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分子浮栅单电子晶体管。

Molecular floating-gate single-electron transistor.

机构信息

School of Science and Technology, Meiji University, Kawasaki, 214-8571, Japan.

Laboratory for Materials and Structures, Tokyo Institute of Technology, Yokohama, 226-8503, Japan.

出版信息

Sci Rep. 2017 May 8;7(1):1589. doi: 10.1038/s41598-017-01578-7.

Abstract

We investigated reversible switching behaviors of a molecular floating-gate single-electron transistor (MFG-SET). The device consists of a gold nanoparticle-based SET and a few tetra-tert-butyl copper phthalocyanine (ttbCuPc) molecules; each nanoparticle (NP) functions as a Coulomb island. The ttbCuPc molecules function as photoreactive floating gates, which reversibly change the potential of the Coulomb island depending on the charge states induced in the ttbCuPc molecules by light irradiation or by externally applied voltages. We found that single-electron charging of ttbCuPc leads to a potential shift in the Coulomb island by more than half of its charging energy. The first induced device state was sufficiently stable; the retention time was more than a few hours without application of an external voltage. Moreover, the device exhibited an additional state when irradiated with 700 nm light, corresponding to doubly charged ttbCuPc. The life time of this additional state was several seconds, which is much shorter than that of the first induced state. These results clearly demonstrate an alternative method utilizing the unique functionality of the single molecule in nanoelectronics devices, and the potential application of MFG-SETs for investigating molecular charging phenomena.

摘要

我们研究了分子浮栅单电子晶体管(MFG-SET)的可逆开关行为。该器件由基于金纳米粒子的 SET 和几个四叔丁基铜酞菁(ttbCuPc)分子组成;每个纳米粒子(NP)都作为一个库仑岛。ttbCuPc 分子作为光反应性浮栅,可根据光辐照或外加电压在 ttbCuPc 分子中诱导的电荷状态,可逆地改变库仑岛的势。我们发现,ttbCuPc 的单电子充电导致库仑岛的势移动超过其充电能量的一半。第一个诱导的器件状态足够稳定;在没有外加电压的情况下,保留时间超过几个小时。此外,当用 700nm 光照射时,该器件表现出另外一个状态,对应于双电荷的 ttbCuPc。该附加状态的寿命为数秒,远短于第一个诱导状态的寿命。这些结果清楚地证明了一种利用纳米电子器件中单分子独特功能的替代方法,以及 MFG-SET 在研究分子充电现象中的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a11/5431523/081a16291e7c/41598_2017_1578_Fig1_HTML.jpg

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