Proliferating Active Matter and Living Electronics in Conductive Geobacter Biofilms

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Main Author: S B, Sai Smaran
Format: Recurso digital
Published: Zenodo 2026
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author S B, Sai Smaran
author_facet S B, Sai Smaran
contents Electroactive biofilms of Geobacter sulfurreducens are model systems for long range extracellular electron transfer, yet they are usually described at the level of device performance rather than as concrete examples of proliferating active matter. In this paper I take the statistical mechanics point of view seriously and treat conductive Geobacter biofilms as driven, fluctuating media whose electronic transport properties co-evolve with growth, metabolism and internal redox fields. Building on experimental work that links redox gradients, metabolic stratification and cytochrome-based nanowire networks to long range conduction, I introduce a coarse-grained description in terms of cell density, nanowire density, nematic order and redox potential, with explicitly non-equilibrium noise that is not constrained by fluctuation-dissipation relations. Using this framework, I construct a simple one-dimensional toy model for a biofilm slab on an electrode and show how current-dependent growth and nanowire production naturally generate a self-organized conductive layer near the anode and intermittent conductive channels in marginal regions. I then connect these ideas to recent experiments on living electronics, including light-patterned electroactive biofilms, Geobacter protein nanowire memristors and genetically programmed extracellular electron transfer.
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_19371651
institution Zenodo
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publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle Proliferating Active Matter and Living Electronics in Conductive Geobacter Biofilms
S B, Sai Smaran
Electroactive biofilms of Geobacter sulfurreducens are model systems for long range extracellular electron transfer, yet they are usually described at the level of device performance rather than as concrete examples of proliferating active matter. In this paper I take the statistical mechanics point of view seriously and treat conductive Geobacter biofilms as driven, fluctuating media whose electronic transport properties co-evolve with growth, metabolism and internal redox fields. Building on experimental work that links redox gradients, metabolic stratification and cytochrome-based nanowire networks to long range conduction, I introduce a coarse-grained description in terms of cell density, nanowire density, nematic order and redox potential, with explicitly non-equilibrium noise that is not constrained by fluctuation-dissipation relations. Using this framework, I construct a simple one-dimensional toy model for a biofilm slab on an electrode and show how current-dependent growth and nanowire production naturally generate a self-organized conductive layer near the anode and intermittent conductive channels in marginal regions. I then connect these ideas to recent experiments on living electronics, including light-patterned electroactive biofilms, Geobacter protein nanowire memristors and genetically programmed extracellular electron transfer.
title Proliferating Active Matter and Living Electronics in Conductive Geobacter Biofilms
url https://doi.org/10.5281/zenodo.19371651