Viscosity and diffusion in life processes and tuning of fundamental constants
K Trachenko

TL;DR
This paper explores how fundamental physical constants influence biological processes like viscosity and diffusion, suggesting that life’s existence depends on a delicate balance of these constants and proposing interdisciplinary research into their tuning.
Contribution
It introduces the idea that bounds on viscosity and diffusion are linked to fundamental constants and shows these can vary independently, impacting the potential for life.
Findings
Bounds on viscosity and diffusion are set by fundamental constants.
Viscosity and diffusion can vary while keeping key constants fixed.
High-viscosity planets could still host life under certain conditions.
Abstract
Viewed as one of the grandest questions in modern science, understanding fundamental physical constants has been discussed in high-energy particle physics, astronomy and cosmology. Here, I review how condensed matter and liquid physics gives new insights into fundamental constants and their tuning. This is based on two observations: first, cellular life and the existence of observers depend on viscosity and diffusion. Second, the lower bound on viscosity and upper bound on diffusion are set by fundamental constants, and I briefly review this result and related recent developments in liquid physics. I will subsequently show that bounds on viscosity, diffusion and the newly introduced fundamental velocity gradient in a biochemical machine can all be varied while keeping the fine-structure constant and the proton-to-electron mass ratio intact. This implies that it is possible to produce…
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Taxonomy
TopicsOrigins and Evolution of Life · Advanced Thermodynamics and Statistical Mechanics · Evolution and Genetic Dynamics
