Viscoelastic changes in chlorinated butyl rubber modified with graphene oxide

Ping Jiang1, Chunhua Yang1, Xianru He1, Alisson M. Rodrigues2, Rui Zhang3
1State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation and School of Materials Science and Engineering, Southwest Petroleum University, Chengdu, China
2Vitreous Materials Laboratory, Department of Materials Engineering, Federal University of São Carlos, São Carlos, BRAZIL
3Institut für Physik, Universität Rostock, Rostock, Germany

Tóm tắt

The glass–rubber transition region in multiple component systems is significant for studying the slow relaxation processes in amorphous polymers. It is the first time that graphene oxide (GO) is added into chlorinated butyl rubber (CIIR) to study the effect of GO on different relaxation processes of CIIR. We aimed to give a possible insight to the molecular relaxation behaviors of CIIR/GO nanocomposites. In this study, GO was synthesized by a revised Hummers method, and it was incorporated with CIIR at different contents of 0, 1, 2, 3 and 5 phr (parts per hundred rubber). The structure of GO and CIIR/GO nanocomposites was studied by Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), attenuated total reflectance-Fourier transform infrared (ATR-FTIR), scanning electron microscopy (SEM) and transmission electron microscope (TEM).Bound rubber was adopted to study the interfacial interaction between GO and CIIR. Differential scanning calorimetry (DSC) and dynamic mechanical analysis (DMA) were also performed. Since there were many conflicting results on the effect of nanoparticles in relation to the glass transition temperature (T g) of polymer matrixes in correlative literature, we investigated the effect of GO on that of CIIR. The T g determined by DSC shows slight shifting. However, the maximum and the shoulder of tan δ both shift to low temperatures. In addition, GO increases the coupling effect of CIIR, resulting the shoulder merged with the maximum. A mechanism, though still needs to be further refined, has been proposed to interpret the contradictory results in our case.

