Zhang Cheng-Zhong, Wang Zhen-Gang
Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, California 91125, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2006 Mar;73(3 Pt 1):031804. doi: 10.1103/PhysRevE.73.031804. Epub 2006 Mar 15.
We study the microstructural glass transition in diblock-copolymer melts using a thermodynamic replica approach. Our approach performs an expansion in terms of the natural smallness parameter--the inverse of the scaled degree of polymerization N--which allows us to systematically study the approach to mean-field behavior as the degree of polymerization increases. We find that in the limit of infinite chain length, both the onset of glassiness and the vitrification transition (Kauzmann temperature) collapse to the mean-field spinodal, suggesting that the spinodal can be regarded as the mean-field signature for glass transitions in this class of microphase-separating system. We also study the order-disorder transition (ODT) within the same theoretical framework; in particular, we include the leading-order fluctuation corrections due to the cubic interaction in the coarse-grained Hamiltonian, which has been ignored in previous studies of the ODT in block copolymers. We find that the cubic term stabilizes both the ordered (body-centered-cubic) phase and the glassy state relative to the disordered phase. In melts of symmetric copolymers the glass transition always occurs after the order-disorder transition (below the ODT temperature), but for asymmetric copolymers, it is possible for the glass transition to precede the ordering transition.
我们使用热力学复本方法研究了双嵌段共聚物熔体中的微观结构玻璃化转变。我们的方法以自然小参数——标度聚合度(N)的倒数——进行展开,这使我们能够随着聚合度的增加系统地研究向平均场行为的趋近。我们发现,在无限链长的极限情况下,玻璃化的起始点和玻璃化转变(考兹曼温度)都收敛到平均场失稳分解线,这表明失稳分解线可被视为这类微相分离系统中玻璃化转变的平均场特征。我们还在相同的理论框架内研究了有序 - 无序转变(ODT);特别是,我们考虑了粗粒化哈密顿量中由于三次相互作用引起的主导阶涨落修正,这在之前关于嵌段共聚物ODT的研究中被忽略了。我们发现,相对于无序相,三次项使有序(体心立方)相和玻璃态都更加稳定。在对称共聚物熔体中,玻璃化转变总是发生在有序 - 无序转变之后(低于ODT温度),但对于不对称共聚物,玻璃化转变有可能先于有序转变发生。