Title :
Proposal of an optical modulator based on resonant tunneling and intersubband transitions
Author :
Holmström, P. ; Thylén, L. ; Ukenberg, U.
Author_Institution :
Dept. of Electron., R. Inst. of Technol., Kista, Sweden
fDate :
2/1/2001 12:00:00 AM
Abstract :
We propose and analyze an optical modulator based on intersubband transitions. The absorption is modulated by modulating the carrier density in the ground state of a quantum well (QW). Electrons are injected resonantly into this subband from a QW reservoir subband through a single barrier. When the two states are tuned out of resonance, the electrons are rapidly evacuated by means of the optical field. A waveguide based on surface plasmons is assumed in order to have a high optical mode overlap. Calculations are performed for a cascaded structure with four periods, assuming InGaAs-InIAs QWs. The considered modulator structure operates at λ=6.0 μm and is RC limited to 27 GHz. An extinction ratio of 4 is obtained with a low applied voltage of 0.6 V. At larger applied voltages, the absorption is bistable. Absorption at shorter/longer wavelengths can be obtained by using materials with a larger/smaller conduction band offset. We also assess resonant tunneling from a 2-D electron gas reservoir into an array of quantum dots and compare it to the 2-D-2-D tunneling resonance
Keywords :
III-V semiconductors; electro-optical modulation; gallium arsenide; indium compounds; optical waveguides; resonant tunnelling; semiconductor quantum wells; surface plasmons; two-dimensional electron gas; 0.6 V; 2-D electron gas reservoir; 2-D-2-D tunneling resonance; 6 mum; InGaAs-InIAs; InGaAs-InIAs QW; QW reservoir subband; RC limited; applied voltage; bistable light absorption; carrier density; cascaded structure; ground state; high optical mode overlap; intersubband transitions; optical field; optical modulator; quantum dots; quantum well; resonant electron injection; resonant tunneling; single barrier; surface plasmons; Absorption; Charge carrier density; Electron optics; Optical bistability; Optical modulation; Optical waveguides; Proposals; Reservoirs; Resonance; Resonant tunneling devices;
Journal_Title :
Quantum Electronics, IEEE Journal of