86
3 Light–Matter Interactions for Photonic Applications
community. This had motivated a systematic investigation of THz-induced effects in
various configurations involving ultrafast spectroscopy experiments and microcavity
polaritons, which are outlined in one of the author’s projects (DFG RA2841/9-1).
References
1. C. Weisbuch, M. Nishioka, A. Ishikawa, Y. Arakawa, Observation of the coupled excitonphoton mode splitting in a semiconductor quantum microcavity. Phys. Rev. Lett. 69, 3314
(1992)
2. Y. Yamamoto, A. Imamoglu, Mesoscopic Quantum Optics (Wiley, Hoboken, 1999)
3. Y. Yamamoto, F. Tassone, H. Cao, Semiconductor Cavity Quantum Electrodynamics
(Springer, Berlin, 2000)
4. K. Vahala, Optical Microcavities (World Scientific, Singapore, 2004)
5. B. Deveaud, The Physics of Semiconductor Microcavities (Wiley-VCH Verlag, Weinheim,
2007)
6. D. Sanvitto, V. Timofeev, Exciton Polaritons in Microcavities: New Frontiers (Springer,
Berlin, 2012)
7. A.V. Kavokin, J.J. Baumberg, G. Malpuech, F.P. Laussy, Microcavities, vol. 1 (Oxford University Press, Oxford, 2017)
8. N.Y. Kim, Y. Yamamoto, Exciton-polariton quantum simulators, in Quantum Science and
Technology (Springer International Publishing, Berlin, 2017), pp. 91–121
9. A. Rahimi-Iman, Polariton Physics: From Dynamic Bose–Einstein Condensates in StronglyCoupled Light–Matter Systems to Polariton Lasers. Springer Series in Optical Sciences, vol.
229 (Springer International Publishing, Cham, 2020)
10. H. Yokoyama, Physics and device applications of optical microcavities. Science 256, 66–70
(1992)
11. K.J. Vahala, Optical microcavities. Nature 424, 839–846 (2003)
12. S. Reitzenstein, A. Forchel, Quantum dot micropillars. J. Phys. D: Appl. Phys. 43(3), 033001
(2010)
13. E. Yablonovitch, Inhibited spontaneous emission in solid-state physics and electronics. Phys.
Rev. Lett. 58, 2059–2062 (1987)
14. T.C.H. Liew, I.A. Shelykh, G. Malpuech, Polaritonic devices. Physica E 43(9), 1543–1568
(2011)
15. D. Sanvitto, S. Kéna-Cohen, The road towards polaritonic device. Nat. Mater. 15(10), 1061–
1073 (2016)
16. J. M. Gérard, D. Barrier, J.Y. Marzin, R. Kuszelewicz, L. Manin, E. Costard, V. Thierry Mieg,
T. Rivera, Quantum boxes as active probes for photonic microstructures: the pillar microcavity
case. Appl. Phys. Lett. 69, 449 (1996)
17. Z. Yuan, B.E. Kardynal, R.M. Stevenson, A.J. Shields, C.J. Lobo, K. Cooper, N.S. Beattie,
D.A. Ritchie, M. Pepper, Electrically driven single-photon source. Science 295(5552), 102–
105 (2002)
18. C. Santori, D. Fattal, J. Vuˇ ckovi´ c, G.S. Solomon, Y. Yamamoto, Indistinguishable photons
from a single-photon device. Nature 419, 594–597 (2002)
19. P. Michler (ed.), Single Quantum Dots: Fundamentals, Applications and New Concepts
(Springer, Berlin, 2003)
20. P. Michler (ed.), Single Semiconductor Quantum Dots (Springer, Berlin, 2009)
21. J.-M. Gérard, Solid-state cavity-quantum electrodynamics with self-assembled quantum dots,
in Single Quantum Dots: Fundamentals, Applications, and New Concepts (Springer, Berlin,
2003), pp. 269–314
3 Light–Matter Interactions for Photonic Applications
community. This had motivated a systematic investigation of THz-induced effects in
various configurations involving ultrafast spectroscopy experiments and microcavity
polaritons, which are outlined in one of the author’s projects (DFG RA2841/9-1).
