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超声驱动的纳米机械单电子穿梭器。

Ultrasonically driven nanomechanical single-electron shuttle.

作者信息

Koenig Daniel R, Weig Eva M, Kotthaus Jorg P

出版信息

Nat Nanotechnol. 2008 Aug;3(8):482-5. doi: 10.1038/nnano.2008.178. Epub 2008 Jul 6.

Abstract

The single-electron transistor is the fastest and most sensitive electrometer available today. Single-electron pumps and turnstiles are also being explored as part of the global effort to redefine the ampere in terms of the fundamental physical constants. However, the possibility of electrons tunnelling coherently through these devices, a phenomenon known as co-tunnelling, imposes a fundamental limit on device performance. It has been predicted that it should be possible to completely suppress co-tunnelling in mechanical versions of the single-electron transistor, which would allow mechanical devices to outperform conventional single-electron transistors in many applications. However, the mechanical devices developed so far are fundamentally limited by unwanted interactions with the electrical mechanisms that are used to excite the devices. Here we show that it is possible to overcome this problem by using ultrasonic waves rather than electrical currents as the excitation mechanism, which we demonstrate at low temperatures. This is a significant step towards the development of high-performance devices.

摘要

单电子晶体管是目前可用的最快且最灵敏的静电计。作为全球致力于依据基本物理常数重新定义安培的一部分,单电子泵和旋转门也在被探索。然而,电子通过这些器件进行相干隧穿的可能性,即所谓的共隧穿现象,对器件性能施加了基本限制。据预测,在单电子晶体管的机械版本中应该有可能完全抑制共隧穿,这将使机械设备在许多应用中性能优于传统单电子晶体管。然而,迄今为止开发的机械设备从根本上受到与用于激发器件的电气机制的有害相互作用的限制。在此我们表明,通过使用超声波而非电流作为激发机制有可能克服这一问题,我们在低温下对此进行了演示。这是朝着高性能器件发展迈出的重要一步。

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