Lifting the mist of flatland: The recent progress in the characterizations of two-dimensional materials

IF 4.5 2区 材料科学 Q1 CRYSTALLOGRAPHY
Mengjian Zhu , Kun Huang , Kai-Ge Zhou
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引用次数: 11

Abstract

In the great adventure of two-dimensional (2D) materials, the characterization techniques are the lighthouse to guide the investigators across heavy mist and submerged reef. In this review, we highlight the recent achievements in the characterization of the 2D materials. Firstly, the methods to identify the fundamental properties of the 2D materials are introduced. Then, the specific characterization techniques for analyzing electric, optical and chemical properties are summarized with regards to their corresponding fields of applications. It should also be noted that a big challenge remains in the characterizations of the 2D materials in the hybrid or composite and wide acceptance of the characterization standards need to be established to further promote the industrialization of 2D materials in the near future.

Abstract Image

解除平原的迷雾:二维材料表征的最新进展
在二维(2D)材料的伟大冒险中,表征技术是引导研究者穿越浓雾和暗礁的灯塔。在这篇综述中,我们重点介绍了最近在二维材料表征方面取得的成就。首先,介绍了二维材料基本性质的识别方法。然后,总结了分析材料电学、光学和化学性质的具体表征技术及其相应的应用领域。需要注意的是,在混合或复合材料中,二维材料的表征仍然是一个很大的挑战,需要建立广泛接受的表征标准,以在不久的将来进一步促进二维材料的工业化。
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来源期刊
Progress in Crystal Growth and Characterization of Materials
Progress in Crystal Growth and Characterization of Materials 工程技术-材料科学:表征与测试
CiteScore
8.80
自引率
2.00%
发文量
10
审稿时长
1 day
期刊介绍: Materials especially crystalline materials provide the foundation of our modern technologically driven world. The domination of materials is achieved through detailed scientific research. Advances in the techniques of growing and assessing ever more perfect crystals of a wide range of materials lie at the roots of much of today''s advanced technology. The evolution and development of crystalline materials involves research by dedicated scientists in academia as well as industry involving a broad field of disciplines including biology, chemistry, physics, material sciences and engineering. Crucially important applications in information technology, photonics, energy storage and harvesting, environmental protection, medicine and food production require a deep understanding of and control of crystal growth. This can involve suitable growth methods and material characterization from the bulk down to the nano-scale.
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