References
1. C. Weisbuch, M. Nishioka, A. Ishikawa, Y. Arakawa, Observation of the coupled excitonphoton mode splitting in a semiconductor quantum microcavity. Phys. Rev. Lett. 69, 3314
(1992)
2. Y. Yamamoto, A. Imamoglu, Mesoscopic Quantum Optics (Wiley, Hoboken, 1999)
3. Y. Yamamoto, F. Tassone, H. Cao, Semiconductor Cavity Quantum Electrodynamics
(Springer, Berlin, 2000)
4. K. Vahala, Optical Microcavities (World Scientific, Singapore, 2004)
5. B. Deveaud, The Physics of Semiconductor Microcavities (Wiley-VCH Verlag, Weinheim,
2007)
6. D. Sanvitto, V. Timofeev, Exciton Polaritons in Microcavities: New Frontiers (Springer,
Berlin, 2012)
7. A.V. Kavokin, J.J. Baumberg, G. Malpuech, F.P. Laussy, Microcavities, vol. 1 (Oxford University Press, Oxford, 2017)
8. N.Y. Kim, Y. Yamamoto, Exciton-polariton quantum simulators, in Quantum Science and
Technology (Springer International Publishing, Berlin, 2017), pp. 91–121
9. A. Rahimi-Iman, Polariton Physics: From Dynamic Bose–Einstein Condensates in StronglyCoupled Light–Matter Systems to Polariton Lasers. Springer Series in Optical Sciences, vol.
229 (Springer International Publishing, Cham, 2020)
10. H. Yokoyama, Physics and device applications of optical microcavities. Science 256, 66–70
(1992)
11. K.J. Vahala, Optical microcavities. Nature 424, 839–846 (2003)
12. S. Reitzenstein, A. Forchel, Quantum dot micropillars. J. Phys. D: Appl. Phys. 43(3), 033001
(2010)
13. E. Yablonovitch, Inhibited spontaneous emission in solid-state physics and electronics. Phys.
Rev. Lett. 58, 2059–2062 (1987)
14. T.C.H. Liew, I.A. Shelykh, G. Malpuech, Polaritonic devices. Physica E 43(9), 1543–1568
(2011)
15. D. Sanvitto, S. Kéna-Cohen, The road towards polaritonic device. Nat. Mater. 15(10), 1061–
1073 (2016)
16. J. M. Gérard, D. Barrier, J.Y. Marzin, R. Kuszelewicz, L. Manin, E. Costard, V. Thierry Mieg,
T. Rivera, Quantum boxes as active probes for photonic microstructures: the pillar microcavity
case. Appl. Phys. Lett. 69, 449 (1996)
17. Z. Yuan, B.E. Kardynal, R.M. Stevenson, A.J. Shields, C.J. Lobo, K. Cooper, N.S. Beattie,
D.A. Ritchie, M. Pepper, Electrically driven single-photon source. Science 295(5552), 102–
105 (2002)
18. C. Santori, D. Fattal, J. Vuˇ ckovi´ c, G.S. Solomon, Y. Yamamoto, Indistinguishable photons
from a single-photon device. Nature 419, 594–597 (2002)
19. P. Michler (ed.), Single Quantum Dots: Fundamentals, Applications and New Concepts
(Springer, Berlin, 2003)
20. P. Michler (ed.), Single Semiconductor Quantum Dots (Springer, Berlin, 2009)
21. J.-M. Gérard, Solid-state cavity-quantum electrodynamics with self-assembled quantum dots,
in Single Quantum Dots: Fundamentals, Applications, and New Concepts (Springer, Berlin,
2003), pp. 269–314