辐射技术对聚酯改性研究进展

杨莹雪, 杜中贺, 杨博, 齐悦, 马慧玲, 张秀芹*

化工新型材料 ›› 2020, Vol. 48 ›› Issue (5) : 20 -25.

PDF (1207KB)
化工新型材料 ›› 2020, Vol. 48 ›› Issue (5) : 20-25.
综述与专论

辐射技术对聚酯改性研究进展

    杨莹雪, 杜中贺, 杨博, 齐悦, 马慧玲, 张秀芹*
作者信息 +

Research progress in modification of polyester by radiation technology

  • Yang Yingxue, Du Zhonghe, Yang Bo, Qi Yue, Ma Huiling, Zhang Xiuqin
Author information +
文章历史 +
PDF (1235K)

摘要

辐射技术以其环境友好、操作简单、对基材损害小等优点,逐渐得到了人们的广泛关注。利用电离辐射诱导聚合物发生交联、降解和接枝的方法已广泛应用于高分子材料的改性研究中。聚酯是一类性能优异、用途广泛的材料,在材料领域占据重要地位。主要概述了辐射(高能电子束、γ射线、紫外光等)对聚丙交酯(PLA)、聚己内酯(PCL)和聚对苯二甲酸乙二醇酯(PET)等聚酯材料物理化学性能的影响,分析并总结了辐射改性聚合物的原理和方法。

Abstract

Radiation technology has gradually gained widespread attention due to the advantages of environmental friendliness,simple operation and little damage to polymer substrate.The method of inducing crosslinking,degradation and grafting of polymers by ionizing radiation has been widely used in the modification of polymers.Polyester is a class of materials with excellent properties and wide use,and plays an important role in the field of materials science.The effects of radiation (high-energy electron beam,γ-rays,ultraviolet,etc.) on the physical and chemical properties of polyester materials,including polylactide (PLA),polycaprolactone (PCL),polyethylene terephthalate (PET),etc.were mainly summarized.The principles and methods of polymer modification by radiation were also analyzed.

关键词

辐射技术 / 聚酯材料 / 表面改性 / 物理化学性能

Key words

radiation technology / polyester material / surface modification / physical and chemical properties

引用本文

引用格式 ▾
辐射技术对聚酯改性研究进展[J]. 化工新型材料, 2020, 48(5): 20-25 DOI:

