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近藤空穴如何产生强烈的纳米尺度重费米子杂化无序。

How Kondo-holes create intense nanoscale heavy-fermion hybridization disorder.

机构信息

Department of Physics, Laboratory for Atomic and Solid State Physics, Cornell University, Ithaca, NY 14853, USA.

出版信息

Proc Natl Acad Sci U S A. 2011 Nov 8;108(45):18233-7. doi: 10.1073/pnas.1115027108. Epub 2011 Oct 17.

Abstract

Replacing a magnetic atom by a spinless atom in a heavy-fermion compound generates a quantum state often referred to as a "Kondo-hole". No experimental imaging has been achieved of the atomic-scale electronic structure of a Kondo-hole, or of their destructive impact [Lawrence JM, et al. (1996) Phys Rev B 53:12559-12562] [Bauer ED, et al. (2011) Proc Natl Acad Sci. 108:6857-6861] on the hybridization process between conduction and localized electrons which generates the heavy-fermion state. Here we report visualization of the electronic structure at Kondo-holes created by substituting spinless thorium atoms for magnetic uranium atoms in the heavy-fermion system URu(2)Si(2). At each thorium atom, an electronic bound state is observed. Moreover, surrounding each thorium atom we find the unusual modulations of hybridization strength recently predicted to occur at Kondo-holes [Figgins J, Morr DK (2011) Phys Rev Lett 107:066401]. Then, by introducing the "hybridization gapmap" technique to heavy-fermion studies, we discover intense nanoscale heterogeneity of hybridization due to a combination of the randomness of Kondo-hole sites and the long-range nature of the hybridization oscillations. These observations provide direct insight into both the microscopic processes of heavy-fermion forming hybridization and the macroscopic effects of Kondo-hole doping.

摘要

在重费米子化合物中用非自旋原子取代磁性原子会产生一种被称为“Kondo 空穴”的量子态。尚未实现对 Kondo 空穴的原子尺度电子结构或其对导带和局域电子之间杂化过程的破坏性影响[Lawrence JM, 等人(1996)Phys Rev B 53:12559-12562][Bauer ED, 等人(2011)Proc Natl Acad Sci. 108:6857-6861]的实验成像,这会产生重费米子态。在这里,我们报告了在重费米子系统 URu(2)Si(2)中用非磁性钍原子取代磁性铀原子所产生的 Kondo 空穴的电子结构可视化。在每个钍原子处,都观察到了一个电子束缚态。此外,在每个钍原子周围,我们发现了最近预测在 Kondo 空穴处发生的杂化强度的异常调制[Figgins J, Morr DK(2011)Phys Rev Lett 107:066401]。然后,通过将“杂化隙图”技术引入重费米子研究,我们发现由于 Kondo 空穴位置的随机性和杂化振荡的远程性质的结合,杂化具有强烈的纳米尺度异质性。这些观察结果为重费米子形成杂化的微观过程和 Kondo 空穴掺杂的宏观效应提供了直接的见解。

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