Jeremy Q. Broughton, Farid F. Abraham
Journal of Physical Chemistry
[N,P,T] Monte Carlo simulations of metastable supercooled-liquid and amorphous phases of Lennard-Jones atoms indicate several distinct signatures for identifying the glass transition boundary; i.e., the density, enthalpy, and pair distribution function dependences on temperature and pressure are different for the two phases. The effective hard-sphere packing fraction ηa at the glass transition boundary is verified to be the same whether the glass is prepared by temperature quenching or pressure crushing. Using ηa and liquid-state perturbation theory, the glass transition boundary is calculated for the metastable pressure-temperature phase diagram of the Lennard-Jones system. Finally, we argue that the evolution of the PDF structure as a function of degree of metastability suggests that the amorphous phase is a "distorted fee packing." A comparison with experiment is made. © 1980 American Institute of Physics.
Jeremy Q. Broughton, Farid F. Abraham
Journal of Physical Chemistry
Farid F. Abraham
Advances in Physics
Farid F. Abraham, Donald E. Schreiber, et al.
The Journal of Chemical Physics
Farid F. Abraham
Nuclear Instruments and Methods in Physics Research, Section B: Beam Interactions with Materials and Atoms