Abstract

In this paper, for the first time, the switchable two-color quantum dot laser has been realized considering solution process technology, which has both simultaneous and lonely lasing capability exploiting selective energy contacts. Furthermore, both channels can be modulated independently, which is a significant feature in high-speed data transmission. To this end, utilizing superimposed quantum dots with various radii in the active layer provides the different emission wavelengths. In order to achieve the different sizes of QDs, solution process technology has been used as a cost-effectiveness and fabrication ease method. Moreover, at the introduced structure to accomplish the idea, the quantum wells are used as separate selective energy contacts to control the lasing channels at the desired wavelength. It makes the prominent device have simultaneous lasing at different emission wavelengths or be able to lase just at one wavelength. The performance of the proposed device has been modeled based on developed rate equation by assuming inhomogeneous broadening of energy levels as a consequence of the size distribution of quantum dots and considering tunnel injection of carriers into the quantum dots via selective energy contacts. Based on simulation results, the simultaneous lasing in both or at one of two wavelengths 1.31 μm and 1.55 μm has been realized by the superimposition of two different sizes of InGaAs quantum dots in a single cavity and accomplishment of selective energy contacts. Besides, controlling the quantum dot coverage leads to managing the output power and modulation response at the desired wavelengths. By offering this idea, one more step is actually taken to approach the switchable QD-laser by the simple solution process method.

Highlights

  • In this paper, for the first time, the switchable two-color quantum dot laser has been realized considering solution process technology, which has both simultaneous and lonely lasing capability exploiting selective energy contacts

  • Two selective energy contacts (SECs) are used each of which injected carriers into the related quantum dots (QDs) via tunneling effects. Both of the output emission can be modulated independently, which is a significant feature in high-speed data transmission

  • The switchable two-color QD-laser utilizing SECs by considering the solution process technology has been proposed for the first time

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Summary

Concept and Theoretical Modeling

The theoretical model is provided for the proposed structure. As mentioned before, the aim of this paper is achieving to a switchable two-color QD-laser by selective contacts. Considering solution process technology, the size of each QD group relates to the emission wavelength of each channel and can be deviated from the value R1 or R2, leading to the broadening of energy levels in each QD ensembles. According to Bi,mn the FWHM is 2ħΓB in which ΓB is the polarization dephasing or scattering rate[20] In this equation E1,m, E1,n (E2,m, E2,n) refer to the energy of mth mode and nth group of big QDs, relevant to channel[1] (small QDs corresponding to channel[2]). When the HB of energy levels is small in comparison with IHB, the different sizes of QD groups have been spatially isolated from each, leading the optical gain of lasing modes independent of other modes. The mirror reflectivity is r, which can be substituted with r1 or r2

Selective Energy Contacts
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