[1] 潘巍,丁雪佳.抗菌聚氨酯材料的研究进展[J].化工进展, 2015, 34(s1):144-149. PAN W, DING X J. Research progress of antibacterial polyurethane materials[J]. Chemical Industry and Engineering Progress, 2015, 34(s1):144-149.
[2] DAROUICHE R O. Treatment of infections associated with surgical implants[J]. Journal of Urology, 2004, 172(5):1422-1429.
[3] SIEDENBIEDEL F, TILLER J C. Antimicrobial polymers in solution and on surfaces:overview and functional principles[J]. Polymers, 2012, 4(1):46-71.
[4] TIMOFEEVA L. Antimicrobial polymers:mechanism of action, factors of activity, and applications[J]. Applied Microbiology and Biotechnology, 2011, 89(3):475-479.
[5] KAWABATA N, NISHIGUCHI M. Antibacterial activity of soluble pyridinium-type polymers[J]. Applied and Environmental Microbiology, 1988, 54(10):2532-2535.
[6] AKIHIKO K, TOMIKI I, TAKESHI E. Antibacterial activity of polymeric sulfonium salts[J]. Journal of Polymer Science Part A:Polymer Chemistry, 2010, 31(11):2873-2876.
[7] XU X. Antimicrobial polyethylene wax emulsion and its application on active paper-based packaging material[J]. Journal of Applied Polymer Science, 2015, 132(27):1-5.
[8] RAUP A. Compaction and Transmembrane delivery of pDNA:differences between l-PEI and two types of amphiphilic block copolymers[J]. Biomacromolecules, 2017, 18(3):808-815.
[9] KANAZAWA A, IKEDA T, ENDO T. Novel polycationic biocides:synthesis and antibacterial activity of polymeric phosphonium salts[J]. Journal of Polymer Science Part A:Polymer Chemistry, 1993, 31(2):335-343.
[10] KANAZAWA A, IKEDA T, ENDO T. Polymeric phosphonium salts as a novel class of cationic biocides. Ⅲ. Immobilization of phosphonium salts by surface photografting and antibacterial activity of the surface-treated polymer films[J]. Journal of Polymer Science Part A:Polymer Chemistry, 1993, 31(6):1467-1472.
[11] PRIYANKA K G. Synthesis of triazole ring-containing pentol chain extender and its effect on the properties of hyperbranched polyurethane-urea coatings[J]. Journal of Applied Polymer Science, 2012, 126(6):2024-2034.
[12] 谭生,郭军红. 抗菌涂料的研究现状及发展趋势[J].中国涂料, 2011(2):16-20. TAN S, GUO J H. Research status and development trend of antibacterial coatings[J]. China Coatings, 2011(2):16-20.
[13] NGUYEN T V. Effect of rutile titania dioxide nanoparticles on the mechanical property, thermal stability, weathering resistance and antibacterial property of styrene acrylic polyurethane coating[J]. Advances in Natural Sciences Nanoscience and Nanotechnology, 2016, 7(4):15-45.
[14] PAIK K L. White light-emitting diodes from novel silicon-based copolymers containing both electron-transport oxadiazole and hole-transport carbazole moieties in the main chain[J]. Macromolecules, 2002, 35(18):6782-6791.
[15] RAO T. Pd-catalyzed hydrosilylation polymerization of a dihydrosilane with diyne/triyne mixed systems affording crosslinked silylene-divinylene polymers and their properties[J]. Polymer, 2005, 46(23):9736-9741.
[16] HUANG Jinyu. Antibacterial polypropylene via surface-initiated atom transfer radical polymerization[J]. Biomacromolecules, 2007, 8(5):1396-1399.
[17] 王武生.聚氨酯分散体粒径及粒径分布与粒径控制[J].涂料技术与文摘, 2011, 2:3-13. WANG W S. Particle size distribution and particle size control of polyurethane dispersion[J]. Coatings Technology and Abstracts, 2011, 2:3-13.
[18] 李光,陈红,江建明. 胍基聚合物的合成及抗菌性能[J]. 高分子材料科学, 2002, 18(4):85-89. LI G, CHEN H, JIANG J M. Synthesis and antibacterial properties of guanidine polymers[J]. Science of Polymer Materials, 2002, 18(4):85-89.
[19] PENG Kaimei. Development of contact-killing non-leaching antimicrobial guanidyl-functionalized polymers via click chemistry[J]. RSC Advances, 2017, 7(40):24903-24913.
[20] 彭开美. 胍类抗菌聚合物的构建及应用[J]. 化学学报, 2016, 74(9):713-725. PENG K M. Construction and application of guanidine antibacterial polymers[J]. Acta Chimica Sinica, 2016, 74(9):713-725.
[21] HU J. Click cross-linking-improved waterborne polymers for environment-friendly coatings and adhesives[J]. ACS Applied Materials & Interfaces, 2016, 8(27):17499-17515. |