A Theory of Liquid Structure
- 1 November 1937
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 5 (11) , 896-912
- https://doi.org/10.1063/1.1749960
Abstract
A simple model of the liquid is used to extend the equation of state previously obtained and to treat the process of fusion, viscous flow, and binary liquid systems. Our equation of state which applies to dense liquids has been fitted on to Happel's modification of van der Waals equation to give a single equation applicable over the entire range from gas to liquid. A liquid differs from a solid in that the surplus volume in one part of the liquid becomes available in another part without an activation energy appreciable as compared to kT. This communal sharing of volume gives rise to an entropy of fusion R modified, of course, if there are other structural changes. Other entropy changes arise from expansion, changes of librations into free rotations and from polymerization. Double molecules held together by van der Waals forces are considered quantitatively and used in the explanation of viscous flow and deviations of the equation of state at the critical point. An explicit expression is given for the osmotic pressure of a binary liquid mixture. ``Holes'' are used to complete the analogy between critical phenomena for a one component system and critical solution phenomena of binary liquids. In binary liquids the presence of a lower critical solution temperature above which two phases exist results from hydrogen (or analogous) bonds or bridges between unlike molecules which prevent free rotation. The critical mixing point coincides with the onset of free rotations which disrupt these bonds.Keywords
This publication has 15 references indexed in Scilit:
- The Validity of Raoult's Law for Paraffin Molecules of Very Different LengthJournal of the American Chemical Society, 1937
- The Theory of the Liquid StateThe Journal of Physical Chemistry, 1937
- A partition function for liquidsTransactions of the Faraday Society, 1937
- On the Structure of Native, Denatured, and Coagulated ProteinsProceedings of the National Academy of Sciences, 1936
- Thermodynamic Aspects of the Theory of Non-electrolytic Solutions.Chemical Reviews, 1936
- A Theory of Water and Ionic Solution, with Particular Reference to Hydrogen and Hydroxyl IonsThe Journal of Chemical Physics, 1933
- The Rotational Motion of Molecules in CrystalsPhysical Review B, 1930
- Die Entropieänderung beim Schmelzen. Die Abhängigkeit der Entropieänderung der Elemente von der OrdnungszahlZeitschrift für anorganische und allgemeine Chemie, 1927
- Theorie des festen Zustandes einatomiger ElementeAnnalen der Physik, 1912
- Über die Schmelzwärme, spezifische Kohäsion und Molekulargrösse bei der SchmelztemperaturBerichte der Bunsengesellschaft für physikalische Chemie, 1908