Enhanced coherent control of carrier and spin density in a zinc-blende semiconductor by cascaded second-harmonic generation

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Abstract

Phase- and polarization-dependent optical processes involving pulses with frequencies ω and 2ω can be used to independently control electron and spin density in zinc-blende semiconductors such as GaAs. One such process is quantum interference control (QUIC) where interference between transition amplitudes associated with one- and two-photon absorption alters the carrierspin generation rate. A second process, which has been acknowledged but not utilized, is cascaded second-harmonic (CASH) generation in which phase-dependent upconversiondownconversion between the two pulses modulates the 2ω pulse intensity andor polarization and hence modulates the carrier or spin generation rate by single-photon absorption at 2ω. Here we report the use of (110)-oriented GaAsAlGaAs quantum wells with a 500-nm AlGaAs buffer layer to enhance CASH and to allow independent control of spin and carrier densities. Experiments conducted with 100-fs pulses at 775 and 1550 nm or at 715 and 1430 nm, with different polarization states and with different sample orientations, show how QUIC and CASH processes vary with excitation frequency and demonstrate the dominant role played by CASH. We point the way to achieving nearly 100% control through CASH. © 2005 American Institute of Physics.

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Stevens, M. J., Bhat, R. D. R., Pan, X. Y., Van Driel, H. M., Sipe, J. E., & Smirl, A. L. (2005). Enhanced coherent control of carrier and spin density in a zinc-blende semiconductor by cascaded second-harmonic generation. Journal of Applied Physics, 97(9). https://doi.org/10.1063/1.1879079

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