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Quasibound states in graphene quantum-dot nanostructures generated by concentric potential barrier rings

Quasibound states in graphene quantum-dot nanostructures generated by concentric potential barrier rings
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摘要 We study the quasibound states in a graphene quantum-dot structure generated by the single-, double-, and triple-barrier electrostatic potentials. It is shown that the strongest quasibound states are mainly determined by the innermost barrier. Specifically, the positions of the quasibound states are determined by the barrier height, the number of the quasibound states is determined by the quantum-dot radius and the angular momentum, and the localization degree of the quasibound states is influenced by the width of the innermost barrier, as well as the outside barriers. Furthermore, according to the study on the double- and triple-barrier quantum dots, we find that an effective way to generate more quasibound states with even larger energy level spacings is to design a quantum dot defined by many concentric barriers with larger barrier-height differences. Last, we extend our results into the quantum dot of many barriers, which gives a complete picture about the formation of the quasibound states in the kind of graphene quantum dot created by many concentric potential barrier rings. We study the quasibound states in a graphene quantum-dot structure generated by the single-, double-, and triple-barrier electrostatic potentials. It is shown that the strongest quasibound states are mainly determined by the innermost barrier. Specifically, the positions of the quasibound states are determined by the barrier height, the number of the quasibound states is determined by the quantum-dot radius and the angular momentum, and the localization degree of the quasibound states is influenced by the width of the innermost barrier, as well as the outside barriers. Furthermore, according to the study on the double- and triple-barrier quantum dots, we find that an effective way to generate more quasibound states with even larger energy level spacings is to design a quantum dot defined by many concentric barriers with larger barrier-height differences. Last, we extend our results into the quantum dot of many barriers, which gives a complete picture about the formation of the quasibound states in the kind of graphene quantum dot created by many concentric potential barrier rings.
作者 Jiang Zhao-Tan Yu Cheng-Long Dong Quan-Li 江兆潭;于成龙;董全力(School of Physics,Beijing Institute of Technology,Beijing 100081,China;Beijing National Laboratory for Condensed Matter Physics,Institute of Physics,Chinese Academy of Sciences,Beijing 100190,China)
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2012年第2期23-31,共9页 中国物理B(英文版)
基金 supported by the National Natural Science Foundation of China (Grant Nos.10974015 and 11074297) the Program for New Century Excellent Talents in University (Grant No.NCET-08-0044)
关键词 electron structure of graphene quantum dots electron structure of graphene, quantum dots
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参考文献34

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