DocumentCode
1425604
Title
Multiple-valued signed digit adder using negative differential resistance devices
Author
Gonzalez, Alejandro F. ; Mazumder, Pinaki
Author_Institution
Dept. of Electr. Eng. & Comput. Sci., Michigan Univ., Ann Arbor, MI, USA
Volume
47
Issue
9
fYear
1998
fDate
9/1/1998 12:00:00 AM
Firstpage
947
Lastpage
959
Abstract
The paper describes a signed digit full adder (SDFA) circuit consisting of resonant tunneling diodes (RTDs) and metal oxide semiconductor field effect transistors (MOSFETs). The design is primarily based on a multiple valued logic literal circuit that utilizes the folded back I-V (or negative differential resistance, NDR) characteristics of RTDs to compactly implement its gated transfer function. MOS transistors are configured in current mode logic, where addition of two or more digits is achieved by superimposing the signals of individual wires being physically connected at the summing nodes. The proposed SDFA design uses redundant arithmetic representation and therefore, the circuit can perform addition of two arbitrary size binary numbers in constant time without the need for either carry propagation or carry look-ahead. The SDFA cell design has been verified through simulation by an augmented SPICE simulator that includes new homotopy based convergence routines to tackle the nonlinear device characteristics of quantum devices. From the simulation result, the SDFA cell has been found to perform addition operation in 3.5 nanoseconds, which is somewhat superior to other multivalued redundant arithmetic circuits reported in the literature. The SDFA cell requires only 13 MOS transistors and one RTD, as opposed to the state of the art CMOS redundant binary adder requiring 56 transistors, and to the conventional multivalued current mode adder consisting of 34 MOS transistors. In order to verify the simulation result, a prototype SDFA cell has been fabricated using MOSIS 2-micron CMOS process and GaAs based RTDs connected externally to the MOSFET circuit
Keywords
MOSFET; adders; arithmetic; multivalued logic circuits; negative resistance devices; resonant tunnelling diodes; CMOS redundant binary adder; GaAs based RTDs; MOS transistors; MOSFETs; MOSIS 2-micron CMOS process; SDFA cell design; addition operation; arbitrary size binary numbers; augmented SPICE simulator; carry look-ahead; carry propagation; current mode logic; folded back I-V; gated transfer function; homotopy based convergence routines; metal oxide semiconductor field effect transistors; multiple valued logic literal circuit; multiple valued signed digit adder; multivalued current mode adder; multivalued redundant arithmetic circuits; negative differential resistance; negative differential resistance devices; nonlinear device characteristics; prototype SDFA cell; quantum devices; redundant arithmetic representation; resonant tunneling diodes; signed digit full adder; Adders; Arithmetic; Circuit simulation; FETs; MOSFETs; Multivalued logic; RLC circuits; Resonant tunneling devices; Semiconductor diodes; Transfer functions;
fLanguage
English
Journal_Title
Computers, IEEE Transactions on
Publisher
ieee
ISSN
0018-9340
Type
jour
DOI
10.1109/12.713314
Filename
713314
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