Synthesis of Inorganic Silica Grafted Three-arm PLLA and Their Behaviors for PLA Matrix

Da-Wei Shi Xiang-Ling Lai Yuan-Ping Jiang Cong Yan Zheng-Ying Liu Wei Yang Ming-Bo Yang

Citation:  Da-Wei Shi, Xiang-Ling Lai, Yuan-Ping Jiang, Cong Yan, Zheng-Ying Liu, Wei Yang, Ming-Bo Yang. Synthesis of Inorganic Silica Grafted Three-arm PLLA and Their Behaviors for PLA Matrix[J]. Chinese Journal of Polymer Science, 2019, 37(3): 216-226. doi: 10.1007/s10118-019-2191-6 shu

Synthesis of Inorganic Silica Grafted Three-arm PLLA and Their Behaviors for PLA Matrix

English


    1. [1]

      Maharana, T.; Mohanty, B.; Negi, Y. S. Melt-solid polycondensation of lactic acid and its biodegradability. Progress in Polymer Science 2009, 34, 99-124. doi: 10.1016/j.progpolymsci.2008.10.001

    2. [2]

      Inkinen, S.; Hakkarainen, M.; Albertsson, A. C.; Södergård, A. From lactic acid to poly(lactic acid) (PLA): Characterization and analysis of PLA and its precursors. Biomacromolecules 2011, 12, 523-532. doi: 10.1021/bm101302t

    3. [3]

      Zhang, P.; Hong, Z.; Yu, T.; Chen, X.; Jing, X. In vivo mineralization and osteogenesis of nanocomposite scaffold of poly(lactide-co-glycolide) and hydroxyapatite surface-grafted with poly(L-lactide). Biomaterials 2009, 30, 58-70. doi: 10.1016/j.biomaterials.2008.08.041

    4. [4]

      Revati, R.; Majid, M. S. A.; Ridzuan, M. M.; Normahira, M.; Nasir, N. F. M.; Rahman, M. N. Y.; Gibson, A. G. Mechanical, thermal and morphological characterisation of 3D porous Pennisetum purpureum/PLA biocomposites scaffold. Materials Science & Engineering C-Materials for Biological Applications 2017, 75, 752-759.

    5. [5]

      Al-Itry, R.; Lamnawar, K.; Maazouz, A. Rheological, morphological, and interfacial properties of compatibilized PLA/PBAT blends. Rheologica Acta 2014, 53, 501-517. doi: 10.1007/s00397-014-0774-2

    6. [6]

      Pinese, C.; Gagnieu, C.; Nottelet, B.; Rondot-Couzin, C.; Hunger, S.; Coudane, J.; Garric, X. In vivo evaluation of hybrid patches composed of PLA based copolymers and collagen/chondroitin sulfate for ligament tissue regeneration. Journal of Biomedical Materials Research Part B-Applied Biomaterials 2017, 105, 1778-1788. doi: 10.1002/jbm.b.v105.7

    7. [7]

      Chinsirikul, W.; Rojsatean, J.; Hararak, B.; Kerddonfag, N.; Aontee, A.; Jaieau, K.; Kumsang, P.; Sripethdee, C. Flexible and tough poly(lactic acid) films for packaging applications: Property and processability improvement by effective reactive blending. Packaging Technology & Science 2015, 28, 741-759. doi: 10.1002/pts.2141

    8. [8]

      Sirisinha, K.; Somboon, W. Melt characteristics, mechanical, and thermal properties of blown film from modified blends of poly(butylene adipate-co-terephthalate) and poly(lactide). Journal of Applied Polymer Science 2012, 124, 4986-4992. doi: 10.1002/app.35604

    9. [9]

      Hua, S.; Chen, F.; Liu, Z. Y.; Yang, W.; Yang, M. B. Preparation of cellulose-graft-polylactic acid via melt copolycondensation for use in polylactic acid based composites: Synthesis, characterization and properties. RSC Adv. 2016, 6, 1973-1983. doi: 10.1039/C5RA23182E

    10. [10]

      Zhang, M.; Thomas, N. L. Blending polylactic acid with polyhydroxybutyrate: The effect on thermal, mechanical, and biodegradation properties. Advances in Polymer Technology 2011, 30, 67-79. doi: 10.1002/adv.v30.2

    11. [11]

      Jestin, J.; Cousin, F.; Dubois, I.; Ménager, C.; Schweins, R.; Oberdisse, J.; Boué, F. Anisotropic reinforcement of nanocomposites tuned by magnetic orientation of the filler network. Advanced Materials 2008, 20, 2533-2540. doi: 10.1002/adma.v20:13

    12. [12]

      Li, Y.; Sun, X. S. Preparation and characterization of polymer-inorganic nanocomposites by in situ melt polycondensation of L-lactic acid and surface-hydroxylated MgO. Biomacromolecules 2010, 11, 1847-1855. doi: 10.1021/bm100320q

