Viscosity and diffusion in life processes and tuning of fundamental constants
arXiv:2307.05273 · doi:10.1088/1361-6633/acfd3e
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 heavy elements in stars but have a viscous planet where all liquids have very high viscosity (for example that of tar or higher) and where life may not exist. Knowing the range of bio-friendly viscosity and diffusion, we will be able to calculate the range of fundamental constants which favor cellular life and observers and compare this tuning with that discussed in high-energy physics previously. This invites an inter-disciplinary research between condensed matter physics and life sciences, and I formulate several questions that life science can address. I finish with a conjecture of multiple tuning and an evolutionary mechanism.
References in corpus (8)
- Spatial variation in the fine-structure constant -- new results from VLT/UVES
- The status of varying constants: a review of the physics, searches and implications
- Emergence and evolution of -gap in spectra of liquid and supercritical states
- High-precision limit on variation in the fine-structure constant from a single quasar absorption system
- Universal law for the vibrational density of states of liquids
- Fundamental Constant Observational Bounds on the Variability of the QCD Scale
- Properties of condensed matter from fundamental physical constants
- Constraints on fundamental physical constants from bio-friendly viscosity and diffusion
Cited by in corpus (5)
- Theory of melting lines
- Revisiting the phonon theory of liquid heat capacity: low-frequency shear modes and intramolecular vibrations
- Revisiting the question of what instantaneous normal modes tell us about liquid dynamics
- Fundamental physical constants, operation of physical phenomena and entropy increase
- Generally applicable physics-based equation of state for liquids