Simple theoretical analysis of the photoemission from quantum confined effective mass superlattices of optoelectronic materials

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Abstract

The photoemission from quantum wires and dots of effective mass superlattices of optoelectronic materials was investigated on the basis of newly formulated electron energy spectra, in the presence of external light waves, which controls the transport properties of ultra-small electronic devices under intense radiation. The effect of magnetic quantization on the photoemission from the aforementioned superlattices, together with quantum well superlattices under magnetic quantization, has also been investigated in this regard. It appears, taking HgTe/Hg1-χCdχTe and InχGa1-χAs/InP effective mass superlattices, that the photoemission from these quantized structures is enhanced with increasing photon energy in quantized steps and shows oscillatory dependences with the increasing carrier concentration. In addition, the photoemission decreases with increasing light intensity and wavelength as well as with increasing thickness exhibiting oscillatory spikes. The strong dependence of the photoemission on the light intensity reflects the direct signature of light waves on the carrier energy spectra. The content of this paper finds six different applications in the fields of low dimensional systems in general. © 2011 De et al.

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De, D., Bhattacharya, S., Adhikari, S. M., Kumar, A., Bose, P. K., & Ghatak, K. P. (2011). Simple theoretical analysis of the photoemission from quantum confined effective mass superlattices of optoelectronic materials. Beilstein Journal of Nanotechnology, 2(1), 339–362. https://doi.org/10.3762/bjnano.2.40

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