Raman spectroscopy of graphene-based materials and its applications in related devices

Рамановская спектроскопия графеновых материалов и ее применения в связанных с ними устройствах
Henan Liu, Jiangbin Wu, Xin Cong, Ping‐Heng Tan, Miao‐Ling Lin
2018-01-01

Raman spectroscopygraphene layer characterizationgraphene-based materialsresonance Raman spectroscopyvan der Waals heterostructures
Graphene-based materials exhibit remarkable electronic, optical, and mechanical properties, which has resulted in both high scientific interest and huge potential for a variety of applications. Furthermore, the family of graphene-based materials is growing because of developments in preparation methods. Raman spectroscopy is a versatile tool to identify and characterize the chemical and physical properties of these materials, both at the laboratory and mass-production scale. This technique is so important that most of the papers published concerning these materials contain at least one Raman spectrum. Thus, here, we systematically review the developments in Raman spectroscopy of graphene-based materials from both fundamental research and practical (i.e., device applications) perspectives. We describe the essential Raman scattering processes of the entire first- and second-order modes in intrinsic graphene. Furthermore, the shear, layer-breathing, G and 2D modes of multilayer graphene with different stacking orders are discussed. Techniques to determine the number of graphene layers, to probe resonance Raman spectra of monolayer and multilayer graphenes and to obtain Raman images of graphene-based materials are also presented. The extensive capabilities of Raman spectroscopy for the investigation of the fundamental properties of graphene under external perturbations are described, which have also been extended to other graphene-based materials, such as graphene quantum dots, carbon dots, graphene oxide, nanoribbons, chemical vapor deposition-grown and SiC epitaxially grown graphene flakes, composites, and graphene-based van der Waals heterostructures. These fundamental properties have been used to probe the states, effects, and mechanisms of graphene materials present in the related heterostructures and devices. We hope that this review will be beneficial in all the aspects of graphene investigations, from basic research to material synthesis and device applications.
1
Raman characterization of graphene-based materials supports analysis of states, effects, and mechanisms in related heterostructures and devices, linking fundamental research with synthesis and applications.
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Raman methods can determine graphene layer number, probe resonance spectra in mono- and multilayer graphene, and produce Raman images of graphene-based materials.
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Raman spectroscopy enables investigation of graphene’s fundamental properties under external perturbations and has been extended to quantum dots, graphene oxide, nanoribbons, composites, and van der Waals heterostructures.
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Raman spectroscopy is a versatile laboratory- and production-scale method for identifying and characterizing graphene-based materials’ chemical and physical properties.
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The review details first- and second-order Raman scattering processes in intrinsic graphene, including shear, layer-breathing, G, and 2D modes in multilayer graphene with different stacking orders.

graphene-based materials and related graphene heterostructures and devices

Raman-spectroscopic characterization of their chemical, physical, and fundamental properties, including layer structure, responses to external perturbations, and device-relevant states and mechanisms

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2018-01-01
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Henan Liu
Jiangbin Wu
Xin Cong
Ping‐Heng Tan
Miao‐Ling Lin
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