Université Grenoble Alpes, F-38000 Grenoble, France.
CNRS, Institut NEEL, F-38042 Grenoble, France.
Phys Rev Lett. 2016 Apr 1;116(13):136801. doi: 10.1103/PhysRevLett.116.136801. Epub 2016 Mar 28.
The Kondo effect is the many-body screening of a local spin by a cloud of electrons at very low temperature. It has been proposed as an explanation of the zero-bias anomaly in quantum point contacts where interactions drive a spontaneous charge localization. However, the Kondo origin of this anomaly remains under debate, and additional experimental evidence is necessary. Here we report on the first phase-sensitive measurement of the zero-bias anomaly in quantum point contacts using a scanning gate microscope to create an electronic interferometer. We observe an abrupt shift of the interference fringes by half a period in the bias range of the zero-bias anomaly, a behavior which cannot be reproduced by single-particle models. We instead relate it to the phase shift experienced by electrons scattering off a Kondo system. Our experiment therefore provides new evidence of this many-body effect in quantum point contacts.
近藤效应是指在极低温度下,电子云对局部自旋的多体屏蔽。它被提出作为量子点接触中零偏压异常的解释,在量子点接触中,相互作用导致自发电荷局域化。然而,这种异常的近藤起源仍存在争议,需要更多的实验证据。在这里,我们使用扫描隧道显微镜作为电子干涉仪,首次对量子点接触中的零偏压异常进行了相敏测量。我们观察到在零偏压异常的偏压范围内,干涉条纹突然移动了半个周期,这种行为不能用单粒子模型来重现。相反,我们将其与电子散射近藤系统所经历的相移联系起来。因此,我们的实验为量子点接触中的这种多体效应提供了新的证据。