학술논문

Broadband MEMS-Tunable High-Index-Contrast Subwavelength Grating Long-Wavelength VCSEL
Document Type
Periodical
Source
IEEE Journal of Quantum Electronics IEEE J. Quantum Electron. Quantum Electronics, IEEE Journal of. 46(9):1245-1253 Sep, 2010
Subject
Engineered Materials, Dielectrics and Plasmas
Photonics and Electrooptics
Gratings
Vertical cavity surface emitting lasers
Laser tuning
Optical tuning
Resonance
Optical surface waves
Surface emitting lasers
Mirrors
Optical reflection
Power generation
Microelectromechanical
sensor
sub-wavelength grating
vertical-cavity surface-emitting laser
Language
ISSN
0018-9197
1558-1713
Abstract
A widely-tunable single-mode 1.3 $\mu{\rm m}$ vertical-cavity surface-emitting laser structure incorporating a microelectromechanical system-tunable high-index-contrast subwavelength grating (HCG) mirror is suggested and numerically investigated. A linear tuning range of 100 nm and a wavelength tuning efficiency of 0.203 are predicted. The large tuning range and efficiency are attributed to the incorporation of the tuning air gap as part of the optical cavity and to the use of a short cavity structure. The short cavity length can be achieved by employing a HCG design of which the reflection mechanism does not rely on resonant coupling. The absence of resonance coupling leads to a $0.59 \lambda$-thick penetration depth of the HCG and enables to use a $0.25 \lambda$-thick tuning air gap underneath the HCG. This considerably reduces the effective cavity length, leading to larger tuning range and efficiency. The basic properties of this new structure are analyzed, and shown to be explained by analytical expressions that are derived in the paper. In this context, the penetration depth of the HCG is introduced and shown to be an important characteristic length scale. Throughout the tuning wavelength range, strong single mode operation was maintained and uniform output power is expected.