Interaction of femtosecond laser radiation with carbon materials: exfoliation of graphene structures and synthesis of low-dimensional carbon structures
https://doi.org/10.17586/2220-8054-2016-7-1-220-225
Abstract
Carbon is represented in modern nanomaterials by a large variety of modifications. Various methods and technologies have been developed to create these various forms. Methods utilizing laser irradiation constitute a large portion of these techniques. The action of laser pulses upon graphite may result in the exfoliation of graphene layers. This paper presents the results of implementing method of laser-induced cleavage of graphite in liquid nitrogen using femtosecond laser radiation pulses. The process of obtaining graphene from the laser processing of graphite is accompanied by the formation of various types of low-dimensional carbon structures.
About the Authors
D. AbramovRussian Federation
Vladimir
S. Arakelian
Russian Federation
Vladimir
D. Kochuev
Russian Federation
Vladimir
S. Makov
Russian Federation
Vladimir
V. Prokoshev
Russian Federation
Vladimir
K. Khorkov
Russian Federation
Vladimir
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Review
For citations:
Abramov D., Arakelian S., Kochuev D., Makov S., Prokoshev V., Khorkov K. Interaction of femtosecond laser radiation with carbon materials: exfoliation of graphene structures and synthesis of low-dimensional carbon structures. Nanosystems: Physics, Chemistry, Mathematics. 2016;7(1):220-225. https://doi.org/10.17586/2220-8054-2016-7-1-220-225