Willing Svenja, Lehmann Hauke, Volkmann Mirjam, Klinke Christian
Institute of Physical Chemistry, University of Hamburg, 20146 Hamburg, Germany.
Deutsches Elektronen-Synchrotron (DESY), 22607 Hamburg, Germany.
Sci Adv. 2017 Jul 14;3(7):e1603191. doi: 10.1126/sciadv.1603191. eCollection 2017 Jul.
Single-electron transistors would represent an approach to developing less power-consuming microelectronic devices if room temperature operation and industry-compatible fabrication were possible. We present a concept based on stripes of small, self-assembled, colloidal, metal nanoparticles on a back-gate device architecture, which leads to well-defined and well-controllable transistor characteristics. This Coulomb transistor has three main advantages. By using the scalable Langmuir-Blodgett method, we combine high-quality chemically synthesized metal nanoparticles with standard lithography techniques. The resulting transistors show on/off ratios above 90%, reliable and sinusoidal Coulomb oscillations, and room temperature operation. Furthermore, this concept allows for versatile tuning of the device properties such as Coulomb energy gap and threshold voltage, as well as period, position, and strength of the oscillations.
如果能够实现室温运行和与工业兼容的制造,单电子晶体管将代表一种开发低功耗微电子器件的方法。我们提出了一种基于背栅器件架构上的小型自组装胶体金属纳米颗粒条纹的概念,这导致了明确且可控的晶体管特性。这种库仑晶体管有三个主要优点。通过使用可扩展的朗缪尔 - 布洛杰特方法,我们将高质量化学合成的金属纳米颗粒与标准光刻技术相结合。所得晶体管的开/关比高于90%,具有可靠的正弦库仑振荡以及室温运行特性。此外,这一概念允许对器件特性进行多种调节,如库仑能隙和阈值电压,以及振荡的周期、位置和强度。