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Macroscopic Electron Quantum Coherence in a Solid-State Circuit

机译:固态电路中的宏观电子量子相干性

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The quantum coherence of electronic quasiparticles underpins many of the emerging transport properties of conductors at small scales. Novel electronic implementations of quantum optics devices are now available with perspectives such as “flying-qubit” manipulations. However, electronic quantum interferences in conductors remained up to now limited to propagation paths shorter than 30 μ m independent of the material. Here we demonstrate strong electronic quantum interferences after a propagation along two 0.1-mm-long pathways in a circuit. Interferences of visibility as high as 80% and 40% are observed on electronic analogues of the Mach-Zehnder interferometer of, respectively, 24 ? μ m and 0.1-mm arm length, consistently corresponding to a 0.25-mm electronic phase coherence length. While such devices perform best in the integer quantum Hall regime at filling factor 2, the electronic interferences are restricted by the Coulomb interaction between copropagating edge channels. We overcome this limitation by closing the inner channel in micron-scale loops of frozen internal degrees of freedom combined with a loop-closing strategy providing an essential isolation from the environment.
机译:电子Quasiparticles的量子相干性在小尺度下支付了导体的许多新出现的运输特性。现在可以提供Quantum光学器件的新型电子实现,透视程(例如“飞行QUBit”操纵)。然而,导体中的电子量子干扰仍然达到现在限于与30μm独立于材料的传播路径。在这里,我们在沿着电路中的两个0.1mm长路径沿着两个0.1mm长的途径进行传播之后展示了强的电子量子干扰。在分别为24的Mach-Zehnder干涉仪的电子类似物上观察到高达80%和40%的能力的干扰? μM和0.1-mm臂长,始终对应于0.25mm的电子相位相干长度。虽然这种装置在填充因子2的整数量子霍尔制度中最佳地执行,但是电子干扰受到共同悬架边缘通道之间的库仑相互作用。我们通过关闭冻结内部自由度的微米级环中的内部通道结合与环境的基本隔离的环路关闭策略来克服这种限制。

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