Photon absorption in twisted bilayer graphene
Abstract: We investigate one- and two-photon absorption in twisted bilayer graphene (TBLG) by examining the effects of tuning the twist angle $ \theta $ and the excitation energy $ E_l $ on its absorption coefficients $ \alpha_{i=1,2}$. We find that $ \alpha_1 $ as a function of $ E_l $ for TBLG exhibits distinct peaks corresponding to its van Hove singularities (vHs). For small twist angles, such as $\theta \sim 1.8{\circ}$, the magnitude of the resonant peak for $\alpha_1$ is roughly twice that of bilayer graphene (BLG). This enhanced response, compared to BLG, can be attributed to the increased density of states (DOS) in the twisted structure. However, as the twist angle increases the magnitude of the resonant peak approaches that of two decoupled single-layer graphene (SLG) sheets. On the other hand, the two-photon absorption coefficient $ \alpha_2 $ for TBLG at low twist angles displays an enhancement of about one order of magnitude compared to SLG at the energies corresponding to the resonant peak, as well as a small but notable increase relative to BLG. As the twist angle decreases from $ 8{\circ} $ to $ 2.5{\circ} $, the resonant peak intensifies by three orders of magnitude. Interestingly, as $\theta$ increases the resonant features exhibited by $\alpha_{i=1,2}$ \textit{vs.} $ E_l $ shift progressively from the infrared to the visible. On doping TBLG, both $\alpha_1 $ and $ \alpha_2 $ \textit{vs.} $ E_l $ remain essentially unchanged but with a slight red-shift in their resonant peaks. Additionally, we explore various polarization configurations for two-photon absorption and determine the conditions under which $\alpha_2$ becomes extremal.
- I. Amidror, The Theory of the Moiré Phenomenon, edited by I. Amidror (Springer London, 2009).
- E. Y. Andrei and A. H. MacDonald, Graphene bilayers with a twist, Nat Mater 19, 1265 (2020).
- D. Aggarwal, R. Narula, and S. Ghosh, A primer on twistronics: a massless dirac fermion’s journey to moiré patterns and flat bands in twisted bilayer graphene, Journal of Physics: Condensed Matter 35, 143001 (2023).
- J. M. B. Lopes dos Santos, N. M. R. Peres, and A. H. Castro Neto, Graphene bilayer with a twist: Electronic structure, Phys. Rev. Lett. 99, 256802 (2007).
- S. Shallcross, S. Sharma, and O. A. Pankratov, Quantum interference at the twist boundary in graphene, Phys. Rev. Lett. 101, 056803 (2008).
- R. Bistritzer and A. H. MacDonald, Moiré bands in twisted double-layer graphene, Proceedings of the National Academy of Sciences 108, 12233 (2011a).
- J. M. B. Lopes dos Santos, N. M. R. Peres, and A. H. Castro Neto, Continuum model of the twisted graphene bilayer, Phys. Rev. B 86, 155449 (2012).
- G. Trambly de Laissardière, D. Mayou, and L. Magaud, Localization of dirac electrons in rotated graphene bilayers, Nano Letters 10, 804 (2010).
- D. V. Chichinadze, L. Classen, and A. V. Chubukov, Nematic superconductivity in twisted bilayer graphene, Phys. Rev. B 101, 224513 (2020).
- Y.-Z. You and A. Vishwanath, Superconductivity from valley fluctuations and approximate so(4) symmetry in a weak coupling theory of twisted bilayer graphene, npj Quantum Materials 4, 16 (2019).
- B. Roy and V. Juričić, Unconventional superconductivity in nearly flat bands in twisted bilayer graphene, Phys. Rev. B 99, 121407 (2019).
- C. Xu and L. Balents, Topological superconductivity in twisted multilayer graphene, Phys. Rev. Lett. 121, 087001 (2018).
- S. Fang and E. Kaxiras, Electronic structure theory of weakly interacting bilayers, Phys. Rev. B 93, 235153 (2016).
- G. Trambly de Laissardière, D. Mayou, and L. Magaud, Numerical studies of confined states in rotated bilayers of graphene, Phys. Rev. B 86, 125413 (2012).
- V. Nathan, A. H. Guenther, and S. S. Mitra, Review of multiphoton absorption in crystalline solids, J. Opt. Soc. Am. B 2, 294 (1985).
- J. H. Yee, Four-photon transition in semiconductors, Phys. Rev. B 3, 355 (1971).
- M. Bass, E. W. Van Stryland, and A. F. Stewart, Laser calorimetric measurement of two-photon absorption, Applied Physics Letters 34, 142 (2008).
