On mesoscale thermal dynamics of para- and ortho- isomers of water
Serge Kernbach

TL;DR
This study investigates mesoscale thermal dynamics of water isomers, revealing transient heat capacity changes and thermal fluctuations post-excitation, suggesting ongoing spin conversion processes influenced by external energy factors.
Contribution
It provides experimental evidence of mesoscale heat capacity variations and thermal fluctuations in water isomers, proposing a new hypothesis on spin conversion influenced by external energy.
Findings
Heat capacity changes of 4.17%-5.72% shortly after excitation
Detection of mesoscale thermal fluctuations of 10^-3 C
Reproducible results supported by spectral and electrochemical data
Abstract
This work describes experiments on thermal dynamics of pure H2O excited by hydrodynamic cavitation, which has been reported to facilitate the spin conversion of para- and ortho-isomers at water interfaces. Previous measurements by NMR and capillary methods of excited samples demonstrated changes of proton density by 12-15%, the surface tension up to 15.7%, which can be attributed to a non-equilibrium para-/ortho- ratio. Beside these changes, we also expect a variation of heat capacity. Experiments use a differential calorimetric approach with two devices: one with an active thermostat for diathermic measurements, another is fully passive for long-term measurements. Samples after excitation are degassed at -0.09MPa and thermally equalized in a water bath. Conducted attempts demonstrated changes in the heat capacity of experimental samples by 4.17%--5.72% measured in the transient…
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Taxonomy
TopicsSpectroscopy and Quantum Chemical Studies · Advanced Thermodynamics and Statistical Mechanics · Quantum, superfluid, helium dynamics
