Title :
Quantum-Effect Multi-Terminal Molecular Electronic Devices
Author :
Lyshevski, Sergey Edward
Author_Institution :
Dept. of Electr. Eng., Rochester Inst. of Technol., Rocheste, NY
Abstract :
Departing from two-terminal molecular electronic devices (MEdevices), this paper examines multi-terminal MEdevices. These devices are envisioned to be utilized in emerging molecular gates (Mgates) and neuronal hypercells (Xhypercell) for expected molecular integrated circuits (MICs). In addition to molecular- centered processing and memories, MEdevices are of importance in molecular sensing and interfacing applications. We concentrate on the device-level analysis researching transitions and interactions which are due to quantum phenomena and effects exhibited by microscopic (molecular) systems. Our ultimate objective is to analyze the controlled electron transport, study the I-V characteristics, evaluate performance and assess device capabilities. Using three-dimensional Schrodinger and Poisson equations, we study the electron transport by numerically solving the above mentioned equations using the self-consistent conditions. The controlled electron transport, super-fast transitions (switching) and multiple-valued I-V characteristics in MEdevices are observed.
Keywords :
Poisson equation; Schrodinger equation; molecular electronics; nanoelectronics; quantum theory; semiconductor devices; 3D Schrodinger equation; Poisson equation; controlled electron transport; device-level analysis; microscopic molecular systems; molecular gates; molecular integrated circuits; molecular sensing; molecular-centered processing; multiterminal molecular electronic devices; neuronal hypercells; quantum effect; superfast transitions; Electron mobility; FETs; Microelectronics; Molecular electronics; Physics; Poisson equations; Resonant tunneling devices; Semiconductor devices; Solid state circuits; Temperature;
Conference_Titel :
Nanotechnology, 2008. NANO '08. 8th IEEE Conference on
Conference_Location :
Arlington, TX
Print_ISBN :
978-1-4244-2103-9
Electronic_ISBN :
978-1-4244-2104-6
DOI :
10.1109/NANO.2008.148