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硅晶体管中少数掺杂原子阵列中的安德森-莫特转变。

Anderson-Mott transition in arrays of a few dopant atoms in a silicon transistor.

机构信息

Laboratorio MDM, IMM-CNR, Via Olivetti 2, Agrate Brianza, Italy.

出版信息

Nat Nanotechnol. 2012 Jul 1;7(7):443-7. doi: 10.1038/nnano.2012.94.

Abstract

Dopant atoms are used to control the properties of semiconductors in most electronic devices. Recent advances such as single-ion implantation have allowed the precise positioning of single dopants in semiconductors as well as the fabrication of single-atom transistors, representing steps forward in the realization of quantum circuits. However, the interactions between dopant atoms have only been studied in systems containing large numbers of dopants, so it has not been possible to explore fundamental phenomena such as the Anderson-Mott transition between conduction by sequential tunnelling through isolated dopant atoms, and conduction through thermally activated impurity Hubbard bands. Here, we observe the Anderson-Mott transition at low temperatures in silicon transistors containing arrays of two, four or six arsenic dopant atoms that have been deterministically implanted along the channel of the device. The transition is induced by controlling the spacing between dopant atoms. Furthermore, at the critical density between tunnelling and band transport regimes, we are able to change the phase of the electron system from a frozen Wigner-like phase to a Fermi glass by increasing the temperature. Our results open up new approaches for the investigation of coherent transport, band engineering and strongly correlated systems in condensed-matter physics.

摘要

掺杂原子被用于控制大多数电子设备中半导体的性质。最近的进展,如单离子注入,允许在半导体中精确定位单个掺杂原子,并制造单原子晶体管,这代表着在实现量子电路方面迈出了一步。然而,掺杂原子之间的相互作用仅在包含大量掺杂原子的系统中进行了研究,因此无法探索基本现象,如通过顺序隧穿通过孤立掺杂原子进行传导与通过热激活杂质 Hubbard 带进行传导之间的安德森-莫特转变。在这里,我们在含有两个、四个或六个砷掺杂原子的硅晶体管中观察到低温下的安德森-莫特转变,这些原子是沿着器件的沟道进行确定性注入的。通过控制掺杂原子之间的间距来诱导转变。此外,在隧穿和带输运区域之间的临界密度下,我们能够通过升高温度将电子系统的相位从冻结的 Wigner 相改变为费米玻璃。我们的结果为凝聚态物理中相干输运、能带工程和强关联系统的研究开辟了新途径。

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