Experimental Characterization of Hydrodynamic Gating-Based Molecular Communication Transmitter
Eren Akyol, Ahmet Baha Ozturk, Iman Mokari Bolhassan, Murat Kuscu

TL;DR
This paper experimentally validates a microfluidic molecular communication transmitter based on hydrodynamic gating, demonstrating its ability to generate precise, programmable molecular concentration pulses for bio-inspired communication applications.
Contribution
It provides the first experimental characterization of a hydrodynamic gating-based microfluidic MC transmitter, highlighting its precision and potential for reliable high-rate molecular communication.
Findings
Capable of generating precise molecular pulses
Demonstrates programmable and reproducible control
Identifies potential limitations based on empirical data
Abstract
Molecular communication (MC) is a bio-inspired method of transmitting information using biochemical signals, promising for novel medical, agricultural, and environmental applications at the intersection of bio-, nano-, and communication technologies. Developing reliable MC systems for high-rate information transfer remains challenging due to the complex and dynamic nature of application environments and the physical and resource limitations of micro/nanoscale transmitters and receivers. Microfluidics can help overcome many such practical challenges by enabling testbeds that can replicate the application media with precise control over flow conditions. However, existing microfluidic MC testbeds face significant limitations in chemical signal generation with programmable signal waveforms, e.g., in terms of pulse width. To tackle this, we previously proposed a practical microfluidic MC…
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Taxonomy
TopicsMolecular Communication and Nanonetworks · Molecular Junctions and Nanostructures
