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Chemistry, physics and biology of graphene-based nanomaterials: new horizons for sensing, imaging and medicine

机译:石墨烯基纳米材料的化学,物理和生物学:传感,成像和医学的新视野

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Recent experimental and industrial advances in the field of nanotechnologies have boosted the development of interdisciplinary research, one of the most constructive and inspiring of human pursuits. Many scientists specialize in manufacturing new forms of nanomaterials that hold promise for various applications such as medical diagnosis and therapy, environmental monitoring, energy production and storage, molecular computing and much more. Graphene, an increasingly important nanosized material reported in 2004, has emerged to become an exciting two-dimensional material with distinct attributes that has attracted great interest in the fields of physics, chemistry, biology and medicine, as well as their related interdisciplinarities. The unique nature of graphene makes it stand out and applicable to various technologies. Its photoelectric properties and inherent Raman spectroscopy make it an ideal candidate for the development of new devices and methods in many branches of life sciences and technology. The electronic properties of graphene make it a highly useful nanomaterial. It carries a high charge mobility which allows it to be extensively applied to field effect transistors. Graphene also has unparalleled transparency and conductivity, making it a viable electrode in solar cells. In addition, the specific area of graphene makes energy storage possible. Although these properties are inherent to the compound, graphene can also be modified into a better nanomaterial. Due to its outstanding performance, graphene development shows great promise in several scientific fields. This paper aims to elaborate on the details of current studies using graphene with regards to the optical and electronic characteristics, fabrication techniques, and various relevant applications.
机译:纳米技术领域的最新实验和工业进展促进了跨学科研究的发展,这是人类追求的最具建设性和启发性的研究之一。许多科学家专门研究制造新型纳米材料,这些纳米材料有望用于各种应用,例如医学诊断和治疗,环境监测,能源生产和存储,分子计算等等。石墨烯是2004年报道的一种越来越重要的纳米级材料,已发展成为一种令人兴奋的具有独特属性的二维材料,引起了人们对物理学,化学,生物学和医学及其相关学科交叉领域的极大兴趣。石墨烯的独特性质使其脱颖而出并适用于各种技术。它的光电性能和固有的拉曼光谱使它成为生命科学和技术的许多分支中开发新设备和方法的理想人选。石墨烯的电子性质使其成为非常有用的纳米材料。它具有高电荷迁移率,使其可以广泛应用于场效应晶体管。石墨烯还具有无与伦比的透明性和导电性,使其成为太阳能电池中的可行电极。另外,石墨烯的特定面积使得能量存储成为可能。尽管这些特性是化合物固有的,但石墨烯也可以改性为更好的纳米材料。由于其出色的性能,石墨烯的发展在几个科学领域都显示出巨大的希望。本文旨在详细介绍当前使用石墨烯进行的有关光学和电子特性,制造技术以及各种相关应用的研究细节。

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