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Understanding Interfacial Block Copolymer Structure and Dynamics
DOI:10.1021/acs.macromol.2c01814.png)
摘要
En 中文
Block copolymer (BCP) structure and dynamics were studied using small-angle neutron scattering (SANS), neutron spin echo (NSE) spectroscopy, and molecular dynamics (MD) simulations to obtain a fundamental understanding of the impact of an interfacial block on chain dynamics. A glassy block acted as the interface, and the dynamics of a rubbery block was studied. The rubbery block was protonated near the interface in one sample and near the chain end in another sample to observe the interfacial effect on the rubbery polymer. Analysis of the structure and dynamics revealed that the interfacial rubbery block was confined in layered morphologies and exhibited much slower dynamics than the chain-end rubbery block that was dispersed in the rubbery matrix. The interfacial rubbery block showed weaker dynamical relaxation than that at the chain end, and it also had critically important length scale dependence. Dynamical slowing was only observed at length scales significantly larger than the characteristic segmental length, and the disparity between interfacial and chain-end dynamics increased with increasing length.
Keyword:
GLASS-TRANSITION TEMPERATURE
ELASTIC NEUTRON-SCATTERING
LINEAR POLYMER MELTS
SEGMENTAL DYNAMICS
DIBLOCK COPOLYMERS
ALPHA-RELAXATION
SPIN-ECHO
VISCOELASTIC PROPERTIES
MOLECULAR-WEIGHT
POLYSTYRENE
期刊
IF:
5.2
论文数:
3.7W
被引数:
9.4W
机构
引用论文
Effect of Tethering Anions in Block Copolymer Electrolytes via Molecular Dynamics Simulations分子动力学模拟嵌段共聚物电解质中束缚阴离子的影响
MACROMOLECULES
IF5.2
Effect of Ion Distribution on Conductivity of Block Copolymer Electrolytes离子分布对嵌段共聚物电解质电导率的影响
NANO LETTERS
IF9.1