Từ khóa


Tài liệu tham khảo

Gao YY, Wu YP, Liu J, Zhang LQ (2017) Effect of chain structure on the glass transition temperature and viscoelastic property of cis-1,4-polybutadiene via molecular simulation. J Polym Sci, Part B: Polym Phys 55:1005–1016 Fitzgerald ER, Grandine LD, Ferry JD (1953) Dynamic mechanical properties of polyisobutylene. J Appl Phys 24:650–655 Ngai KL (2015) Interpreting the nonlinear dielectric response of glass-formers in terms of the coupling model. J Chem Phys 142:114502 Ngai KL, Capaccioli S, Prevosto D (2016) Sub-Rouse modes in polymer thin films: coupling to density and responding to physical aging. AIP Conf Proc 1736:020006 Ngai KL (2017) Universal properties of relaxation and diffusion in condensed matter. Chin Phys B 26:018105 Glor EC, Angrand GV, Fakhraai Z (2017) Exploring the broadening and the existence of two glass transitions due to competing interfacial effects in thin, supported polymer films. J Chem Phys 146:203330 Wang Z, Ngai KL, Wang WH, Capaccioli S (2016) Coupling of caged molecule dynamics to Johari–Goldstein β-relaxation in metallic glasses. J Appl Phys 119:024902 Bohdan M, Sprakel J, van der Gucht J (2016) Multiple relaxation modes in associative polymer networks with varying connectivity. Phys Rev E 94:032507 Yu WW, Du M, Ye WJ, Lv WY, Zheng Q (2014) Relaxation behavior of layered double hydroxides filled dangling chain-based polyurethane/polymethyl methacrylate nanocomposites. Polymer 55:2455–2463 Wang XA, Huang GS, Wu JR, Nie YJ, He XJ, Xiang KW (2011) Molecular motions in glass-rubber transition region in polyisobutylene investigated by two-dimensional correlation dielectric relaxation spectroscopy. Appl Phys Lett 99:121902 Jelcic Z, Bulatovic VO, Markovic KJ, Rek V (2017) Multi-fractal morphology of un-aged and aged SBS polymer-modified bitumen. Plast Rubber Compos 46:77–98 Zhang R, He XR, Yu H, Chen KY (2014) Detecting the Rouse and Sub-Rouse modes in poly(butyl acrylate) and poly(ethyl acrylate) through two-dimensional dynamic mechanical spectra. J Macromol Sci Part B Phys 53:1642–1653 Christie D, Zhang C, Fu J, Koel B, Priestley RD (2016) Glass transition temperature of colloidal polystyrene dispersed in various liquids. J Polym Sci Part B: Polym Phys 54:1776–1783 Igwe IE, Zong YW, Yang XN, Ouyang ZC, Chen K (2017) Induced attraction between polystyrene colloidal particles in a binary mixture with PNIPAM colloidal microgels. J Phys Chem B 121:5391–5395 Yang M, Liu CY, Zhao KS (2017) Concentration dependent phase behavior and collapse dynamics of PNIPAM microgel by dielectric relaxation [J]. Phys Chem Chem Phys 19:15433–15443 Liao FS, Su AC, Hsu TCJ (1994) Damping behaviour of dynamically cured butyl rubber/polypropylene blends. Polymer 35:2579–2586 Medjdoub N, Guessoum M, Fois M (2017) Viscoelastic, thermal and environmental characteristics of poly(lactic acid), linear low-density polyethylene and low-density polyethylene ternary blends and composites. J Adhes Sci Technol 31:787–805 Chen Q, Zuo M, Yang RQ, Zhang JF, Lv X, Zhang WJ, Song YH, Zheng Q (2017) Evolution of concentration fluctuation during phase separation of polystyrene/poly(vinyl methyl ether) blend in the presence of nanosilica. J Polym Sci Part B: Polym Phys 55:1337–1349 Rathika R, Padmaraj O, Suthanthiraraj AS (2017) Electrical conductivity and dielectric relaxation behaviour of PEO/PVdF-based solid polymer blend electrolytes for zinc battery applications. Ionics 1–13 Kahar AWM, Sarifuddin N, Ismail H (2017) Structural, thermal and physico-chemical properties of high density polyethylene/natural rubber/modified cassava starch blends. Iran Polym J 26:149–159 Zhang R, He XR, Lai ZP, Yang DB (2016) Effect of some inorganic particles on the softening dispersion of the dynamics of butyl rubber. Polym Bull 74:1031–1043 Lei ZY, Xing W, Wu JR, Huang GS, Wang XA, Zhao LJ (2014) The proper glass transition temperature of amorphous polymers on dynamic mechanical spectra. J Therm Anal Calorim 116:447–453 Zhang R, He XR, Huang GS (2015) A review of the slow relaxation processes in the glass–rubber transition region of amorphous polymers. Phase Trans 2015:843–858 Wu JR, Huang GS, Li HX, Wu SD, Liu YF, Zheng J (2013) Enhanced mechanical and gas barrier properties of rubber nanocomposites with surface functionalized graphene oxide at low content. Polymer 54:1930–1937 Zhan YH, Wu JK, Xia HS, Yan N, Fei GX, Yuan GP (2011) Dispersion and exfoliation of graphene in rubber by an ultrasonically-assisted latex mixing and in situ reduction process. Macromol Mater Eng 296:590–602 Liao KH, Aoyama S, Abdala AA, Macosko C (2014) Does graphene change T g of nanocomposites? Macromolecules 47:8311–8319 Xing YL (2015) The study on the preparation of high-performance polymer nanocomposites and their structure and performance. Southwest Petroleum University, Master Thesis, Chengdu Hummers WS, Offeman RE (1958) Preparation of graphitic oxide. J Am Chem Soc 80:1339 Leblanc JL (2002) Rubber–filler interactions and rheological properties in filled compounds. ProgPolym Sci 27:627–687 Zou YK, Sun YK, He JW, Tang ZH, Zhu LX, Luo YF, Liu F (2016) Enhancing mechanical properties of styrene–butadiene rubber/silica nanocomposites by in situ interfacial modification with a novel rare-earth complex. Compos A 87:297–309 Ganesh BM, Isloor AM, Ismail AF (2013) Enhanced hydrophilicity and salt rejection study of graphene oxide-polysulfone mixed matrix membrane. Desalination 313:199–207 Mahmoudi E, Ng LY, Ba-Abbad MM, Mohammad AW (2015) Novel nanohybrid polysulfone membrane embedded with silver nanoparticles on graphene oxide nanoplates. Chem Eng J 277:1–10 Olanipekun O, Oyefusi A, Neelgund GM, Oki A (2015) Synthesis and characterization of reduced graphite oxide–polymer composites and their application in adsorption of lead. Spectrochim Acta Part A 149:991–996 Pazur RJ, Petrov I (2015) The thermo-oxidation of isoprene containing copolymers of isobutylene: activation energies and reactions from room temperature to 100 °C. Polym Degrad Stab 113:55–65 Fragiadakis D, Bokobza L, Pissis P (2011) Dynamics near the filler surface in natural rubber-silica nanocomposites. Polymer 52:3175–3182 Zhang R, He XR, Yu H (2014) Why tanδ of poly(butyl acrylate) and poly(ethyl acrylate) with little double bonds are becoming asymmetric? Polymer 55:4720–4727 Zhang R, He XR, Huang GS (2014) Dynamics of poly(butyl acrylate) and poly(ethyl acrylate) with internal double bonds. J Polym Res 21:388 He XR, Yu H, Zhang R, Yang CH (2014) Enhance slower relaxation process of poly(ethyl acrylate) through internal plasticization. Int Polym Proc 29:419–424 Cao FH, Wang JC (2016) Preparation and characterization of hyperbranched polymer modified montmorillonite/chlorinated butyl rubber damping composites. J Appl Polym Sci 133 Hu C, Li ZY, Wang YL, Gao JC, Dai K, Zheng GQ, Liu CT, Shen CY, Song HX, Guo ZH (2017) Comparative assessment of the strain-sensing behaviors of polylactic acid nanocomposites: reduced graphene oxide or carbon nanotubes. J Mater Chem C 5:2318–2328 Cao J, Wang K, Yang H, Chen F, Zhang Q, Fu Q (2010) Shear-induced clay dispersion in HDPE/PEgMA/organoclay composites as studied via real-time rheological method. J Polym Sci Part B: Polym Phys 48:302–312 Zhang R, He XR (2015) Crystallization and molecular dynamics of ethylene-vinyl acetate copolymer/butyl rubber blends. RSC Adv 5:130–135 Zhang R, He XR, Yang DB, Lai ZP (2015) Non-isothermal crystallization kinetics and segmental dynamics of high density polyethylene/butyl rubber blends. Polym Int 64:1252–1261 Zhang R, He XR, Yu H (2015) Transitions and molecule motions in glass–rubber transition zone of amorphous polymers. Polym Mater Sci Eng 31:186–190