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] El-Farahaty K A,Sadik A M,Hezma A M.γ-Irradiation effects on opto-thermal and-mechanical properties of PET and PETG fibers[J].International Journal of Polymeric Materials,2009,58(7):366-383.
[2] Richter H W.Radiation chemistry:principles and applications[M].Washington:ACS Publications,1998,5-33.
[3] 哈鸿飞,吴季兰.高分子辐射化学:原理与应用[M].北京:北京大学出版社,2002,11-132.
[4] Woods R J,Pikaev A K.Applied radiation chemistry:radiation processing[M].New York:John Wiley & Sons,1993,34-87.
[5] Odian G,Chandler H W.Radiation-induced graft polymerization[J].Advances in Nuclear Science & Technology,1962:85-109.
[6] Chapiro A.Radiation induced polymerization[J].Radiation Physics & Chemistry,1979,14(1):101-116.
[7] 黄光琳,冯雨丁,吴茂良.高分子辐射化学基础[M].四川:四川大学出版社,1993,190-257.
[8] Sun J Z.The effect of chain flexibility and chain mobility on radiation crosslinking of polymers[J].Radiation Physics & Chemistry,2001,60(4):445-451.
[9] Dole M.The effects of ionizing radiation on natural and synthetic high polymers[J].Journal of the American Chemical Society,1958,80(24):6694-6694.
[10] Dawes K,Glover L C,Vroom D A.The effects of electron beam and γ-irradiation on polymeric materials[M].New York:Springer,2007,867-887.
[11] 蔡沈阳,胡广,任杰.乳丝的加工、性能及其应用[J].生物工程学报,2016,32(6):786-797.
[12] 潘文静,白桢慧,苏婷婷,等.生物降解塑料聚乳酸(PLA)的改性研究进展[J].应用化工,2017,46(5):977-981.
[13] 郝国庆.可降解高分子材料聚乳酸综述[J].科技创新与生产力,2006(10):13-14.
[14] Saeidlou S,Huneault M A,Li H,et al.Poly(lactic acid) crystallization[J].Progress in Polymer Science,2012,37(12):1657-1677.
[15] Zhao R L,Wang S B,Yang M G,et al.Synthesize PLA for filature and the performance of PLA fibers[J].Progress in Textile Science & Technology,2006(6):15-27.
[16] 朱兰芳,李亚滨.聚乳酸纤维吸湿性能的研究进展[J].轻纺工业与技术,2012,41(1):49-51.
[17] Gupta B,Revagade N,Hilborn J.Poly(lactic acid) fiber:an overview[J].Progress in Polymer Science,2007,32(4):455-482.
[18] Pang Xuan,Zhang Xiuli,Tang Zhaohui,et al.Polylactic acid (PLA):research,development and industrialization[J].Biotechnology Journal,2010,5(11):1125-1136.
[19] Hong Z,Zhang P,He C,et al.Nano-composite of poly(-lactide) and surface grafted hydroxyapatite:mechanical properties and biocompatibility[J].Biomaterials,2005,26(32):6296-6304.
[20] Rasal R M,Janorkar A V,Hirt D E.Poly(lactic acid) modifications[J].Progress in Polymer Science,2010,35(3):338-356.
[21] 蒋艳凤,董超萍,杨理.聚乳酸纤维面料的性能初探[J].浙江纺织服装职业技术学院学报,2006,5(3):16-18.
[22] 谭震.聚乳酸纤维混纺纱及其织物的力学性能研究[D].青岛:青岛大学,2008.
[23] Middleton J C,Tipton A J.Synthetic biodegradable polymers as orthopedic devices[J].Biomaterials,2000,21(23):2335-2346.
[24] Södergård A,Stolt M.Properties of lactic acid based polymers and their correlation with composition[J].Progress in Polymer Science,2002,27(6):1123-1163.
[25] Zhang X,Kotaki M,Okubayashi S,et al.Effect of electron beam irradiation on the structure and properties of electrospun PLLA and PLLA/PDLA blend nanofibers[J].Acta Biomater,2010,6(1):123-129.
[26] Malinowski R,Rytlewski P,enkiewicz M.Effects of electron radiation on properties of PLA[J].Archives of Materials Science and Engineering,2011,49(1):25-32.
[27] Bee S T,Ratnam C T,Sin L T,et al.Effects of electron beam irradiation on the structural properties of polylactic acid/polyethylene blends[J].Nuclear Instruments and Methods in Physics Research Section B:Beam Interactions with Materials and Atoms,2014,334:18-27.
[28] Huang Y,Gohs U,Müller M T,et al.Electron beam treatment of polylactide at elevated temperature in nitrogen atmosphere[J].Radiation Physics and Chemistry,2019,159:166-173.
[29] Liu M,Yin Y,Fan Z,et al.The effects of gamma-irradiation on the structure,thermal resistance and mechanical properties of the PLA/EVOH blends[J].Nuclear Instruments and Methods in Physics Research Section B:Beam Interactions with Materials and Atoms,2012,274:139-144.
[30] Marianne L,Wim T.Synthesis of polycaprolactone:a review[J].Chemical Society Reviews,2009,38(12):3484-3504.
