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纳米钛酸管对防污剂异噻唑酮的控释作用 被引量:9

Performance of Controlled Release of Antifouling Agent in Nanotubes of Titanic Acid
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摘要 以纳米钛酸管为包埋载体,4,5-二氯-2-正辛基-4-异噻唑啉-3-酮(简称异噻唑酮)为防污剂,利用毛细吸附作用,将异噻唑酮防污剂包埋进纳米钛酸管,并对纳米钛酸管中异噻唑酮的释放进行了研究。紫外-可见分光光度计检测表明,纳米钛酸管可有效包埋异噻唑酮防污剂,最大包埋质量分数为12%;不同的包埋工艺,防污剂有不同的释放速率,最大释放速率为0.14 mg/(L/d),最小释放速率仅为0.05 mg/(L/d),所以纳米钛酸管具有较好的控制释放能力。纳米钛酸管样品在w(NaC l)=3%的水溶液中的释放速率与在蒸馏水中的相差不大。 Nanotubes of titanic acid were utilized as a microencapsulated vehicle, and 4,5-dichloro-2-n- octyl-4-isothiazolin-3-one (called isothiazoline for short ) was used as an antifouling agent. The antifouling agent isothiazoline could enter the lumen of the nanotubes of titanic acid by capillary attraction and be entrapped effectively. The maximum entrapped mass fraction is 12% by the total weight of the sample. Different encapsulation procedures were performed, and the release rates were obtained by determination with UV - visible spectrophotometer. The maximum release rate is 0. 14 mg/ (L/d) ,and the minimum release rate is only 0. 05 mg/(L/d). Hence,the nanotubes of titanic acid have a good performance of controlled release of isothiazoline. The release rate of isothiazoline in nanotubes of titanic acid samples is indiscriminate for samples in distilled water and in w(NaCl) =3% water solution.
出处 《精细化工》 EI CAS CSCD 北大核心 2007年第3期213-216,220,共5页 Fine Chemicals
关键词 纳米钛酸管 防污剂 包埋 控制释放 nanotubes of titanic acid antifouling agent microencapsulation controlled release
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  • 1许凤玲,蔺存国,于泓先,郑纪勇.海洋防污剂及其缓控释技术进展[J].材料开发与应用,2013,28(3):119-122. 被引量:9
  • 2汪小伟,尹卫平,付玉彬,郑纪勇.镀铜微管对防污剂的控制释放性能[J].材料开发与应用,2005,20(1):19-22. 被引量:7
  • 3王广金,褚良银,陈文梅,杨平,周明宇.微生物固定化聚醚砜微囊载体的制备及其性能研究[J].四川大学学报(工程科学版),2005,37(3):47-51. 被引量:4
  • 4Huang JG, Kunitake T. Nanotubings of titania/polymer composite: template synthesis and nanoparticle inclusion. J Mater Chem, 2006, 16: 4257-4264.
  • 5Prida VM, Hermindez-V61ez M, Pirota KR, Menendez A, Vazquez M. Synthesis and magnetic properties of Ni nanocylinders in self-aligned and randomly disordered grown titania nanotubes. Nanotechnology, 2005, 16:2696-2702.
  • 6Shen X, Gong RZ, Nie Y, Nie JH. Preparation and electromagnetic performance of coating of multiwall carbon nanotubes with iron nanogranule. J Magnetism Magnetic Mater, 2005, 288:397-402.
  • 7Fu YB, Zai XR. Dielectric properties of ceramic composite with nanosized Ni on tubule template under high frequency. JNanosci Nanotech, 2009, 9:1964-1971.
  • 8Fu YB, Zhang LD. Deposition feature of Ni nanoparticles on halloysite template and magnetic properties of the composite. J Nanosci Nanotech, 2005, 5:1113-1119.
  • 9Brandow SL, Chen MS, Wang T, Dulcey CS, Calvert JM, Bohland JF, Calabrese GS, Drressick WJ. Size-controlled colloidal Pd(II) catalysts for electroless Ni deposition in nanolithography applications. J Electrochem Soc, 1997, 144:3425-3434.
  • 10Markowitz M, Baral S, Brandow S, Singh A. Palladium ion assisted formation and metallization of lipid tubules. Thin Solid Film, 1993, 224 242-247.

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