Binary full adder, made of fusion gates, in sub-excitable Belousov-Zhabotinsky system
Andrew Adamatzky

TL;DR
This paper presents a novel design for a binary full adder using fusion gates in a sub-excitable Belousov-Zhabotinsky medium, demonstrating how chemical wave interactions can implement logical operations and cascade into multi-bit addition.
Contribution
It introduces a unique chemical-based full adder design using fusion gates in BZ medium, enabling cascading into multi-bit arithmetic circuits.
Findings
Successful simulation of wave-based logic operations
Design of cascaded fusion gates for multi-bit addition
Feasibility demonstrated through numerical modeling
Abstract
A sub-excitable BZ medium responds to asymmetric local perturbation by producing travelling localised excitation wave-fragments, distant relatives of dissipative solitons. The size and life span of an excitation wave-fragment depend on the illumination level of the medium. Under the right conditions the wave-fragments conserve their shape and velocity vectors for extended time periods. We interpret the wave-fragments as values of Boolean variables. When two or more wave-fragments collide they annihilate or merge into a new wave-fragment. States of the logic variables, represented by the wave-fragments, are changed in the result of the collision between the wave-fragments. Thus, a logical gate is implemented. Several theoretical designs and experimental laboratory implementations of Boolean logic gates have been proposed in the past but little has been done cascading the gates into…
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