    13. [13]

      Hong, Z.; Qiu, X.; Sun, J.; Deng, M.; Chen, X.; Jing, X. Grafting polymerization of L-lactide on the surface of hydroxyapatite nano-crystals. Polymer 2004, 45, 6699-6706. doi: 10.1016/j.polymer.2004.07.036

    14. [14]

      Jin, T. Y.; Sang, C. L.; Jeong, Y. G. Effects of grafted chain length on mechanical and electrical properties of nanocomposites containing polylactide-grafted carbon nanotubes. Composites Science & Technology 2010, 70, 776-782. doi: 10.1016/j.compscitech.2010.01.011

    15. [15]

      Chevigny, C.; Dalmas, F.; Cola, E. D.; Gigmes, D.; Bertin, D.; Boué, F.; Jestin, J. Polymer-grafted-nanoparticles nanocomposites: Dispersion, grafted chain conformation, and rheological behavior. Macromolecules 2011, 44, 122-133. doi: 10.1021/ma101332s

    16. [16]

      Géraldine Carrot; Delphine Rutothouzé; Agnès Pottier; Philippe Degée; Jöns Hilborn, A.; Philippe Dubois Surface-initiated ring-opening polymerization: A versatile method for nanoparticle ordering. Macromolecules 2002, 35, 8400-8404. doi: 10.1021/ma020558m

    17. [17]

      Shinoda, H.; Matyjaszewski, K. Structural control of poly(methyl methacrylate)-g-poly(lactic acid) graft copolymers by atom transfer radical polymerization (ATRP). Macromolecules 2001, 34, 6243-6248. doi: 10.1021/ma0105791

    18. [18]

      Perruchot, C.; Khan, M. A.; A. Kamitsi, A.; Armes, S. P.; And, T. V. W.; Patten, T. E. Synthesis of well-defined, polymer-grafted silica particles by aqueous ATRP. Langmuir 2001, 17, 4479-4481. doi: 10.1021/la0102758

    19. [19]

      Qin, S. H.; Qin, D. Q.; Ford, W. T.; Resasco, D. E.; Herrera, J. E. Functionalization of single-walled carbon nanotubes with polystyrene via grafting to and grafting from methods. Macromolecules 2004, 37, 752-757. doi: 10.1021/ma035214q

    20. [20]

      Chen, G. X.; Kim, H. S.; Park, B. H.; Yoon, J. S. Controlled functionalization of multiwalled carbon nanotubes with various molecular-weight poly(L-lactic acid). Journal of Physical Chemistry B 2005, 109, 22237-22243. doi: 10.1021/jp054768n

    21. [21]

      Wu, F.; Lan, X. R.; Ji, D. Y.; Liu, Z. Y.; Yang, W.; Yang, M. B. Grafting polymerization of polylactic acid on the surface of nano-SiO2 and properties of PLA/PLA-grafted-SiO2 nanocomposites. Journal of Applied Polymer Science 2013, 129, 3019-3027. doi: 10.1002/app.38585

    22. [22]

      Wu, F.; Zhang, B.; Yang, W.; Liu, Z. Y.; Yang, M. B. Inorganic silica functionalized with PLLA chains via grafting methods to enhance the melt strength of PLLA/silica nanocomposites. Polymer 2014, 55, 5760-5772. doi: 10.1016/j.polymer.2014.08.070

    23. [23]

      Kim, E. S.; Kim, B. C.; Kim, S. H. Structural effect of linear and star-shaped poly(L-lactic acid) on physical properties. Journal of Polymer Science Part B-Polymer Physics 2004, 42, 939-946. doi: 10.1002/(ISSN)1099-0488

    24. [24]

      Zhou, M.; Zhou, P.; Xiong, P.; Qian, X.; Zheng, H. Crystallization, rheology and foam morphology of branched PLA prepared by novel type of chain extender. Macromolecular Research 2015, 23, 231-236. doi: 10.1007/s13233-015-3018-0

    25. [25]

      Xu, H.; Fang, H.; Bai, J.; Zhang, Y.; Wang, Z. Preparation and Characterization of High-melt-strength polylactide with long-chain branched structure through γ-radiation-induced chemical reactions. Industrial & Engineering Chemistry Research 2014, 53, 1150-1159. doi: 10.1021/ie403669a

    26. [26]

      Mannion, A. M.; Bates, F. S.; Macosko, C. W. Synthesis and rheology of branched multiblock polymers based on polylactide. Macromolecules 2016, 49, 4587-4598. doi: 10.1021/acs.macromol.6b00792

    27. [27]

      Fan, Y. J.; Nishida, H.; Shirai, Y.; Endo, T. Thermal stability of poly(L-lactide): Influence of end protection by acetyl group. Polymer Degradation and Stability 2004, 84, 143-149. doi: 10.1016/j.polymdegradstab.2003.10.004

