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Quantum to classical crossover under dephasing effects in a two-dimensional percolation model

Quantum to classical crossover under dephasing effects in a two-dimensional percolation model
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摘要 Scaling theory predicts complete localization in d = 2 in quantum systems belonging to the orthogonal class(i.e., with timereversal symmetry and spin-rotation symmetry). The conductance g behaves as g^exp(-L/l) with system size L and localization length l in the strong disorder limit. However, classical systems can always have metallic states in which Ohm’s law shows a constant g in d=2. We study a two-dimensional quantum percolation model by controlling dephasing effects. The numerical investigation of g aims at simulating a quantum-to-classical percolation evolution. An unexpected metallic phase, where g increases with L, generates immense interest before the system becomes completely classical. Furthermore, the analysis of the scaling plot of g indicates a metal-insulator crossover. Scaling theory predicts complete localization in d = 2 in quantum systems belonging to the orthogonal class(i.e., with timereversal symmetry and spin-rotation symmetry). The conductance g behaves as g ~ exp(-L/l) with system size L and localization length l in the strong disorder limit. However, classical systems can always have metallic states in which Ohm’s law shows a constant g in d = 2. We study a two-dimensional quantum percolation model by controlling dephasing effects. The numerical investigation of g aims at simulating a quantum-to-classical percolation evolution. An unexpected metallic phase, where g increases with L, generates immense interest before the system becomes completely classical. Furthermore, the analysis of the scaling plot of g indicates a metal-insulator crossover.
出处 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS CSCD 2020年第2期130-134,共5页 中国科学:物理学、力学、天文学(英文版)
基金 supported by the National Basic Research Program of China(Grant Nos.2015CB921102,2017YFA0303301,and 2017YFA0304600) National Natural Science Foundation of China(Grant Nos.11504008,11574245,11674028,and 11822407)
关键词 quantum percolation model dephasing effects metal-insulator crossover quantum percolation model dephasing effects metal-insulator crossover
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