Published October 1999 | Version v1
Journal article

Small-angle x-ray scattering study of kinetics of spinodal decomposition in N-isopropylacrylamide gels

  • 1. Center for Polymer Studies and Department of Physics, Boston University, Boston, Massachusetts 02215 (United States)
  • 2. Xerox Corporation, Rochester, New York (United States)
  • 3. National Institute of Standards and Technology, Gaithersburg, Maryland (United States)

Description

We present synchrotron-based time-resolved small-angle x-ray scattering (SAXS) measurements of spinodal decomposition in a covalently cross-linked N-isopropylacrylamide gel. The range of wave numbers examined is well beyond the position of the maximum in the structure factor S(q,t). The equilibrium structure factor is described by the sum of a Lorentzian and a Gaussian. Following a temperature jump into the two phase region, the scattered intensity increases with time and eventually saturates. For early times the linear Cahn-Hilliard-Cook (CHC) theory can be used to describe the time evolution of the scattered intensity. From this analysis we found that the growth rate R(q) is linearly dependent on q2, in agreement with mean-field theoretical predictions. However the Onsager transport coefficient Λ(q)∼q-4, which is stronger than the q dependence predicted by the mean-field theory. We found that the growth rate R(q)>0, even though the wave numbers q probed by SAXS are greater than √ (2) qm where qm is the position of the peak of S(q,t), also in agreement with the mean-field predictions for a deep quench. We have also examined the range of validity of the linear CHC theory, and found that its breakdown occurs earlier at higher wave numbers. At later times, a pinning of the structure was observed. The relaxation to a final, microphase-separated morphology is faster and occurs earlier at the highest wave numbers, which probe length scales comparable to the average distance between crosslinks. copyright 1999 The American Physical Society

Additional details

Publishing Information

Journal Title
Physical Review. E, Statistical Physics, Plasmas, Fluids, and Related Interdisciplinary Topics
Journal Volume
60
Journal Issue
4
Journal Page Range
p. 4473-4481
ISSN
1063-651X
CODEN
PLEEE8