2013Low Temperature PhysicsRequires access

Temperature and impurity effects of the polaron in an asymmetric quantum dot

Shu-Ping Shan, Liu Ya-min, Jin-Lin Xiao

Open publisher page 3 citations

Abstract

Temperature and impurity effects of the ground state energy and the ground state binding energy in an asymmetric quantum dot are studied here by using the linear combination operator method. It is found that the ground state energy and the ground state binding energy increase with increasing temperature. The ground state energy is a decreasing function of the Coulomb bound potential, whereas the ground state binding energy is an increasing one.

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What this paper is about

Temperature and impurity effects of the ground state energy and the ground state binding energy in an asymmetric quantum dot are studied here by using the linear combination operator method. It is found that the ground state energy and the ground state binding energy increase with increasing temperature. The ground state energy is a decreasing function of the Coulomb bound potential, whereas the ground state binding energy is an increasing one.

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Available abstract

Temperature and impurity effects of the ground state energy and the ground state binding energy in an asymmetric quantum dot are studied here by using the linear combination operator method. It is found that the ground state energy and the ground state binding energy increase with increasing temperature. The ground state energy is a decreasing function of the Coulomb bound potential, whereas the ground state binding energy is an increasing one.

Key concepts: Ground state, Binding energy, Polaron, Quantum dot, Impurity, Physics, Condensed matter physics, Coulomb

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