Understanding Rapid PET Degradation via Reactive Molecular Dynamics Simulation and Kinetic Modeling

被引:5
|
作者
Ma, Shuangxiu Max [1 ]
Zou, Changlong [1 ]
Chen, Ting-Yeh [1 ]
Paulson, Joel A. [1 ]
Lin, Li-Chiang [1 ,2 ]
Bakshi, Bhavik R. [1 ]
机构
[1] Ohio State Univ, William G Lowrie Dept Chem & Biomol Engn, Columbus, OH 43210 USA
[2] Natl Taiwan Univ, Dept Chem Engn, Taipei 10617, Taiwan
来源
JOURNAL OF PHYSICAL CHEMISTRY A | 2023年 / 127卷 / 35期
基金
美国国家科学基金会;
关键词
PLASTIC WASTES; FORCE-FIELD; PYROLYSIS; REAXFF; FUEL; POLYETHYLENE; TEMPERATURE; COMBUSTION; HEXADECANE;
D O I
10.1021/acs.jpca.3c03717
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
As the demand for PET plastic products continues to grow, developing effective processes to reduce their pollution is of critical importance. Pyrolysis, a promising technology to produce lighter and recyclable components from wasted plastic products, has therefore received considerable attention. In this work, the rapid pyrolysis of PET was studied by using reactive molecular dynamics (MD) simulations. Mechanisms for yielding gas species were unraveled, which involve the generation of ethylene and TPA radicals from ester oxygen-alkyl carbon bond dissociation and condensation reactions to consume TPA radicals with the products of long chains containing a phenyl benzoate structure and CO2. As atomistic simulations are typically conducted at the time scale of a few nanoseconds, a high temperature (i.e., >1000 K) is adopted for accelerated reaction events. To apply the results from MD simulations to practical pyrolysis processes, a kinetic model based on a set of ordinary differential equations was established, which is capable of describing the key products of PET pyrolysis as a function of time and temperature. It was further exploited to determine the optimal reaction conditions for low environmental impact. Overall, this study conducted a detailed mechanism study of PET pyrolysis and established an effective kinetic model for the main species. The approach presented herein to extract kinetic information such as detailed kinetic constants and activation energies from atomistic MD simulations can also be applied to related systems such as the pyrolysis of other polymers.
引用
收藏
页码:7323 / 7334
页数:12
相关论文
共 50 条
  • [31] Understanding mechanisms of pyridine oxidation with ozone addition via reactive force field molecular dynamics simulations
    Bai, Zhongze
    Jiang, Xi Zhuo
    Luo, Kai H.
    CHEMICAL ENGINEERING SCIENCE, 2023, 266
  • [32] Molecular Dynamics Simulation of Adsorption and Kinetic Analysis in Nanopore
    He, Zhuantao
    Wu, Chunmei
    Li, Yourong
    Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2024, 45 (01): : 157 - 162
  • [33] Investigation of structural and kinetic properties by the simulation of molecular dynamics
    Abaturov, RV
    Gontcharenko, EA
    Zilberman, PF
    Znamenskiy, VS
    ADVANCES IN MOLTEN SALTS: FROM STRUCTURAL ASPECT TO WASTE PROCESSING, 1999, : 220 - 228
  • [34] Molecular dynamics simulation of reactive compatibilization of polymer blends
    Yeung, C
    Herrmann, KA
    MACROMOLECULES, 2003, 36 (01) : 229 - 237
  • [35] Simulation of Gold Functionalization with Cysteine by Reactive Molecular Dynamics
    Monti, Susanna
    Carravetta, Vincenzo
    Agren, Hans
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2016, 7 (02): : 272 - 276
  • [36] Reactive Molecular Dynamics Simulation of Coking Process of Naphthalene
    Yang, Haiyang
    Fan, Qiming
    Ren, Qiang
    Zhou, Han
    Wang, Lixin
    Shiyou Xuebao, Shiyou Jiagong/Acta Petrolei Sinica (Petroleum Processing Section), 2020, 36 (02): : 332 - 338
  • [37] Reactive molecular dynamics simulation of transformer oil pyrolysis
    Wang, Xuelei
    Guo, Fangfang
    Xu, Wei
    PROCEEDINGS OF 2020 IEEE 5TH INFORMATION TECHNOLOGY AND MECHATRONICS ENGINEERING CONFERENCE (ITOEC 2020), 2020, : 1391 - 1394
  • [38] Tuning methane content in gas hydrates via thermodynamic modeling and molecular dynamics simulation
    Susilo, Robin
    Alavi, Sarnan
    Ripmeester, John
    Englezos, Peter
    FLUID PHASE EQUILIBRIA, 2008, 263 (01) : 6 - 17
  • [39] Multiscale modeling of PEEK using reactive molecular dynamics modeling and micromechanics
    Pisani, William A.
    Radue, Matthew S.
    Chinkanjanarot, Sorayot
    Bednarcyk, Brett A.
    Pineda, Evan J.
    Waters, Kevin
    Pandey, Ravindra
    King, Julia A.
    Odegard, Gregory M.
    POLYMER, 2019, 163 : 96 - 105
  • [40] Inelastic relaxation in silica via reactive molecular dynamics
    Rimsza, Jessica M.
    Grutzik, Scott J.
    Jones, Reese E.
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2022, 105 (04) : 2517 - 2526