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Blocking transport resonances via Kondo many-body entanglement in quantum dots

机译:通过量子点中的近藤多体纠缠来阻止传输共振

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Many-body entanglement is at the heart of the Kondo effect, which has its hallmark in quantum dots as a zero-bias conductance peak at low temperatures. It signals the emergence of a conducting singlet state formed by a localized dot degree of freedom and conduction electrons. Carbon nanotubes offer the possibility to study the emergence of the Kondo entanglement by tuning many-body correlations with a gate voltage. Here we show another side of Kondo correlations, which counterintuitively tend to block conduction channels: inelastic co-tunnelling lines in the magnetospectrum of a carbon nanotube strikingly disappear when tuning the gate voltage. Considering the global SU (2) ? SU (2) symmetry of a nanotube coupled to leads, we find that only resonances involving flips of the Kramers pseudospins, associated to this symmetry, are observed at temperatures and voltages below the corresponding Kondo scale. Our results demonstrate the robust formation of entangled many-body states with no net pseudospin.
机译:多体纠缠是近藤效应的核心,它在量子点中具有标志性特征,即在低温下为零偏置电导峰。它表示由局部自由度和导电电子形成的导电单重态的出现。碳纳米管提供了通过调节栅极电压与多体相关性来研究近藤缠结现象的可能性。在这里,我们显示了Kondo相关性的另一面,它反直觉地倾向于阻塞传导通道:调整栅极电压时,碳纳米管的磁谱中的非弹性共隧道线显着消失。考虑全局SU(2)? SU(2)与引线耦合的纳米管的对称性,我们发现只有在低于相应的Kondo标度的温度和电压下,才能观察到与该对称性相关的Kramers假旋转的翻转的共振。我们的结果证明了无净伪自旋纠缠多体态的稳健形成。

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