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首页> 外文期刊>Journal of Sol-Gel Science and Technology >Multifunctional performances of nanocomposite SiO2/TiO2 doped cationic EBODAC film coated on natural cellulose matrix
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Multifunctional performances of nanocomposite SiO2/TiO2 doped cationic EBODAC film coated on natural cellulose matrix

机译:天然纤维素基体包覆纳米复合SiO2 / TiO2掺杂阳离子EBODAC薄膜的多功能性能

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An integrated approach to preparing a novel cationic nanocomposite SiO2/TiO2 sol (CNSTS) with anti-ultraviolet and anti-bacterial performances was investigated. The tetraethoxysilane (TEOS) and tetrabutyl titanate (TBT) were added as precursors and the ethylene-bis (octadecyl dimethyl ammonium chloride) (EBODAC) was used as additive. Cationic nanocomposite SiO2/TiO2 film (CNSTF) was coated on cellulose matrix by pad-dry-cure process with CNSTS. The FTIR spectrum demonstrates the Si-O-Si, Ti-O-Ti and Si-O-Ti bonds are formed in CNSTF. According to the Zetasizer curve, the sol particles minor-axis and macro-axis are 17.84 and 71.45 nm, respectively. The ultraviolet radiation transmittance (URT) is almost less than 5.0% during the wavelengths 200-320 nm, and lower than 6.0% after repetitive washing for 30 times. The bacteriostatic capabilities of the coated cellulose matrix to Gram-negative bacteria E. coli and Gram-positive bacteria S. aureus are 90.8 and 95.2%, while the antibacterial ratios decrease to 61.1 and 71.5% during washing for 30 times, respectively. The SEM photographs present that the films are adhered on the matrix surfaces after washing. This method sets the stage for fully exploiting the potential of multifunctional cellulose matrix to resist bacterial and ultraviolet radiation.
机译:研究了一种新型的具有抗紫外线和抗菌性能的阳离子纳米复合SiO2 / TiO2溶胶(CNSTS)的综合方法。加入四乙氧基硅烷(TEOS)和钛酸四丁酯(TBT)作为前体,并使用乙撑双(十八烷基二甲基氯化铵)(EBODAC)作为添加剂。阳离子纳米复合材料SiO2 / TiO2薄膜(CNSTF)通过CNSTS的干法干燥工艺涂覆在纤维素基质上。 FTIR光谱表明在CNSTF中形成了Si-O-Si,Ti-O-Ti和Si-O-Ti键。根据Zetasizer曲线,溶胶颗粒的短轴和大轴分别为17.84nm和71.45nm。在200-320 nm波长范围内,紫外线透射率(URT)几乎小于5.0%,而在重复清洗30次后,其紫外线透射率则小于6.0%。包被的纤维素基质对革兰氏阴性细菌大肠杆菌和金黄色葡萄球菌阳性细菌的抑菌能力分别为90.8%和95.2%,而在洗涤30次时其抗菌率分别降至61.1和71.5%。 SEM照片显示,清洗后薄膜粘附在基质表面上。该方法为充分利用多功能纤维素基质抵抗细菌和紫外线的潜力奠定了基础。

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