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Digital Signal Processing for Molecular Communication via Chemical-Reaction-Based Microfluidic Circuits

Dadi Bi, Yansha Deng

2021IEEE Communications Magazine24 citationsDOI

Abstract

Chemical-reaction-based microfluidic circuits are expected to provide new opportunities to perform signal processing functions over the molecular domain. To realize this vision, in this article, we exploit and present the digital signal processing capabilities of chemical-reaction-based microfluid-ic circuits. To facilitate microfluidic circuit design, we describe a microfluidic circuit using a five-level architecture: molecular propagation, chemical transformation, microfluidic modules, microfluidic logic gates, and microfluidic circuits. We first identify the components at Levels 1 and 2, and present how their combinations can build the basic modules for Level 3. We then assemble basic modules to construct five types of logic gates for Level 4, including AND, NAND, OR, NOR, and XOR gates, which show advantages of microfluidic circuits in versatility and modularity. Finally, we discuss challenges and potential solutions for designing, building, and testing microfluidic circuits with complex signal processing functions in Level 5 based on the digital logic gates at Level 4.

Topics & Concepts

MicrofluidicsComputer scienceElectronic circuitLogic gateNAND gateNAND logicNOR gateSIGNAL (programming language)Signal processingDigital electronicsModularity (biology)Electronic engineeringComputer hardwareComputer architectureDigital signal processingNanotechnologyElectrical engineeringMaterials scienceAlgorithmEngineeringProgramming languageGeneticsBiologyMolecular Communication and NanonetworksAdvanced biosensing and bioanalysis techniquesInnovative Microfluidic and Catalytic Techniques Innovation
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