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Titlebook: Raman Spectroscopy of Two-Dimensional Materials; Ping-Heng Tan Book 2019 Springer Nature Singapore Pte Ltd. 2019 2Dl Materials.Graphene.Tr

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Xuhong An,Zhenhua Ni,Zexiang Shenentries, all written by leading experts in their respective fields, will therefore address both the basic/clinical scientist as well as the practitioner. Moreover, the Encyclopedia of Exercise Medicine is aimed at people in related fields, health care professionals, physiotherapists, trainers, stude
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Raman Spectroscopy of Monolayer and Multilayer Graphenes,ssed. Finally, various types of resonance Raman spectroscopy of 1LG and MLG are also presented. The Raman spectroscopy of graphene materials can serve as a typical example in studying the Raman spectroscopy of other 2DMs and introducing the fundamental physical concepts for 2DMs.
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Raman Spectroscopy of van der Waals Heterostructures,al boron nitride (BN) can exhibit the Hofstadter’s butterfly phenomenon because of the nanoscale periodic interaction between the graphene and BN lattices [5–7]. Transition metal dichalcogenide (TMD) heterostructures can host long-lived interlayer excitons due to the staggered band alignment between
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Disorder and Defects in Two-Dimensional Materials Probed by Raman Spectroscopy, studied since the 70’ies, with the two basic parameters being represented by the peak linewidths (Γ) and by the integrated intensity ratio (A./A.) between the defect-induced (D) mode and the Raman allowed graphene (G) mode. The amorphization of graphene has been fully described in the terms present
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Ultralow-Frequency Raman Spectroscopy of Two-dimensional Materials,pict their layer-number dependent frequencies. Subsequently, two popular Raman setups are introduced to perform the ULF modes measurements (Section 10.3). Then, we provide a review of the ULF Raman spectroscopy of various types of 2DMs, including: (1) layer-number dependent (Section 10.4.1) and (2)
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Correction to: Raman Spectroscopy of Two-Dimensional Materials,
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