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Titlebook: Quantum Dots: a Doorway to Nanoscale Physics; W. Heiss Book 2005 Springer-Verlag Berlin Heidelberg 2005 Experiment.Semiconductor.atomic ph

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發(fā)表于 2025-3-21 17:53:56 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書(shū)目名稱(chēng)Quantum Dots: a Doorway to Nanoscale Physics
編輯W. Heiss
視頻videohttp://file.papertrans.cn/782/781150/781150.mp4
叢書(shū)名稱(chēng)Lecture Notes in Physics
圖書(shū)封面Titlebook: Quantum Dots: a Doorway to Nanoscale Physics;  W. Heiss Book 2005 Springer-Verlag Berlin Heidelberg 2005 Experiment.Semiconductor.atomic ph
描述.Quantum dots, often denoted artificial atoms, are the exquisite tools by which quantum behavior can be probed on a scale appreciably larger than the atomic scale, that is on the nanometer scale. In this way, the physics of the devices is closer to classical physics than that of atomic physics but they are still sufficiently small to clearly exhibit quantum phenomena. The present volume is devoted to an introduction to some of these fascinating aspects, addressing in particular graduate students and young researchers in the field. In the first lecture by R. Shankar, the general theoretical aspects of Fermi liquids are addressed, in particular the renormalization group approach. This is then aptly applied to large quantum dots. A completely different approach is encountered in the second contribution by J.M. Elzerman et al., in that it is a thorough experimental expose of what can be done or expected in the study of small quantum dots. Here the emphasis lies on the electron spin to be used as a qubit. In the third lecture series by M. Pustilnik and Leonid I. Glazman, mechanisms of low-temperature electronic transport through a quantum dot – weakly coupled to two conducting leads – a
出版日期Book 2005
關(guān)鍵詞Experiment; Semiconductor; atomic physics; fermi liquids; quantum billard; quantum dot; quantum dots
版次1
doihttps://doi.org/10.1007/b103740
isbn_softcover978-3-642-06347-3
isbn_ebook978-3-540-31523-0Series ISSN 0075-8450 Series E-ISSN 1616-6361
issn_series 0075-8450
copyrightSpringer-Verlag Berlin Heidelberg 2005
The information of publication is updating

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J.M. Elzerman,R. Hanson,L.H.W. van Beveren,S. Tarucha,L.M.K. Vandersypen,L.P. Kouwenhoven
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Andreev Billiards,in the level density, instead of only in the level-level correlations. A chaotic billiard has a gap in the spectrum around the Fermi energy, while integrable billiards have a linearly vanishing density of states.
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0075-8450 than the atomic scale, that is on the nanometer scale. In this way, the physics of the devices is closer to classical physics than that of atomic physics but they are still sufficiently small to clearly exhibit quantum phenomena. The present volume is devoted to an introduction to some of these fas
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Low-Temperature Conduction of a Quantum Dot,ominated by electron-electron interaction. At temperatures moderately lower than the charging energy of the dot, the linear conductance is suppressed by the Coulomb blockade. Upon further lowering of the temperature, however, the conductance may start to increase again due to the Kondo effect. We co
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Andreev Billiards,ot. The emphasis is on two-dimensional impurity-free structures in which the classical dynamics is chaotic. Such Andreev billiards differ in a fundamental way from their non-superconducting counterparts. Most notably, the difference between chaotic and integrable classical dynamics shows up already
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Lecture Notes in Physicshttp://image.papertrans.cn/q/image/781150.jpg
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