Title :
Gain slope compensator for spectrally linear optical power equalization
Author :
Goossen, K.W. ; Walker, J.A. ; Neilson, D.T. ; Ford, J.E. ; Knox, W.H.
Author_Institution :
Lucent Technol., Bell Labs., Holmdel, NJ, USA
Abstract :
We present a micromechanical optical interference device that produces changes in the slope (in dB) of its transmitted spectrum via a single voltage control, without changes in attenuation level, a Spectrally Linear Optical Power Equalizer, or SLOPE device. Simple linear power equalization is sometimes all that is required in optical networks, especially in optical amplifiers, and this device can perform this function inexpensively and with easier control than multi-element equalizers. The device element is a vertically moving membrane similar to the MARS modulator. The reflectivity of the element is varied by the adjustment of the air gap via a bias applied to the element´s electrode. The element can be thought of as a thin-film optical stack where one of the films (the air gap) is variable. Its reflectivity is transmitted via a dual fiber ferrule arrangement, in which the light comes into the device in one fiber, is reflected off the device and focused onto the outgoing fiber
Keywords :
equalisers; light interference; micro-optics; micromechanical devices; optical elements; optical fibres; optical films; reflectivity; thin film devices; MARS modulator; SLOPE device; air gap; attenuation level; bias; device element; dual fiber ferrule arrangement; focused light; gain slope compensator; linear power equalization; micromechanical optical interference device; multi-element equalizers; optical amplifiers; optical network; outgoing fiber; reflectivity; single voltage control; slope; spectrally linear optical power equalization; spectrally linear optical power equalizer; thin-film optical stack; transmitted spectrum; transmitted spectrum slope; vertically moving membrane; Equalizers; Micromechanical devices; Optical attenuators; Optical devices; Optical fiber devices; Optical fiber networks; Optical films; Optical modulation; Reflectivity; Stimulated emission;
Conference_Titel :
LEOS '99. IEEE Lasers and Electro-Optics Society 1999 12th Annual Meeting
Conference_Location :
San Francisco, CA
Print_ISBN :
0-7803-5634-9
DOI :
10.1109/LEOS.1999.811998