We demonstrate the independent lithographic mode tuning by changing the holes around the defect area of photonic crystal nanocavities containing light-emitting quantum dots. The data have been verified by the threedimensional finite-difference time domain simulation. These findings can be applied to realize encoded particles with large coding capability (>105) for biosensing. © 2011 Optical Society of America.

Wang, B., Dundar, M., Notzel, R., Karouta, F., He, S., Van Der Heijden, R. (2011). Spectrally encoded photonic crystal nanocavities by independent lithographic mode tuning. JOURNAL OF THE OPTICAL SOCIETY OF AMERICA. B, OPTICAL PHYSICS, 28(4), 721-726 [10.1364/JOSAB.28.000721].

Spectrally encoded photonic crystal nanocavities by independent lithographic mode tuning

Notzel R.;
2011

Abstract

We demonstrate the independent lithographic mode tuning by changing the holes around the defect area of photonic crystal nanocavities containing light-emitting quantum dots. The data have been verified by the threedimensional finite-difference time domain simulation. These findings can be applied to realize encoded particles with large coding capability (>105) for biosensing. © 2011 Optical Society of America.
Articolo in rivista - Articolo scientifico
Finite difference time domain method
English
2011
28
4
721
726
none
Wang, B., Dundar, M., Notzel, R., Karouta, F., He, S., Van Der Heijden, R. (2011). Spectrally encoded photonic crystal nanocavities by independent lithographic mode tuning. JOURNAL OF THE OPTICAL SOCIETY OF AMERICA. B, OPTICAL PHYSICS, 28(4), 721-726 [10.1364/JOSAB.28.000721].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/552625
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