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dc.contributor.authorRobin, Antoine Marc, Jean
dc.date.accessioned2018-10-23T13:34:50Z
dc.date.available2018-10-23T13:34:50Z
dc.date.issued2018-08-30
dc.identifier.otherRobin_cornell_0058O_10327
dc.identifier.otherhttp://dissertations.umi.com/cornell:10327
dc.identifier.otherbibid: 10489771
dc.identifier.urihttps://hdl.handle.net/1813/59675
dc.description.abstractWe study the thermodynamic equilibrium between supercooled liquid and solid using a homemade MEMS device called microtensiometer to directly measure the pressure and temperature of a macroscopic volume of supercooled liquid in equilibrium with solid. Our measurements on water are consistent with the generalized Clapeyron equation, which predict the relation between the pressure of the liquid, the pressure of the solid and the temperature at equilibrium. We also report and discuss remarkable behaviors in the kinetics of equilibration. We found that the equilibration time to reach chemical equilibrium can vary by several orders of magnitude. To better understand this observation, we do a more careful study of the dynamics of transport of supercooled water into ice using a custom-made microfluidic platform. Our results indicate that the dynamics is slower than the prediction of the generalized Clapeyron equation, assuming that the ice remains at atmospheric pressure. We speculate that the transport impacts the pressure in the ice and leads to an effectively lower driving force.
dc.language.isoen_US
dc.subjectPhysical chemistry
dc.subjectConfinement
dc.subjectNegative pressure
dc.subjectPhase transition
dc.subjectPremelted layer
dc.subjectSupercooled water
dc.subjectMicro-Tensiometer
dc.titleCOEXISTENCE OF SOLID AND SUPERCOOLED LIQUID. THERMODYNAMIC EQUILIBRIUM AND DYNAMICS
dc.typedissertation or thesis
thesis.degree.disciplineChemical Engineering
thesis.degree.grantorCornell University
thesis.degree.levelMaster of Science
thesis.degree.nameM.S., Chemical Engineering
dc.contributor.chairStroock, Abraham Duncan
dc.contributor.committeeMemberEscobedo, Fernando
dc.contributor.committeeMemberThorne, Robert Edward
dcterms.licensehttps://hdl.handle.net/1813/59810
dc.identifier.doihttps://doi.org/10.7298/X4R78CHT


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