Search bioRxiv⌕ Search

Biology subjects

Cademartiri, L.

Publications and source records attributed to Cademartiri, L..

2 recordsLinked to original sources

Damping nonlinearity in agarose hydrogels under relative humidity: balancing network stiffness and energy dissipation

Sustainable, biodegradable elastomers are needed to replace fossil-based alternatives and reduce the environmental impact of traditional vibration damping materials. We investigate agarose-based hydrogels as eco-friendly vibration absorbers, examining the combined effects of polymer concentration (1-7 wt%), relative humidity (55-98%), and mechanical pre-stress on their dynamic mechanical properties. Frequency-dependent viscoelastic and vibration transmissibility tests, supported by Gaussian Process Regression (GPR), reveal that increasing agarose concentration enhances the storage modulus (E') by over an order of magnitude, reaching[~] 5 MPa depending on humidity and applied prestress. Remarkably, the damping efficiency--characterised by the loss factor (tan(d))--exhibits a highly non-monotonic trend. Maximum energy dissipation is observed at intermediate network densities, with tan(d) up to 0.21 and a loss modulus of[~] 515 kPa at 5 w% and 75% relative humidity, comparable to synthetic elastomers. GPR analysis shows that prestress controls nonlinear stiffening and transmissibility resonance behavior, while shifting peak damping from 5 wt% to 1 wt% agarose as prestress increases. These findings underscore the mechanical tunability and sustainability of agarose hydrogels, providing potential design guidance for biodegradable vibration mitigation materials.

bioengineering↗

The Characteristic Timescales of the Arabidopsis thaliana Metabolism and the Phenotypic Effects of Forcing Them

Response mechanisms preserve steady states in complex systems (including living systems). These mechanisms respond with characteristic timescales. Therefore, they can be identified and probed with oscillatory forcing. This approach is rarely used in plant biology. Sub-circadian intermittent illumination (i.e., square waves of light/dark periods of equal duration) of Arabidopsis thaliana plants cause remarkable phenotypical effects. We show these effects are highly dependent on the duration of the light-dark cycle, identifying characteristic timescales in three distinct windows (10.5-42 s, 168-336 s, and 1350-5400 s). Among these effects is an extension of the life cycle by 60%, a 2-fold increase in flower setting, and a near complete elimination of lateral root development. This oscillatory light forcing is compatible with vertical farming where it could reduce energy and chemical inputs and highlights the methodological value of temporal-forcing of environmental parameters on sub-circadian timescales in plant systems.

biophysics↗