2012, ISBN: 9783642309366
This thesis presents the theory of three key elements of optical spectroscopy of the electronic excitations in bilayer graphene: angle-resolved photoemission spectroscopy (ARPES), visible… Mehr…
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This thesis presents the theory of three key elements of optical spectroscopy of the electronic excitations in bilayer graphene: angle-resolved photoemission spectroscopy (ARPES), visible… Mehr…
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2012, ISBN: 9783642309366
This thesis presents the theory of three key elements of optical spectroscopy of the electronic excitations in bilayer graphene: angle-resolved photoemission spectroscopy (ARPES), visible… Mehr…
ISBN: 9783642309366
This thesis presents the theory of three key elements of optical spectroscopy of the electronic excitations in bilayer graphene: angle-resolved photoemission spectroscopy (ARPES), visible… Mehr…
ISBN: 9783642309366
Theory of Bilayer Graphene Spectroscopy: ab 96.49 € eBooks > Sachthemen & Ratgeber > Technik Springer-Verlag GmbH, Springer-Verlag GmbH
2012, ISBN: 9783642309366
eBooks, eBook Download (PDF), Auflage, [PU: Springer-Verlag], [ED: 1], Springer-Verlag, 2012
2012, ISBN: 9783642309366
eBooks, eBook Download (PDF), 2013, [PU: Springer Berlin], Springer Berlin, 2012
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Detailangaben zum Buch - Theory of Bilayer Graphene Spectroscopy
EAN (ISBN-13): 9783642309366
ISBN (ISBN-10): 3642309364
Erscheinungsjahr: 2012
Herausgeber: Springer-Verlag
84 Seiten
Sprache: eng/Englisch
Buch in der Datenbank seit 2012-04-18T05:51:11+02:00 (Berlin)
Detailseite zuletzt geändert am 2024-04-07T06:51:59+02:00 (Berlin)
ISBN/EAN: 9783642309366
ISBN - alternative Schreibweisen:
3-642-30936-4, 978-3-642-30936-6
Alternative Schreibweisen und verwandte Suchbegriffe:
Autor des Buches: mucha, much, marci
Titel des Buches: graphene, ski
Daten vom Verlag:
Autor/in: Marcin Mucha-Kruczyński
Titel: Springer Theses; Theory of Bilayer Graphene Spectroscopy
Verlag: Springer; Springer Berlin
86 Seiten
Erscheinungsjahr: 2012-09-06
Berlin; Heidelberg; DE
Sprache: Englisch
96,29 € (DE)
99,00 € (AT)
118,00 CHF (CH)
Available
X, 86 p.
EA; E107; eBook; Nonbooks, PBS / Chemie/Physikalische Chemie; Spektroskopie, Spektrochemie, Massenspektrometrie; Verstehen; Bilayer Graphene; Chiral Electron States in Graphene; Electron-hole Excitations in Graphene; Electronic Structure of Bilayer Graphene; Graphene Interlayer Asymmetry; Graphene Spectroscopy; Graphene Tight-binding; Studying BLG; B; Spectroscopy; Surfaces, Interfaces and Thin Film; Surface and Interface and Thin Film; Nanophysics; Nanotechnology; Physics and Astronomy; Materialwissenschaft; Physik der kondensierten Materie (Flüssigkeits- und Festkörperphysik); Nanowissenschaften; Nanotechnologie; BC
This thesis presents the theory of three key elements of optical spectroscopy of the electronic excitations in bilayer graphene: angle-resolved photoemission spectroscopy (ARPES), visible range Raman spectroscopy, and far-infrared (FIR) magneto-spectroscopy. Bilayer graphene (BLG) is an atomic two-dimensional crystal consisting of two honeycomb monolayers of carbon, arranged according to Bernal stacking. The unperturbed BLG has a unique band structure, which features chiral states of electrons with a characteristic Berry phase of 2$\\pi$, and it has versatile properties which can be controlled by an externally applied transverse electric field and strain. It is shown in this work how ARPES of BLG can be used to obtain direct information about the chirality of electron states in the crystal. The author goes on to describe the influence of the interlayer asymmetry, which opens a gap in BLG, on ARPES and on FIR spectra in a strong magnetic field. Finally, he presents a comprehensive theory of inelastic Raman scattering resulting in the electron-hole excitations in bilayer graphene, at zero and quantizing magnetic fields. This predicts their polarization properties and peculiar selection rules in terms of the inter-Landau-level transitions.Nominated as an outstanding contribution by the University of Lancaster Investigates a novel material at the focus of much research interest Valuable theoretical results show what different spectroscopic techniques can reveal about graphene Includes supplementary material: sn.pub/extras
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