Flexure-FET-Based Receiver with Competitive Binding for Interference Mitigation in Molecular Communication
Dilara Aktas, Ozgur B. Akan

TL;DR
This paper enhances the Flexure-FET molecular communication receiver by modeling competitive binding among multiple molecular species, improving interference mitigation and detection accuracy in complex biological environments.
Contribution
It introduces a biologically accurate competitive binding model into the Flexure-FET receiver framework, addressing inter-species competition effects in molecular communication systems.
Findings
Model captures inter-species competition effects
Improves receiver reliability and accuracy
Enables tuning of receptor responses for interference mitigation
Abstract
Molecular communication (MC), a biologically inspired technology, enables applications in nanonetworks and the Internet of Everything (IoE), with great potential for intra-body systems such as drug delivery, health monitoring, and disease detection. This paper extends our prior work on the Flexure-FET MC receiver by integrating a competitive binding model to enhance performance in high-interference environments, where multiple molecular species coexist in the reception space. Previous studies have largely focused on ligand concentration estimation and detection, without fully addressing the effects of inter-species competition for receptor binding. Our proposed framework captures this competition, offering a more biologically accurate model for multitarget environments. By incorporating competition dynamics, the model improves understanding of MC behavior under interference. This…
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Taxonomy
TopicsMolecular Communication and Nanonetworks · Nanopore and Nanochannel Transport Studies · Advanced biosensing and bioanalysis techniques
