English

Engineering Collective Microbial Dynamics for Sustainable Thermal Management

Biological Physics 2026-06-26 v1 Data Analysis, Statistics and Probability Fluid Dynamics

Abstract

The rapid growth of energy-intensive technologies, including artificial intelligence, large-scale computing, and thermal management systems, has intensified global energy demand amid accelerating climate change. Meeting these demands requires innovative, low-carbon thermal management strategies that improve energy efficiency while minimizing environmental impact. This review revisits the underexplored phenomenon of bioconvection, a self-organized fluid motion generated by motile microorganisms, as a bio-inspired approach to sustainable heat transfer. Drawing on studies from natural ecosystems and laboratory experiments, we synthesize current knowledge of microorganism-induced hydrodynamics, pattern formation, and thermofluidic transport to assess the feasibility of harnessing bioconvection for thermal management. We further support this assessment through quantitative analyses of the thermal performance of bioconvective systems and discuss this in the framework of relevant non-dimensional numbers. By generating spontaneous convective plumes through density stratification, motile microorganisms enhance heat and mass transfer without external mechanical forcing. These self-organized flows provide a promising route toward hybrid bio-engineered cooling systems that reduce pumping energy, disrupt thermal boundary layers, and improve heat transfer efficiency. We conclude the review with the key challenges on the way to practical implementation, including microbial stability, material compatibility, controllability, scalability, as well as integration with existing cooling technologies. Finally, we identify critical research directions spanning heat transfer, microbiology, and nonlinear fluid mechanics within the broad context of sustainability, positioning bioconvection as a promising strategy for environmentally responsible thermal management in an era of rapidly increasing energy demand.

Cite

@article{arxiv.2606.28646,
  title  = {Engineering Collective Microbial Dynamics for Sustainable Thermal Management},
  author = {Nilanjan Mondal and Soumitree Mishra and Anupam Sengupta},
  journal= {arXiv preprint arXiv:2606.28646},
  year   = {2026}
}

Comments

57 pages, 8 Figures, 1 Table, 3 Boxes, Glossary

R2 v1 2026-07-22T20:15:40.667Z