Compatibilization Efficiency of Graft Copolymers in Incompatible Polymer Blends: Dissipative Particle Dynamics Simulations Combined with Machine Learning

被引:11
|
作者
Zhou, Tianhang [1 ,3 ]
Qiu, Dejian [1 ]
Wu, Zhenghao [1 ]
Alberti, Simon A. N. [1 ]
Bag, Saientan [1 ]
Schneider, Jurek [1 ]
Meyer, Jan [2 ]
Gamez, Jose A. [2 ]
Gieler, Mandy [2 ]
Reithmeier, Marina [2 ]
Seidel, Andreas [2 ]
Mueller-Plathe, Florian [1 ]
机构
[1] Tech Univ Darmstadt, Eduard Zintl Inst Anorgan & Phys Chem, D-64287 Darmstadt, Germany
[2] Covestro Deutschland AG, D-51373 Leverkusen, Germany
[3] China Univ Petr, Coll Carbon Neutral Future Technol, Fuxue Rd 18, Beijing 102249, Peoples R China
关键词
INTERFACIAL PROPERTIES; THERMAL-CONDUCTIVITY; MONTE-CARLO; POLYPROPYLENE; OPPORTUNITIES; BEHAVIOR; IMPACT;
D O I
10.1021/acs.macromol.2c00821
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Graft copolymers are widely used as compatibilizers in homopolymer blends. Computational modeling techniques for predicting the compatibilization efficiency of such polymeric materials have substantially accelerated their development. We employ an efficient particle-based simulation method, namely dissipative particle dynamics (DPD), to systematically investigate the compatibilization efficiency of graft copolymers for a wide range of design parameters such as polymer chemistry, backbone and side chain lengths, and the number of side chains. We find that regular graft copolymers (with regular side chain distribution) exhibit different compatibilization efficiencies at the same areal concentrations. This indicates that the molecular architecture plays a critical role in their compatibilization efficiency. To understand these observations, detailed analysis has been performed. Specifically, the relative shape anisometry of the graft copolymers, which is defined as the ratio of their gyration tensor elements in directions normal and parallel to the surface, is found to be strongly correlated to their compatibilization efficiency. Furthermore, we have investigated three specific graft copolymer types, namely, double-end-grafted (side chains concentrated near both chain ends of the backbone), mid-grafted (side chains concentrated on the center of the backbone), and single-end-grafted (side chains only concentrated near one end of the backbone), to understand the influence of varying side chain distributions. Compared to all other series, the mid-grafted copolymers exhibit the best compatibilization efficiency. Combining the obtained DPD results with five models of machine learning (ML), including linear regression (LR), elastic net (EN), random forest (RF), extra tree (ET), and gradient boosting (GB), provides effective predictions for the compatibilization efficiency. The GB model, which yields the best accuracy, has been further used to acquire the feature importance rank (FIR). Starting from these ML models and the FIR analysis, we have developed a framework for fast predictions of the compatibilization efficiency of graft copolymers. This novel framework utilizes physical insights into effects of material properties, such as chemistries and molecular architectures, on the compatibilization efficiency of graft copolymers and paves the way for advanced design of polymer compatibilizers.
引用
收藏
页码:7893 / 7907
页数:15
相关论文
共 50 条
  • [31] Universal shape characteristics for the mesoscopic star-shaped polymer via dissipative particle dynamics simulations
    Kalyuzhnyi, O.
    Ilnytskyi, J. M.
    Holovatch, Yu
    von Ferber, C.
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2018, 30 (21)
  • [32] Dissipative particle dynamics simulations of polymer chains: Scaling laws and shearing response compared to DNA experiments
    Symeonidis, V
    Karniadakis, GE
    Caswell, B
    PHYSICAL REVIEW LETTERS, 2005, 95 (07)
  • [33] Dissipative particle dynamics study on the interfacial structure and tension for polymer blends of different copolymer chemical composition distributions
    Liu, Dongmei
    Bo, Huifeng
    Lin, Ye
    Li, Deyang
    Zhang, Zhanxin
    Li, Sijia
    FLUID PHASE EQUILIBRIA, 2023, 564
  • [34] Role of chain crossing prohibition on chain penetration in ring-linear blends through dissipative particle dynamics simulations
    Hagita, Katsumi
    Murashima, Takahiro
    Shiba, Hayato
    Iwaoka, Nobuyuki
    Kawakatsu, Toshihiro
    COMPUTATIONAL MATERIALS SCIENCE, 2022, 203
  • [35] Dissipative Particle Dynamics Simulations on the Self-Assembly of New Segmented Random-Block Copolymers in Selective Solvents
    Chen, Meiling
    Sun, Meng
    Liu, Xiaoya
    JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2016, 37 (06) : 900 - 907
  • [36] Drop collision analysis by using many-body dissipative particle dynamics and machine learning
    Zhang, Kaixuan
    Fang, Wei
    Ye, Sang
    Yu, Zhiyuan
    Chen, Shuo
    Lv, Cunjing
    Feng, Xi-Qiao
    APPLIED PHYSICS LETTERS, 2023, 123 (20)
  • [37] Dissipative Particle Dynamics Simulations of Orientation of Layered Silicate Particles Embedded in Polymer Melts under Shear Flows
    Gooneie, Ali
    Schuschnigg, Stephan
    Holzer, Clemens
    PROCEEDINGS OF THE REGIONAL CONFERENCE GRAZ 2015 - POLYMER PROCESSING SOCIETY PPS: CONFERENCE PAPERS, 2016, 1779
  • [38] Numerical simulations of the effect of ionic surfactant/polymer on oil-water interface using dissipative particle dynamics
    Wang, Shuyan
    Yang, Shanwen
    Wang, Xu
    Liu, Yang
    Yang, Shuren
    Dong, Qun
    ASIA-PACIFIC JOURNAL OF CHEMICAL ENGINEERING, 2016, 11 (04) : 581 - 593
  • [39] Molecular understanding of interactions, structure, and drug encapsulation efficiency of Pluronic micelles from dissipative particle dynamics simulations
    Kacar, Gokhan
    COLLOID AND POLYMER SCIENCE, 2019, 297 (7-8) : 1037 - 1051
  • [40] Molecular understanding of interactions, structure, and drug encapsulation efficiency of Pluronic micelles from dissipative particle dynamics simulations
    Gokhan Kacar
    Colloid and Polymer Science, 2019, 297 : 1037 - 1051