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Quantum Phase Transition and Ferromagnetic Spin Correlation in Parallel Double Quantum Dots

Quantum Phase Transition and Ferromagnetic Spin Correlation in Parallel Double Quantum Dots
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摘要 We investigate electronic transport through a parallel double quantum dot (DQD) system with strong on-site Coulomb interaction, as well as the interdot tunnelling. By applying numerical renormalization group method, the ground state of the system and the transmission probability at zero temperature are obtained. For a system of quantum dots with degenerate energy levels and small interdot tunnel coupling, the spin correlations between the DQDs is ferromagnetic, and the ground state of the system is a spin-1 triplet state. The linear conductance will reach the unitary limit (2e^2/h) due to the Kondo effect at low temperature. As the interdot tunnel coupling increases, there is a quantum phase transition from ferromagnetic to anti-ferromagnetic spin correlation in DQDs and the linear conductance is strongly suppressed. We investigate electronic transport through a parallel double quantum dot (DQD) system with strong on-site Coulomb interaction, as well as the interdot tunnelling. By applying numerical renormalization group method, the ground state of the system and the transmission probability at zero temperature are obtained. For a system of quantum dots with degenerate energy levels and small interdot tunnel coupling, the spin correlations between the DQDs is ferromagnetic, and the ground state of the system is a spin-1 triplet state. The linear conductance will reach the unitary limit (2e^2/h) due to the Kondo effect at low temperature. As the interdot tunnel coupling increases, there is a quantum phase transition from ferromagnetic to anti-ferromagnetic spin correlation in DQDs and the linear conductance is strongly suppressed.
作者 丁国辉 叶飞
出处 《Chinese Physics Letters》 SCIE CAS CSCD 2007年第10期2926-2929,共4页 中国物理快报(英文版)
基金 Supported by the National Natural Science Foundation of China under Grant No 19975031.
关键词 coated conductor buffer layer self-epitaxy CEO2 coated conductor, buffer layer, self-epitaxy, CeO2
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