Prediction of the Specific Energy of Supercapacitors with Polymeric Materials Using Advanced Molecular Dynamics Simulations

被引:0
|
作者
Ionescu, Daniela [1 ]
Kovaci, Maria [2 ]
机构
[1] Gheorghe Asachi Tech Univ Iasi, Fac Elect Telecommun & Informat Technol, Dept Telecommun & Informat Technol, Carol I Blvd 11, Iasi 700506, Romania
[2] Politehn Univ Timisoara, Fac Elect Telecommun & Informat Technol, Dept Commun, V Parvan Blvd 2, Timisoara 300223, Romania
关键词
supercapacitor; Helmholtz layer; structural simulation; molecular dynamics; conductive polymer; specific energy; PROGRESS;
D O I
10.3390/polym16233404
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Supercapacitor/pseudocapacitor structures with electrodes and electrolytes based on conductive polymers, but not only, have been analyzed using advanced molecular dynamics simulation techniques. Results indicated in the literature were used to confirm the results obtained for the specific capacitance and energetic performances of the systems. New material classes like Polymer-MXene electrodes ((PANI)/Ti3C2, PFDs/Ti3C2Tx) present increased capacitance in comparison with simple polymeric composites (PETC or PTh). Combinations of polymers and metallic oxide, like PANI/V2O5, present high capacitance, but new variants can provide improved performance. Different techniques, like electrode doping, adding different salts in the electrolyte (gel electrolyte), and using porous electrodes, can also improve performance. Steps for the non-invasive simulation method with HFSS (Ansys) are defined, and the materials are described at the molecular level as well as the interactions between atomic groups. Macroscopic properties of the system are determined (conductivity, specific energy) and represented on parametric graphs. A complex set of parameters is varied in order to optimize the structures through parameter correlation. Different stages of correlation are considered in order to establish the final sample design and improve energetic performance. An increase of about 8-28% can be obtained concerning the specific energy of the supercapacitor. Prediction, design, atypical behavior, and resonance are addressed using this technique.
引用
收藏
页数:29
相关论文
共 50 条
  • [21] Prediction and understanding of barocaloric effects in orientationally disordered materials from molecular dynamics simulations
    Escorihuela-Sayalero, Carlos
    Pardo, Luis Carlos
    Romanini, Michela
    Obrecht, Nicolas
    Loehle, Sophie
    Lloveras, Pol
    Tamarit, Josep-Lluis
    Cazorla, Claudio
    NPJ COMPUTATIONAL MATERIALS, 2024, 10 (01)
  • [22] Energy drift in molecular dynamics simulations
    Cottrell, D.
    Tupper, P. F.
    BIT NUMERICAL MATHEMATICS, 2007, 47 (03) : 507 - 523
  • [23] Energy drift in molecular dynamics simulations
    D. Cottrell
    P.F. Tupper
    BIT Numerical Mathematics, 2007, 47 : 507 - 523
  • [24] Prediction and understanding of barocaloric effects in orientationally disordered materials from molecular dynamics simulations
    Carlos Escorihuela–Sayalero
    Luis Carlos Pardo
    Michela Romanini
    Nicolas Obrecht
    Sophie Loehlé
    Pol Lloveras
    Josep–Lluís Tamarit
    Claudio Cazorla
    npj Computational Materials, 10
  • [25] Using Molecular Dynamics simulations for elucidation of molecular traffic in ordered crystalline microporous materials
    Krishna, Rajamani
    van Baten, Jasper M.
    MICROPOROUS AND MESOPOROUS MATERIALS, 2018, 258 : 151 - 169
  • [26] Electrode surface modification of graphene-MnO2 supercapacitors using molecular dynamics simulations
    Musanna Galib
    Mohammad Mozammal Hosen
    Joyanta K. Saha
    Md. Mominul Islam
    Shakhawat H. Firoz
    Md. Ashiqur Rahman
    Journal of Molecular Modeling, 2020, 26
  • [27] Electrode surface modification of graphene-MnO2 supercapacitors using molecular dynamics simulations
    Galib, Musanna
    Hosen, Mohammad Mozammal
    Saha, Joyanta K.
    Islam, Md. Mominul
    Firoz, Shakhawat H.
    Rahman, Md. Ashiqur
    JOURNAL OF MOLECULAR MODELING, 2020, 26 (09)
  • [28] Molecular dynamics simulations of nanoindentation of POSS materials
    Zeng, F. L.
    Sun, Y.
    Computational Methods, Pts 1 and 2, 2006, : 1655 - 1660
  • [29] Graphical molecular dynamics simulator for materials simulations
    Choi, DK
    Kim, JH
    JAPAN INSTITUTE OF METALS, PROCEEDINGS, VOL 12, (JIMIC-3), PTS 1 AND 2: SOLID - SOLID PHASE TRANSFORMATIONS, 1999, : 777 - 780
  • [30] Multiscale molecular dynamics simulations of nanostructured materials
    Tsuruta, Kenji
    Uchida, Atsushi
    Totsuji, Chieko
    Totsuji, Hiroo
    THERMEC 2006, PTS 1-5, 2007, 539-543 : 2804 - +