical applications in biosensing and drug delivery. Nanostructures of graphene and graphene derivatives have been fabricated and applied to different types of biosensors. In this article, we have reviewed recent advances in the fabrication of graphene-and graphene-derivatives-based nanomaterials, with a particular focus on green processes for producing bio-based graphene nanostructures. The various methods used to synthesize a few layers of graphene sheets, including the top-down and bottom-up approaches, have been thoroughly discussed. The benefits of using those green processes and current challenges are analyzed. We also discussed the applications of these nanomaterials in biomedical sensors. Current reviews for graphene-based nanostructures in biomedical sensors provide brief summaries of current technologies. We have reviewed current state-of-the-art graphene-based biosensors and provided an in-depth summary of their working mechanism and use of graphene nanomaterials to enhance their sensitivities. We have grouped these sensors based on their working principles, such as optical and electrochemical sensors for detecting and quantifying a variety of biomolecules and cells. The performance of the graphene nanomaterial-based biosensors have been compared with conventional biosensing techniques, and their pros and cons are discussed. We concluded the article by summarizing our findings, discussing current challenges, and outlining the future directions of using graphene-based nanostructures for biosensing applications.

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来源期刊
Advanced Industrial and Engineering Polymer Research
Advanced Industrial and Engineering Polymer Research Materials Science-Polymers and Plastics
CiteScore
26.30
自引率
0.00%
发文量
38
审稿时长
29 days
期刊最新文献
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