References
177
https://doi.org/10.1134/S1063782619120273
3. L.M. Schneider, S.S. Esdaille, D.A. Rhodes, K. Barmak, J.C. Hone, A. Rahimi-Iman, Direct
measurement of the radiative pattern of bright and dark excitons and exciton complexes in
encapsulated tungsten diselenide. Sci. Rep. 10, 8091 (2020). https://doi.org/10.1038/s41598020-64838-z
4. A. Rahimi-Iman, Spectroscopy Techniques for Polariton Research. Springer Series in Optical
Sciences, vol. 229 (Springer International Publishing, Cham, 2020), pp. 167–193
5. L.M. Schneider, S. Lippert, J. Kuhnert, O. Ajayi, D. Renaud, S. Firoozabadi, Q. Ngo, R. Guo,
Y.D. Kim, W. Heimbrodt, J.C. Hone, and A. Rahimi-Iman, The influence of the environment
on monolayer tungsten diselenide photoluminescence. Nano-Struct. Nano-Objects, 15, 84–97
(2018). https://doi.org/10.1016/j.nanoso.2017.08.009
6. O. Mey, F. Wall, L.M. Schneider, D. Günder, F. Walla, A. Soltani, H. Roskos, N. Yao, P. Qing,
W. Fang, A. Rahimi-Iman, Enhancement of the monolayer tungsten disulfide exciton photoluminescence with a two-dimensional material/air/gallium phosphide in-plane microcavity.
ACS Nano 13, 5259–5267 (2019). https://doi.org/10.1021/acsnano.8b09659
7. S. Lippert, L.M. Schneider, D. Renaud, K.N. Kang, O. Ajayi, J. Kuhnert, M.-U. Halbich, O.M.
Abdulmunem, X. Lin, K. Hassoon, S. Edalati-Boostan, Y.D. Kim, W. Heimbrodt, E.-H. Yang,
J.C. Hone, A. Rahimi-Iman, Influence of the substrate material on the optical properties of
tungsten diselenide monolayers, 2D Mater. 4, 025045 (2017). https://doi.org/10.1088/20531583/aa5b21
8. L.M. Schneider, J. Kuhnert, S. Schmitt, W. Heimbrodt, U. Huttner, L. Meckbach, T. Stroucken,
S.W. Koch, S. Fu, X. Wang, K. Kang, E.-H. Yang, A. Rahimi-Iman, Spin-layer and spin-valley
locking in CVD-grown AA’- and AB-stacked tungsten-disulfide bilayers. J. Phys. Chem. C
123, 21813–21821 (2019). https://doi.org/10.1021/acs.jpcc.9b07213
9. X. Hong, J. Kim, S.-F. Shi, Y. Zhang, C. Jin, Y. Sun, S. Tongay, J. Wu, Y. Zhang, F. Wang,
Ultrafast charge transfer in atomically thin MoS 2 /WS 2 heterostructures. Nat. Nanotechnol.
9, 682–686 (2014)
10. H. Fang, C. Battaglia, C. Carraro, S. Nemsak, B. Ozdol, J.S. Kang, H.A. Bechtel, S.B. Desai,
F. Kronast, A.A. Unal, G. Conti, C. Conlon, G.K. Palsson, M.C. Martin, A.M. Minor, C.S.
Fadley, E. Yablonovitch, R. Maboudian, A. Javey, Strong interlayer coupling in van der Waals
heterostructures built from single-layer chalcogenides. Proc. Natl. Acad. Sci. 111, 6198–6202
(2014)
11. A.J. Huber, D. Kazantsev, F. Keilmann, J. Wittborn, R. Hillenbrand, Simultaneous IR material recognition and conductivity mapping by nanoscale near-field microscopy. Adv. Mater.
19(17), 2209–2213 (2007)
12. F. Walla, M.M. Wiecha, N. Mecklenbeck, S. Beldi, F. Keilmann, M.D. Thomson, H.G. Roskos,
Anisotropic excitation of surface plasmon polaritons on a metal film by a scattering-type
scanning near-field microscope with a non-rotationally-symmetric probe tip. Nanophotonics
7(1), 269–276 (2018)
13. T. Taubner, F. Keilmann, R. Hillenbrand, Nanoscale-resolved subsurface imaging by
scattering-type near-field optical microscopy. Opt. Express 13(22), 8893 (2005)
14. A. Rahimi-Iman, Nichtlineare Effekte in III/V Quantenfilm-Mikroresonatoren: Von dynamischer Bose–Einstein-Kondensation hin zum elektrisch betriebenen Polariton-Laser (Cuvillier
Verlag, Göttingen, 2013)
15. R. Li, L.M. Schneider, W. Heimbrodt, H. Wu, M. Koch, A. Rahimi-Iman, Gate tuning of
Förster resonance energy transfer in a graphene - quantum dot FET photo-detector. Sci. Rep.
6, 28224 (2016). https://doi.org/10.1038/srep28224
16. H. Deng, H. Haug, Y. Yamamoto, Exciton-polariton Bose-Einstein condensation. Rev. Mod.
Phys. 82, 1489 (2010)
17. R.A. Taylor, J.F. Rayn, Time-resolved exciton photoluminescence in GaSe and GaTe. J. Phys.
C: Solid State Phys. 20, 6175–6187 (1987)
18. H. Haug, S.W. Koch, Quantum Theory of the Optical and Electronic Properties of Semiconductors, 5th edn. (World Scientific Publishing Co., 2009)
Précédent

- 203/288

Suivant