Title :
Fabricatable Interconnect and Molecular QCA Circuits
Author :
Chaudhary, Amitabh ; Chen, Danny Ziyi ; Hu, Xiaobo Sharon ; Niemier, Michael T. ; Ravichandran, Ramprasad ; Whitton, Kevin
Author_Institution :
Notre Dame Univ., Notre Dame
Abstract :
When exploring computing elements made from technologies other than complementary metal-oxide-semiconductor, it is imperative to investigate circuits and systems assuming realistic physical implementation constraints. This paper looks at molecular quantum-dot cellular automata (QCA) devices within this context. With molecular QCA, physical coplanar wire crossings may be very difficult to fabricate in the near to midterm. Here, we consider how this will affect interconnect. We introduce a novel technique to remove wire crossings in a given design in order to facilitate the self-assembly of real circuits - thus, providing meaningful and functional design targets for both physical and computer scientists. The proposed methodology eliminates all wire crossings with minimal logic gate/node duplications. Simulation results based on existing QCA circuits and other benchmarks are presented, and suggest that further investigation is needed.
Keywords :
MIS devices; integrated circuit interconnections; quantum dots; complementary metal-oxide-semiconductor; fabricatable interconnect; minimal logic gate-node duplications; molecular QCA circuits; molecular quantum-dot cellular automata devices; wire crossings; Circuit simulation; Circuits and systems; Computational modeling; Integrated circuit interconnections; Logic gates; Physics computing; Quantum cellular automata; Quantum dots; Self-assembly; Wire; Bipartite graphs; crossing elimination; molecular electronics; quantum-dot cellular automata (QCA); shortest path;
Journal_Title :
Computer-Aided Design of Integrated Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TCAD.2007.906467