In this paper the temperature/pressure dependence of the refractive index o
f liquid water is analyzed using the two-state outer-neighbor mixed bonding
structural model. So far, this theoretical model has been successful in re
producing, usually within the experimental uncertainty, the temperature/pre
ssure dependence of the density, the viscosity, and the oxygen-oxygen pair
correlation functions, in addition to the isothermal compressibility and is
otope effects of this important substance. The philosophy of the present pa
per is to use the high accuracy of refractive index measurements to further
test this model. It is shown that a very simple linear dependence with res
pect to temperature and pressure of the specific refractions L-I and L-II o
f the two contributing structural components in this two-state model is suf
ficient to give better than 5-decimal-point agreement with the experimental
refractive index data at low pressures and temperatures between about -10
degreesC and +70 degreesC. The maximum in the refractive index between -5 d
egreesC and +5 degreesC is reproduced to an even better precision. Generall
y better than 4-decimal-point accuracy is achieved for higher pressures, wh
ere the experimental data are less accurately known. The pressure dependenc
e considered here also allows the calculation of the isothermal piezo-optic
coefficient as a function of temperature, which exhibits a minimum near 50
degreesC. (C) 2001 American Institute of Physics.