Effect of plasma treatment on the AAc grafting percentage of high-density polyethylene

被引:39
作者
Huang, CY [1 ]
Lu, WL [1 ]
Feng, YC [1 ]
机构
[1] Tatung Univ, Dept Mat Engn, Taipei 10451, Taiwan
关键词
electron spectroscopy; polyethylene; acrylic acid; copolymerization;
D O I
10.1016/S0257-8972(02)00817-4
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Argon (Ar) plasma pretreated high-density polyethylene (PHDPE) was grafted with acrylic acid (AAc-g-PHDPE) using benzoyl peroxide (BPO) as an initiator and alcohol as a solvent. Effects of plasma treatment time, plasma power, and storage time on C-O/C=O ratio of PHDPE were studied. Effects of initiator concentration and reaction time on percent grafting were also studied. In this study, the authors used electron spectroscopy for chemical analysis (XPS) to measure the maximum C-O/C=O ratio of PHDPE, except that the maximum peroxide concentration of PHDPE was measured by 1,1-diphenyl-2-picryhydrazyl measurement method. Furthermore, the PHDPE was susceptible to further surface modification by thermal-induced graft copolymerization with a vinyl monomer, such as AAc and used BPO as initiator. The grafting percentage of AAc-g-PHDPE was from 10% without BPO initiator to 25% with BPO I X 10(-4) M. The plasma power and plasma treatment time affected not only the surface composition of treated film but also the grafting percentage. As AAc was grafting in alcohol solution, the carboxylic acid will be formed and an overlapped carboxylate ion. (C) 2002 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:1 / 10
页数:10
相关论文
共 50 条
  • [41] CO-PYROLYSIS OF HIGH-DENSITY POLYETHYLENE AND WOOD MIXTURES
    Ersen, Tuba
    Pehlivan, Dursun
    JOURNAL OF THE FACULTY OF ENGINEERING AND ARCHITECTURE OF GAZI UNIVERSITY, 2011, 26 (03): : 607 - 612
  • [42] Optimization of Cold Spray Deposition of High-Density Polyethylene Powders
    Bush, Trenton B.
    Khalkhali, Zahra
    Champagne, Victor
    Schmidt, David P.
    Rothstein, Jonathan P.
    JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2017, 26 (07) : 1548 - 1564
  • [43] Kinetics of the solid-state chlorination of high-density polyethylene
    Stoeva, S
    Vlaev, L
    MACROMOLECULAR CHEMISTRY AND PHYSICS, 2002, 203 (02) : 346 - 353
  • [44] Melt rheological behaviour of high-density polyethylene/montmorillonite nanocomposites
    Singh, Vishwa Pratap
    Kumar, Ravi
    Ashwith
    Singh, Priyanka
    Samanta, Satyajit
    Banerjee, Saikat
    POLYMERS & POLYMER COMPOSITES, 2021, 29 (9_SUPPL) : S511 - S520
  • [45] Effect of weathering cycle and manufacturing method on performance of wood flour and high-density polyethylene composites
    Stark, NM
    JOURNAL OF APPLIED POLYMER SCIENCE, 2006, 100 (04) : 3131 - 3140
  • [46] Effect of intumescent flame retardants on non-isothermal crystallization behavior of high-density polyethylene
    Mysiukiewicz, Olga
    Salasinska, Kamila
    Barczewski, Mateusz
    Celinski, Maciej
    Skorczewska, Katarzyna
    POLYMER ENGINEERING AND SCIENCE, 2022, 62 (07) : 2230 - 2242
  • [47] Lifetime assessment of high-density polyethylene-silica nanocomposites
    Dorigato, A.
    Govaert, L. E.
    Pegoretti, A.
    NANOMATERIALS AND NANOTECHNOLOGY, 2019, 9
  • [48] Temperature and pressure effects on the oxidation of high-density polyethylene geogrids
    Hsuan, YG
    Li, MJ
    GEOTEXTILES AND GEOMEMBRANES, 2005, 23 (01) : 55 - 75
  • [49] Reversible and irreversible crystallization in high-density polyethylene at low temperature
    R. Androsch
    Journal of Thermal Analysis and Calorimetry, 2004, 77 : 1037 - 1043
  • [50] Modification of electrical properties for carbon black-filled high-density polyethylene through grafting polymer matrix with malefic anhydride
    LIE SHEN
    WENCHUN LI
    QIANG ZHENG
    Journal of Materials Science, 2005, 40 : 4937 - 4938