    28. [28]

      Wang, L.; Jing, X.; Cheng, H.; Hu, X.; Yang, L.; Huang, Y. Rheology and crystallization of long-chain branched poly(L-lactide)s with controlled branch length. Industrial & Engineering Chemistry Research 2012, 51, 10731-10741. doi: 10.1021/ie300524j

    29. [29]

      George, K. A.; Schue, F.; Chirila, T. V.; Wentrup-Byrne, E. Synthesis of four-arm star poly(L-lactide) oligomers using an in situ-generated calcium-based initiator. Journal of Polymer Science Part a-Polymer Chemistry 2009, 47, 4736-4748. doi: 10.1002/pola.v47:18

    30. [30]

      Lu, X.; Lv, X.; Sun, Z.; Zheng, Y. Nanocomposites of poly(L-lactide) and surface-grafted TiO2 nanoparticles: Synthesis and characterization. European Polymer Journal 2008, 44, 2476-2481. doi: 10.1016/j.eurpolymj.2008.06.002

    31. [31]

      Kim, S. H.; Han, Y. K.; Kim, Y. H.; Hong, S. I. Multifunctional initiation of lactide polymerization by stannous octoate pentaerythritol. Makromolekulare Chemie-Macromolecular Chemistry and Physics 1992, 193, 1623-1631. doi: 10.1002/macp.1992.021930706

    32. [32]

      Zhang, C. X.; Wang, B.; Chen, Y.; Cheng, F.; Jiang, S. C. Amphiphilic multiarm star polylactide with hyperbranched polyethylenimine as core: A systematic reinvestigation. Polymer 2012, 53, 3900-3909. doi: 10.1016/j.polymer.2012.07.002

    33. [33]

      Shi, W. P.; Zhao, C. Y.; Li, S. M.; Fan, Z. Y. Synthesis of tri-arm PLLA-PDLA block copolymers and its stereocomplex crystallization behavior. Chemical Journal of Chinese Universities-Chinese 2012, 33, 2092-2098. doi: 10.3969/j.issn.0251-0790.2012.09.038

    34. [34]

      Dorgan, J. R.; Williams, J. S.; Lewis, D. N. Melt rheology of poly(lactic acid): Entanglement and chain architecture effects. Journal of Rheology 1999, 43, 1141-1155. doi: 10.1122/1.551041

    35. [35]

      Hong, Z. K.; Zhang, P. B.; He, C. L.; Qiu, X. Y.; Liu, A. X.; Chen, L.; Chen, X. S.; Jing, X. B. Nano-composite of poly(L-lactide) and surface grafted hydroxyapatite: Mechanical properties and biocompatibility. Biomaterials 2005, 26, 6296-6304. doi: 10.1016/j.biomaterials.2005.04.018

    36. [36]

      Zou, J.; Ma, T.; Zhang, J.; He, W.; Huang, F. Preparation and characterization of PLLA-ESO/surface-grafted silica nanocomposites. Polymer Bulletin 2011, 67, 1261-1271. doi: 10.1007/s00289-011-0485-0

    37. [37]

      Luo, Y. B.; Wang, X.-L.; Xu, D.-Y.; Wang, Y. Z. Preparation and characterization of poly(lactic acid)-grafted TiO2 nanoparticles with improved dispersions. Applied Surface Science 2009, 255, 6795-6801. doi: 10.1016/j.apsusc.2009.02.074

    38. [38]

      Balazs, A. C.; Emrick, T.; Russell, T. P. Nanoparticle polymer composites: Where two small worlds meet. Science 2006, 314, 1107-1110. doi: 10.1126/science.1130557

    39. [39]

      Jordan, J.; Jacob, K. I.; Tannenbaum, R.; Sharaf, M. A.; Jasiuk, I. Experimental trends in polymer nanocomposites - a review. Materials Science and Engineering a-Structural Materials Properties Microstructure and Processing 2005, 393, 1-11. doi: 10.1016/j.msea.2004.09.044

    40. [40]

      Li, H. B.; Huneault, M. A. Effect of nucleation and plasticization on the crystallization of poly(lactic acid). Polymer 2007, 48, 6855-6866. doi: 10.1016/j.polymer.2007.09.020

    41. [41]

      Nofar, M.; Zhu, W. L.; Park, C. B.; Randall, J. Crystallization kinetics of linear and long-chain-branched polylactide. Industrial & Engineering Chemistry Research 2011, 50, 13789-13798.

  • 加载中
计量
  • PDF下载量:  0
  • 文章访问数:  2014
  • HTML全文浏览量:  57
文章相关
  • 发布日期:  2019-03-01
  • 收稿日期:  2018-08-20
  • 接受日期:  2018-01-01
  • 修回日期:  2018-09-25
  • 网络出版日期:  2018-11-15
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

/

返回文章