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Longitudinal wave function control in single quantum dots with an applied magnetic field

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arxiv 1501.07853 v1 pith:ANFO7Q7G submitted 2015-01-29 cond-mat.mes-hall physics.opticsquant-ph

Longitudinal wave function control in single quantum dots with an applied magnetic field

classification cond-mat.mes-hall physics.opticsquant-ph
keywords wavefieldfunctionmagneticquantumbasedotssingle
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Controlling single-particle wave functions in single semiconductor quantum dots is in demand to implement solid-state quantum information processing and spintronics. Normally, particle wave functions can be tuned transversely by an perpendicular magnetic field. We report a longitudinal wave function control in single quantum dots with a magnetic field. For a pure InAs quantum dot with a shape of pyramid or truncated pyramid, the hole wave function always occupies the base because of the less confinement at base, which induces a permanent dipole oriented from base to apex. With applying magnetic field along the base-apex direction, the hole wave function shrinks in the base plane. Because of the linear changing of the confinement for hole wave function from base to apex, the center of effective mass moves up during shrinking process. Due to the uniform confine potential for electrons, the center of effective mass of electrons does not move much, which results in a permanent dipole moment change and an inverted electron-hole alignment along the magnetic field direction. Manipulating the wave function longitudinally not only provides an alternative way to control the charge distribution with magnetic field but also a new method to tune electron-hole interaction in single quantum dots.

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