Title :
Energy reversible Si-based NEMS Switch for nonvolatile logic systems
Author :
Boodhoo, Liam ; Yun Peng Lin ; Chong, H.M.H. ; Tsuchiya, Y. ; Hasegawa, T. ; Mizuta, Hiroshi
Author_Institution :
Fac. of Phys. & Appl. Sci., Univ. of Southampton, Southampton, UK
Abstract :
The paper presents design, analysis and fabrication of novel silicon-based, low power, non-volatile NEMS logic switches. Non-volatility is achieved by exploiting the Casimir effect and the van der Waals force at mechanical contact between an in-plane, laterally moveable transistor channel and two opposing side gates. Mechanical symmetry is implemented in the design for switching to be energy reversible. Device operation is simulated by coupling close range interatomic force calculations with 3D FEM simulation. `On´ and `Off´ transistor states are maintained by controlling the surface area of mechanical contact between the beam and the gate electrode. To achieve this, two nano-stiction state controller designs are proposed for experimental comparison. Preliminary devices have been successfully fabricated using ebeam lithography to verify minimum feature size of proposed structures.
Keywords :
Casimir effect; control system synthesis; electron beam lithography; elemental semiconductors; finite element analysis; logic circuits; logic design; low-power electronics; mechanical contact; microswitches; nanoelectromechanical devices; nanofabrication; random-access storage; silicon; van der Waals forces; 3D FEM simulation; Casimir effect; Si; beam electrode; coupling close range interatomic force calculations; e-beam lithography; energy reversible silicon-based NEMS switch; gate electrode; in-plane laterally moveable transistor channel; low power nonvolatile NEMS logic switches; mechanical contact; mechanical symmetry; nanostiction state controller designs; nonvolatile logic systems; off transistor states; on-transistor states; opposing side gates; surface area control; van der Waals force; Fabrication; Force; Logic gates; Nanoelectromechanical systems; Nonvolatile memory; Silicon; Switches; CMOS compatible; NEMS; energy reversible switching; low power; non-volatile logic;
Conference_Titel :
Nano/Micro Engineered and Molecular Systems (NEMS), 2013 8th IEEE International Conference on
Conference_Location :
Suzhou
Electronic_ISBN :
978-1-4673-6351-8
DOI :
10.1109/NEMS.2013.6559792