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Size-Independent Single-Electron Tunneling

机译:尺寸无关单电子隧穿

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摘要

Incorporating single-electron tunneling (SET) of metallic nanoparticles (NPs) into modern electronic devices offers great promise to enable new properties; however, it is technically very challenging due to the necessity to integrate ultrasmall (<10 nm) particles into the devices. The nanosize requirements are intrinsic for NPs to exhibit quantum or SET behaviors, for example, 10 nm or smaller, at room temperature. This work represents the first observation of SET that defies the well-known size restriction. Using polycrystalline Au NPs synthesized via our newly developed solid-state glycine matrices method, a Coulomb Blockade was observed for particles as large as tens of nanometers, and the blockade voltage exhibited little dependence on the size of the NPs. These observations are counterintuitive at first glance. Further investigations reveal that each observed SET arises from the ultrasmall single crystalline grain(s) within the polycrystal NP, which is (are) sufficiently isolated from the nearest neighbor grains. This work demonstrates the concept and feasibility to overcome orthodox spatial confinement requirements to achieve quantum effects.
机译:将金属纳米颗粒(NP)的单电子隧穿(SET)集成到现代电子设备中,为实现新特性提供了广阔的前景。但是,由于必须将超小(<10 nm)颗粒集成到设备中,因此在技术上非常具有挑战性。纳米尺寸的要求是NP在室温下表现出量子或SET行为的固有条件,例如10 nm或更小。这项工作是对SET的首次观察,它违反了众所周知的大小限制。使用通过我们新开发的固态甘氨酸矩阵方法合成的多晶金纳米颗粒,可以观察到数十纳米的颗粒的库仑封锁,并且封锁电压几乎不依赖于NP的大小。这些观察乍一看是违反直觉的。进一步的研究表明,观察到的每个SET都来自多晶NP中的超小单晶晶粒,该晶粒与最近的相邻晶粒充分隔离。这项工作证明了克服正统空间限制要求以实现量子效应的概念和可行性。

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