Eerdunchaolu, HAN Chao, ZHANG Ying. Properties of Strong-coupling Bipolaron Qubit in Parabolic Potential Quantum Dot[J]. Chinese Journal of Luminescence, 2016,37(2): 144-150
Eerdunchaolu, HAN Chao, ZHANG Ying. Properties of Strong-coupling Bipolaron Qubit in Parabolic Potential Quantum Dot[J]. Chinese Journal of Luminescence, 2016,37(2): 144-150 DOI: 10.3788/fgxb20163702.0144.
Properties of Strong-coupling Bipolaron Qubit in Parabolic Potential Quantum Dot
On the basis of Lee-Low-Pines (LLP) unitary transformation
the eigenenergy and eigenfunction of the ground-state and the first excited state of the strong-coupling bipolaron in two-dimensional quantum dot (QD) were obtained by using the variational method of Pekar type. A qubit was formed by overlaying both the ground state and the first excited state of the bipolaron system. Numerical calculations indicate that the oscillating period
T
0
of qubits decreases with the increasing the electron-phonon coupling strength
the confinement strength
0
of the quantum dot
and the dielectric constant ratio
; the distribution of the probability density
Q
of the electrons in quantum dot oscillates periodically with time
t
angle coordinate
2
and the dielectric constant ratio
and there is a maximum at near the center and zero away from the center of quantum dot.
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references
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