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Main Authors: Tu, Ngoc Han, Kim, Donghoon, Kim, Minsoo L., Shim, Jeongmin, Ito, Ryo, Pomaranski, David, Borzenets, Ivan V., Ludwig, Arne, Wieck, Andreas D., Sim, Heung-Sun, Yamamoto, Michihisa
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2404.11955
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author Tu, Ngoc Han
Kim, Donghoon
Kim, Minsoo L.
Shim, Jeongmin
Ito, Ryo
Pomaranski, David
Borzenets, Ivan V.
Ludwig, Arne
Wieck, Andreas D.
Sim, Heung-Sun
Yamamoto, Michihisa
author_facet Tu, Ngoc Han
Kim, Donghoon
Kim, Minsoo L.
Shim, Jeongmin
Ito, Ryo
Pomaranski, David
Borzenets, Ivan V.
Ludwig, Arne
Wieck, Andreas D.
Sim, Heung-Sun
Yamamoto, Michihisa
contents Quantitative analysis of quantum many-body systems, consisting of numerous itinerant electrons that interact with localized spins or electrons, is a long-standing issue. The Kondo cloud, a quantum many-body object of conduction electrons that screens a single localized spin, is the building block of such strongly correlated electronic systems. While quantitative analysis of the Kondo cloud associated with a single magnetic impurity is well established for uniform conduction electrons, the fundamental properties of a deformed Kondo cloud influenced by conduction electrons with a modulated density of states remain unsolved. Here we report engineering of the Kondo cloud deformation by confining a part of the cloud into a quantum box called the Kondo box that mimics realistic material systems. We demonstrate quantitative control of the Kondo cloud by developing a way of tuning quantum interference in the box and monitoring the Kondo entanglement. The temperature dependence of the entanglement reveals counterintuitively that the cloud shape is altered mainly outside the box although the quantum interference in the box is tuned. Our work provides a way to simulate various strongly correlated systems by integrating the Kondo cloud, which is not possible in the current theoretical framework.
format Preprint
id arxiv_https___arxiv_org_abs_2404_11955
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Electrical control of a Kondo spin screening cloud
Tu, Ngoc Han
Kim, Donghoon
Kim, Minsoo L.
Shim, Jeongmin
Ito, Ryo
Pomaranski, David
Borzenets, Ivan V.
Ludwig, Arne
Wieck, Andreas D.
Sim, Heung-Sun
Yamamoto, Michihisa
Mesoscale and Nanoscale Physics
Quantum Physics
Quantitative analysis of quantum many-body systems, consisting of numerous itinerant electrons that interact with localized spins or electrons, is a long-standing issue. The Kondo cloud, a quantum many-body object of conduction electrons that screens a single localized spin, is the building block of such strongly correlated electronic systems. While quantitative analysis of the Kondo cloud associated with a single magnetic impurity is well established for uniform conduction electrons, the fundamental properties of a deformed Kondo cloud influenced by conduction electrons with a modulated density of states remain unsolved. Here we report engineering of the Kondo cloud deformation by confining a part of the cloud into a quantum box called the Kondo box that mimics realistic material systems. We demonstrate quantitative control of the Kondo cloud by developing a way of tuning quantum interference in the box and monitoring the Kondo entanglement. The temperature dependence of the entanglement reveals counterintuitively that the cloud shape is altered mainly outside the box although the quantum interference in the box is tuned. Our work provides a way to simulate various strongly correlated systems by integrating the Kondo cloud, which is not possible in the current theoretical framework.
title Electrical control of a Kondo spin screening cloud
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2404.11955