论文标题

库仑阻止控制的单电子点源

Coulomb-blockade-controlled single-electron point source

论文作者

Kleshch, Victor I., Porshyn, Vitali, Orekhov, Anton S., Orekhov, Andrey S., Lützenkirchen-Hecht, Dirk, Obraztsov, Alexander N.

论文摘要

库仑封锁是物理学中的一种基本现象,它使单个电子一一转移到电隔离的纳米结构(例如纳米线或量子点),从而创建单电子源。如今,固态单电子源是新兴新技术的量子信息处理和单电子电子的关键要素。此外,电子显微镜中自由电子量子光学和开发的高级研究需要真空中的自由电子的点源,可以在单个电子水平上进行控制。但是,到目前为止,在实践中还没有实现单电子真空枪。要解决的问题包括形成稳定的尖端异质结构发射器和时间和能量域中解放电子的控制。在这里,我们通过建立基于碳纳米线的磁场发射(FE)电子来源来克服这些挑战,并通过隧道交界处耦合到超高的钻石尖端。使用能量光谱法,我们直接观察到纳米温度在室温下的电子费米水平的库仑振荡,最高为1 $μ$ a。我们透露,根据焦耳加热或高隧道电阻,振荡在高铁电流下被抑制,具体取决于纳米线充电时间,范围从约25 fs到1 ps。我们预计,引入的碳单电子源与激光诱导的门控的结合非常有前途,对于低能电子全息图和超能电子全息图和超级超富型电子全息和超级超富型电子和X射线成像和光谱和光谱的创造非常有前途。

Coulomb blockade is a fundamental phenomenon in physics enabling transfer of individual electrons one by one into electrically isolated nanostructures such as nanowires or quantum dots and thereby creation of sources of single electrons. Nowadays, solid-state single-electron sources are key elements of the emerging new technologies of quantum information processing and single-electron electronics. Moreover, advanced research in free-electron quantum optics and developments in electron microscopy require the point sources of free electrons in vacuum, which can be controlled on a single electron level. However, up to now, single-electron vacuum guns were not realized in practice. The problems to be solved include the formation of stable tip-shaped heterostructured emitters and control of liberated electrons in time and energy domain. Here we overcome these challenges by creating a field emission (FE) electron source based on a carbon nanowire coupled to an ultra-sharp diamond tip by a tunnel junction. Using energy spectroscopy, we directly observe Coulomb oscillations of the electron Fermi level in the nanowire at room temperature and FE currents up to 1 $μ$A. We reveal that the oscillations are suppressed at high FE current either by Joule heating or due to the high tunneling resistance, depending on the nanowire charging time, ranging from about 25 fs to 1 ps. We anticipate that the combination of introduced carbon single-electron sources with laser-induced gating is highly promising for the creation of coherent ultrashort free-electron bunches of interest for low-energy electron holography and ultrafast electron or X-ray imaging and spectroscopy.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源