Khabaz Fardin, Khare Rajesh
Department of Chemical Engineering, Texas Tech University, Box 43121, Lubbock, Texas 79409-3121, USA.
J Chem Phys. 2014 Dec 7;141(21):214904. doi: 10.1063/1.4902052.
Effect of chain architecture on the chain size, shape, and intrinsic viscosity was investigated by performing molecular dynamics simulations of polymer solutions in a good solvent. Four types of chains—linear, comb shaped, H-shaped, and star—were studied for this purpose using a model in which the solvent particles were considered explicitly. Results indicated that the chain length (N) dependence of the mean squared radius of gyration of the chains followed a power-law behavior ⟨R(g)(2)⟩(1/2)∼N(υ) with scaling exponents of υ = 0.605, 0.642, 0.602, and 0.608, for the linear, comb shaped, H-shaped, and star shaped chains, respectively. The simulation results for the geometrical shrinking factor were higher than the prior theoretical predictions for comb shaped chains. Analysis of chain shape demonstrated that the star chains were significantly smaller and more spherical than the others, while the comb and H-shaped polymer chains showed a more cylindrical shape. It is shown that the intrinsic viscosity of the chains can be calculated by plotting the specific viscosity determined from simulations against the solution concentration. The intrinsic viscosity exhibited linear behavior with the reciprocal of the overlap concentration for all chain architectures studied. The molecular weight dependence of the intrinsic viscosity followed the Mark-Houwink relation, [η] = KM(a), for all chain architectures. When comparing the calculated values of exponent a with the literature experimental values, agreement was found only for the H and star chains, and a disagreement for the linear and comb chains. The viscosity shrinking factor of the branched chains was compared with the available experimental data and the theoretical predictions and a general agreement was found.
通过对聚合物溶液在良溶剂中的分子动力学模拟,研究了链结构对链尺寸、形状和特性粘度的影响。为此,使用了一个明确考虑溶剂颗粒的模型,研究了四种类型的链——线性链、梳状链、H形链和星形链。结果表明,对于线性链、梳状链、H形链和星形链,链的均方回转半径对链长(N)的依赖性遵循幂律行为⟨R(g)(2)⟩(1/2)∼N(υ),其标度指数分别为υ = 0.605、0.642、0.602和0.608。梳状链的几何收缩因子的模拟结果高于先前的理论预测。链形状分析表明,星形链比其他链明显更小且更接近球形,而梳状和H形聚合物链则呈现出更圆柱形的形状。结果表明,可以通过将模拟确定的比浓粘度与溶液浓度作图来计算链的特性粘度。对于所有研究的链结构,特性粘度与重叠浓度的倒数呈线性关系。所有链结构的特性粘度对分子量的依赖性均遵循Mark-Houwink关系,[η] = KM(a)。将计算得到的指数a值与文献中的实验值进行比较时,仅发现H形链和星形链相符,而线性链和梳状链不相符。将支化链的粘度收缩因子与现有的实验数据和理论预测进行了比较,发现总体上是一致的。