- E. Girlanda, Two-photon absorption in semiconductors in a magnetic field, Il Nuovo Cimento B (1971-1996) 6, 53 (1971).
- M. Rumi and J. W. Perry, Two-photon absorption: an overview of measurements and principles, Adv. Opt. Photon. 2, 451 (2010).
- R. Braunstein and N. Ockman, Optical double-photon absorption in cds, Phys. Rev. 134, A499 (1964).
- U. M. Grassano, Two-photon spectroscopy in insulating crystals, in Optical Properties of Excited States in Solids, edited by B. Di Bartolo and C. Beckwith (Springer US, Boston, MA, 1992) pp. 643–659.
- Q. Cui and H. Zhao, Coherent control of nanoscale ballistic currents in transition metal dichalcogenide res2, ACS Nano 9, 3935 (2015).
- I. Perez-Arjona, G. de Valcarcel, and E. Roldán, Two-photon absorption, Revista Mexicana de Fisica 49, 92 (2003).
- C. Corredor, Z.-L. Huang, and K. Belfield, Two-photon 3d optical data storage via fluorescence modulation of an efficient fluorene dye by a photochromic diarylethene, Advanced Materials 18, 2910 (2006).
- D. A. Parthenopoulos and P. M. Rentzepis, Three-dimensional optical storage memory, Science 245, 843 (1989).
- W. Denk, J. H. Strickler, and W. W. Webb, Two-photon laser scanning fluorescence microscopy, Science 248, 73 (1990).
- R. W. Hellwarth, Theory of stimulated raman scattering, Phys. Rev. 130, 1850 (1963).
- D. J. Gardiner, Introduction to raman scattering, in Practical Raman Spectroscopy, edited by D. J. Gardiner and P. R. Graves (Springer Berlin Heidelberg, Berlin, Heidelberg, 1989) pp. 1–12.
- A. V. Fedorov, A. V. Baranov, and K. Inoue, Two-photon transitions in systems with semiconductor quantum dots, Phys. Rev. B 54, 8627 (1996).
- L. El Chaar, L. lamont, and N. El Zein, Review of photovoltaic technologies, Renewable and Sustainable Energy Reviews 15, 2165 (2011).
- A. Dutta and M. S. Islam, Novel broadband photodetector for optical communication, Proceedings of SPIE - The International Society for Optical Engineering Phone, 282 (2005).
- M. Mahesh, The essential physics of medical imaging, third edition, Med Phys 40 (2013).
- H. Haug and S. W. Koch, Quantum Theory of the Optical and Electronic Properties of Semiconductors, 5th ed. (WORLD SCIENTIFIC, 2009) https://www.worldscientific.com/doi/pdf/10.1142/7184 .
- Y. Wang, M. Tokman, and A. Belyanin, Second-order nonlinear optical response of graphene, Phys. Rev. B 94, 195442 (2016).
- M. Göppert-Mayer, Elementary processes with two quantum transitions, Annalen der Physik 18, 466 (2009).
- C. Cohen-Tannoudji, G. Grynberg, and J. Dupont-Roc, Atom-Photon Interactions: Basic Processes and Applications (Wiley, New York, 1992).
- M. K. Brinkley, D. S. L. Abergel, and B. D. Clader, Two-photon absorption in gapped bilayer graphene with a tunable chemical potential, Journal of Physics: Condensed Matter 28, 365001 (2016).
- K. Forbes, D. Bradshaw, and D. Andrews, Identifying diamagnetic interactions in scattering and nonlinear optics, Physical Review A 94 (2016).
- C. R. Cosens, A balance-detector for alternating-current bridges, Proceedings of the Physical Society 46, 818 (1934).
- W. C. Michels, A Double Tube Vacuum Tube Voltmeter, Review of Scientific Instruments 9, 10 (1938).
- W. C. Michels and N. L. Curtis, A Pentode Lock-In Amplifier of High Frequency Selectivity, Review of Scientific Instruments 12, 444 (1941).
- R. Fitzpatrick, Quantum Mechanics (WORLD SCIENTIFIC, 2015).
- J. M. Ralston and R. K. Chang, OPTICAL LIMITING IN SEMICONDUCTORS, Applied Physics Letters 15, 164 (2003).
- D. A. Kleinman, R. C. Miller, and W. A. Nordland, Two-photon absorption of Nd laser radiation in GaAs, Applied Physics Letters 23, 243 (2003).