[31] 艾合麦提,玉素甫,王振斌,等.可生物降解材料聚己内酯在医学上的应用进展[J].国际生物医学工程杂志,2005,28(1):19-23.
[32] Cheng Z,Teoh S.Surface modification of ultra thin poly (epsilon-caprolactone) films using acrylic acid and collagen[J].Biomaterials,2004,25(11):1991-2001.
[33] Campos A,Marconcini J M,Martins-Franchetti S M,et al.The influence of UV-C irradiation on the properties of thermoplastic starch and polycaprolactone biocomposite with sisal bleached fibers[J].Polymer Degradation and Stability,2012,97(10):1948-1955.
[34] Abdel-Rehim H A,Yoshii F,Kume T.Modification of polycaprolactone in the presence of polyfunctional monomers by irradiation and its biodegradability[J].Polymer Degradation and Stability,2004,85(1):689-695.
[35] Huang Y,Gohs U,Müller M T,et al.Evaluation of sustainable electron beam induced crosslinking of poly(ε-caprolactone)-effect of elevated temperatures[J].Journal of Applied Polymer Science,2019,136(33):47866.
[36] Khan R A,Dussault D,Salmieri S,et al.Mechanical and barrier properties of carbon nanotube reinforced PCL-based composite films:effect of gamma radiation[J].Journal of Applied Polymer Science,2013,127(5):3962-3969.
[37] Ibrahim N A,Ahmad S N A,Yunus W M Z W,et al.Effect of electron beam irradiation and poly(vinylpyrrolidone) addition on mechanical properties of polycaprolactone with empty fruit bunch fibre (OPEFB) composite[J].Express Polymer Letters,2009,3(4):226-234.
[38] 李振峰.我国聚酯产业技术发展历程回顾[J].合成纤维工业,2004,27(4):28-30.
[39] 陈旭,彭静,翟茂林.抗熔滴涤纶纤维的辐照制备研究[C].北京:第十四届全国应用化学年会,2015.
[40] 陈旭,王月,彭静,等.两步辐射接枝法制备抗熔滴涤纶织物[J].高分子学报,2017(4):669-675.
[41] Kordoghli B,Khiari R,Mhenni M F,et al.Sulfonation of polyester fabrics by gaseous sulfur oxide activated by UV irradiation[J].Applied Surface Science,2012,258(24):9737-9741.
[42] Zohdy M H,El Hossamy M B,El-Naggar A W M,et al.Novel UV-protective formulations for cotton,PET fabrics and their blend utilizing irradiation technique[J].European Polymer Journal,2009,45(10):2926-2934.
[43] Raslan W M,Rashed U S,El-Sayad H,et al.Ultraviolet protection,flame retardancy and antibacterial properties of treated polyester fabric using plasma-nano technology[J].Materials Sciences and Applications,2011,2(10):1432-1442.
[44] Xiao J,Yuan H,Ling Y,et al.Fire retardant synergism between melamine and triphenyl phosphate in poly(butylene terephthalate)[J].Polymer Degradation & Stability,2006,91(9):2093-2100.
[45] Hooshangi Z,Feghhi S A H,Sheikh N.The effect of electron-beam irradiation and halogen-free flame retardants on properties of poly butylene terephthalate[J].Radiation Physics and Chemistry,2015,108:54-59.
[46] Balabanovich A I,Zevaco T A,Schnabel W.Fire retardance in poly(butylene terephthalate).the effects of red phosphorus and radiation-induced cross-links[J].Macromolecular Materials & Engineering,2004,289(2):181-190.
[47] Brunner C T,Baran E T,Pinho E D,et al.Performance of biodegradable microcapsules of poly(butylene succinate),poly(butylene succinate-co-adipate) and poly(butylene terephthalate-co-adipate) as drug encapsulation systems[J].Colloids Surf B Biointerfaces,2011,84(2):498-507.
[48] Wang H,Ji J,Zhang W,et al.Biocompatibility and bioactivity of plasma-treated biodegradable poly(butylene succinate)[J].Acta Biomater,2009,5(1):279-87.
[49] Butzbach G D,Wendorff J H.Polycarbonate-poly(methyl methacrylate) blends:the role of molecular interactions on miscibility and antiplasticization[J].Polymer,1991,32(7):1155-1159.
[50] An N,Yang Y,Dong L.Suppression of phase separation in PC/PMMA blend film by thermoset oligomer[J].Macromolecules,2007,40(2):306-311.
[51] Magida M M.Study of structural and thermal properties of electron beam irradiated polymethylmethacrylate/bisphenol-A-polycarbonate blends[J].Journal of Applied Polymer Science,2012,125(4):3184-3190.

基金资助

国家自然科学基金(51673003);北京市长城学者计划(CTT&TCD20180321)

AI Summary AI Mindmap
PDF (1207KB)

1018

访问

0

被引

导航
相关文章

AI思维导图

/