TY - JOUR
T1 - Linear response theory for hard and soft glassy materials
AU - Bouchbinder, Eran
AU - Langer, J. S.
N1 - Division of Materials Science and Engineering, Office of Basic Energy Sciences, Department of Energy through Oak Ridge National Laboratory [DE-AC05-00OR-22725]; Harold Perlman Family Foundation; Robert Rees Applied Research FundWe thank M. Siebenburger for sending us the data shown in Fig. 2. J. S. L. was supported in part by the Division of Materials Science and Engineering, Office of Basic Energy Sciences, Department of Energy, DE-AC05-00OR-22725, through a subcontract from Oak Ridge National Laboratory. E. B. was supported in part by the Harold Perlman Family Foundation and in part by a grant from the Robert Rees Applied Research Fund.
PY - 2011/4/4
Y1 - 2011/4/4
N2 - Despite qualitative differences in their underlying physics, both hard and soft glassy materials exhibit almost identical linear rheological behaviors. We show that these nearly universal properties emerge naturally in a shear-transformation-zone theory of amorphous plasticity, extended to include a broad distribution of internal thermal-activation barriers. The principal features of this barrier-height distribution are predicted by nonequilibrium, effective-temperature thermodynamics. Our theoretical loss modulus G ′′(ω) has a peak at the α relaxation rate, and a power law decay of the form ω-ζ for higher frequencies, in quantitative agreement with experimental data.
AB - Despite qualitative differences in their underlying physics, both hard and soft glassy materials exhibit almost identical linear rheological behaviors. We show that these nearly universal properties emerge naturally in a shear-transformation-zone theory of amorphous plasticity, extended to include a broad distribution of internal thermal-activation barriers. The principal features of this barrier-height distribution are predicted by nonequilibrium, effective-temperature thermodynamics. Our theoretical loss modulus G ′′(ω) has a peak at the α relaxation rate, and a power law decay of the form ω-ζ for higher frequencies, in quantitative agreement with experimental data.
UR - https://www.scopus.com/pages/publications/79959381117
U2 - 10.1103/PhysRevLett.106.148301
DO - 10.1103/PhysRevLett.106.148301
M3 - مقالة
SN - 0031-9007
VL - 106
JO - Physical review letters
JF - Physical review letters
IS - 14
M1 - 148301
ER -