- R. G. Wenzel, G. P. Arnold, and N. R. Greiner, Nonlinear loss in ge in the 2.5–4-μ𝜇\muitalic_μm range, Appl. Opt. 12, 2245 (1973).
- A. Penzkofer, W. Falkenstein, and W. Kaiser, Vibronic relaxation in the s1 state of rhodamine dye solutions, Chemical Physics Letters 44, 82 (1976).
- A. Penzkofer and W. Falkenstein, Three-photon absorption and subsequent excited-state absorption in cds, Optics Communications 16, 247 (1976).
- J. H. Bechtel and W. L. Smith, Two-photon absorption in semiconductors with picosecond laser pulses, Phys. Rev. B 13, 3515 (1976).
- A. M. Johnston, C. R. Pidgeon, and J. Dempsey, Frequency dependence of two-photon absorption in insb and hg1−xcdxTesubscripthg1𝑥subscriptcd𝑥Te{\mathrm{hg}}_{1-x}{\mathrm{cd}}_{x}\mathrm{Te}roman_hg start_POSTSUBSCRIPT 1 - italic_x end_POSTSUBSCRIPT roman_cd start_POSTSUBSCRIPT italic_x end_POSTSUBSCRIPT roman_Te, Phys. Rev. B 22, 825 (1980).
- I. M. Catalano, A. Cingolani, and A. Minafra, Multiphoton transitions in ionic crystals, Phys. Rev. B 5, 1629 (1972).
- R. Bistritzer and A. H. MacDonald, Moiré butterflies in twisted bilayer graphene, Phys. Rev. B 84, 035440 (2011b).
- Z. F. Wang, F. Liu, and M. Y. Chou, Fractal landau-level spectra in twisted bilayer graphene, Nano Letters 12, 3833 (2012).
- C. Zhou, X. Feng, and R. Gong, Angle-tunable two-photon absorption in twisted graphene systems, Physica E: Low-dimensional Systems and Nanostructures 140, 115204 (2022a).
- G. Tarnopolsky, A. J. Kruchkov, and A. Vishwanath, Origin of magic angles in twisted bilayer graphene, Phys. Rev. Lett. 122, 106405 (2019).
- L. Rademaker, D. A. Abanin, and P. Mellado, Charge smoothening and band flattening due to hartree corrections in twisted bilayer graphene, Phys. Rev. B 100, 205114 (2019).
- T. Cea, N. R. Walet, and F. Guinea, Electronic band structure and pinning of fermi energy to van hove singularities in twisted bilayer graphene: A self-consistent approach, Phys. Rev. B 100, 205113 (2019).
- J. Jung and A. H. MacDonald, Accurate tight-binding models for the π𝜋\piitalic_π bands of bilayer graphene, Phys. Rev. B 89, 035405 (2014).
- R. Narula, Resonant Raman scattering in graphene, Ph.D. thesis, Massachusetts Institute of Technology, Department of Materials Science and Engineering (2011).
- R. I. Woodward and E. J. R. Kelleher, 2d saturable absorbers for fibre lasers, Applied Sciences 5, 1440 (2015).
- A. Deyasi, Electronic band structure of quantum cascade laser, in Quantum Cascade Lasers, edited by V. N. Stavrou (IntechOpen, Rijeka, 2017) Chap. 2.
- J. C. Slater and G. F. Koster, Simplified lcao method for the periodic potential problem, Phys. Rev. 94, 1498 (1954).
- L. D. Landau and L. M. Lifshitz, Quantum Mechanics Non-Relativistic Theory, Third Edition: Volume 3, 3rd ed. (Butterworth-Heinemann, 1981).
- J. E. Sipe and A. I. Shkrebtii, Second-order optical response in semiconductors, Phys. Rev. B 61, 5337 (2000).
- R. W. Boyd, Chapter 6 - nonlinear optics in the two-level approximation, in Nonlinear Optics (Third Edition), edited by R. W. Boyd (Academic Press, Burlington, 2008) third edition ed., pp. 277–328.
- C. Weber, Optical Dynamics in Low-Dimensional Semiconductor Heterostructures. Quantum Dots and Quantum Cascade Lasers, Ph.D. thesis (2008).
- C. Zhou, X. Feng, and R. Gong, Angle-tunable two-photon absorption in twisted graphene systems, Physica E: Low-dimensional Systems and Nanostructures 140, 115204 (2022b).
Paper Prompts
Sign up for free to create and run prompts on this paper using GPT-5.
Top Community Prompts
Collections
Sign up for free to add this paper to one or more collections.