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Stimuli-responsive nanogels for environmental and pharmaceutical applications

机译:刺激响应纳米凝胶,用于环境和制药应用

摘要

The term microgel has been widely used to describe particles that swell but do not dissolve in a solvent. Traditionally they can be anything from 100 nm – 100 μm in size. This project is devoted principally to investigation of the swelling/deswelling properties of largely submicron poly(N-isopropylacrylamide) [PNIPAM] microgel particles and its derivatives and also poly(2-vinylpyridine) [PVP] microgel particles. PNIPAM microgel particles are temperature-responsive because of the hydrophobic isopropyl group and the hydrophilic amide group present in its side chains. PVP microgel particles are pH-responsive due to the pyridine groups.udSurfactant free emulsion polymerization (SFEP) and emulsion polymerization techniques were employed in order to copolymerize PNIPAM with acrylic acid (AA), with 3-acrylamidophenylboronic acid (3-APB) and (3-acrylamidopropyl)trimethylammonium bromide (ATMA) and with 1-vinylimidazole (VI). The resultant microgel particles exhibited multi-responsive behaviour being sensitive to changes in temperature, pH and the PNIPAM-co-3-APB-ATMA microgels were sensitive to concentration of glucose, whilst the PNIPAM-co-VI microgels were sensitive to certain metals, copper in particular. These microgel particles were characterized using dynamic light scattering (DLS), scanning electron microscopy (SEM) and transmission electron microscopy (TEM). The behaviour of the particles under various conditions of temperature, pH, glucose and metal ion are described and discussed in this work and several observations, such as swelling/deswelling transitions of PNIPAM-co-VI and PNIPAM-co-3-APB-ATMA with increase of concentration of added copper (II) and glucose respectively, were reported for the first time. The microgel containing AA exhibit characteristic temperature-sensitive behaviour with volume phase transition temperature (VPTT) being in the range of 35o-40oC and showed pH-sensitive features as the particles collapsed at low and swelled at high pHs.udThe PNIPAM-co-VI microgels undergo swelling before the concentration of Cu2+ reaches 0.3 g/L due to adsorption of the cations inside the particle which leads to charging up the internal phase of the microgel. Hence, the repulsion forces of positively charged Cu (II) ions are dominating over contraction forces of complex binding. However, at higher concentrations of copper (II) ions the binding forces of complexation between Cu2+ and imidazole groups of the microgels are leading to conformation of the microgel backbone, and hence weaker polymer-solvent interactions. Therefore, it is favourable that solvent would be forced out of the particle resulting into the collapse. In addition, the copper (II) uptake was calculated and the uptake was found to be well described by the Langmuir adsorption isotherm. The impact of other metal ions, such as nickel, zinc, iron and silver, was also investigated. The microgels swelled upon addition low concentrations of corresponding metal ions, however aggregation has been observed at higher concentrations. The microgels containing various concentration of VI were also examined on sensitivity to the temperature and pH changes. The investigation of such microgels with increasing temperature showed similar behaviour to those containing AA as the microgel particles shrunk continuously and the LCST has been shifted to higher temperatures (in the range of 35o-45oC). The particle size of these microgels was also investigated as a function of pH; the microgel particles swelled at low and collapsed at high pHs.udThe particle size of the PNIPAM-co-3-APB-ATMA microgels was investigated both as a function of temperature and glucose concentration. The microgels showed typical behaviour of the PNIPAM microgels copolymerized with functional monomer, which were 3-APB and ATMA, by continuous shrinking with increasing temperature and shifted LCST towards higher temperatures. Additionally, these microgels showed swelling behaviour with the increase of glucose concentration at physiological conditions, i.e. particles swelled in the range of glucose concentration between 0.1 and 10 mmol/L at 35oC and pH 7.5. The behaviour of these microgels was also investigated at 35oC and pH 8.5 as a function of glucose concentration. Although the swelling of the particles was slightly larger at pH 8.5, considerable swelling was also observed at pH 7.5 making them the first microgel system to be glucose sensitive at physiological pH and temperature.
机译:术语微凝胶已被广泛用于描述溶胀但不溶于溶剂的颗粒。传统上,它们的大小可以在100 nm至100μm之间。该项目主要致力于研究大部分亚微米级聚(N-异丙基丙烯酰胺)[PNIPAM]微凝胶颗粒及其衍生物以及聚(2-乙烯基吡啶)[PVP]微凝胶颗粒的溶胀/溶胀性能。 PNIPAM微凝胶颗粒具有温度响应性,因为其侧链中存在疏水性异丙基和亲水性酰胺基。由于吡啶基团,PVP微凝胶颗粒具有pH响应性。 ud采用无表面活性剂乳液聚合(SFEP)和乳液聚合技术将PNIPAM与丙烯酸(AA),3-丙烯酰胺基苯基硼酸(3-APB)和(3-丙烯酰胺基丙基)三甲基溴化铵(ATMA)和1-乙烯基咪唑(VI)。所得的微凝胶颗粒表现出对温度,pH值变化敏感的多重响应行为,而PNIPAM-co-3-APB-ATMA微凝胶对葡萄糖浓度敏感,而PNIPAM-co-VI微凝胶对某些金属敏感,特别是铜。使用动态光散射(DLS),扫描电子显微镜(SEM)和透射电子显微镜(TEM)对这些微凝胶颗粒进行表征。在这项工作中,对颗粒在各种温度,pH,葡萄糖和金属离子条件下的行为进行了描述和讨论,并观察到了一些观察结果,例如PNIPAM-co-VI和PNIPAM-co-3-APB-ATMA的溶胀/溶胀转变首次报道了随着铜(II)和葡萄糖添加浓度的增加。含AA的微凝胶在35o-40oC的体积相变温度(VPTT)范围内表现出特征性的温度敏感性行为,并且当颗粒在低pH下塌陷并在高pH下膨胀时显示出pH敏感特征。由于微粒内部阳离子的吸附,VI微凝胶在Cu2 +的浓度达到0.3 g / L之前经历了溶胀,这导致微凝胶的内相带电。因此,带正电的Cu(II)离子的排斥力高于复杂结合的收缩力。但是,在较高浓度的铜(II)离子下,微凝胶的Cu2 +和咪唑基团之间的络合结合力导致微凝胶骨架的构象,因此聚合物与溶剂之间的相互作用较弱。因此,有利的是将溶剂从颗粒中挤出而导致塌陷。此外,计算了铜(II)的吸收量,发现该吸收量可以通过Langmuir吸附等温线很好地描述。还研究了其他金属离子(如镍,锌,铁和银)的影响。加入低浓度的相应金属离子后,微凝胶溶胀,但是在较高浓度下观察到聚集。还检查了含有各种浓度VI的微凝胶对温度和pH变化的敏感性。随着温度的升高,对这种微凝胶的研究显示出与含AA相似的行为,因为微凝胶颗粒不断收缩,LCST已移至更高的温度(35o-45oC范围内)。还研究了这些微凝胶的粒径与pH的关系。微凝胶颗粒在低pH下会溶胀,在高pH下会塌陷。 ud研究了PNIPAM-co-3-APB-ATMA微凝胶的粒径与温度和葡萄糖浓度的关系。该微凝胶通过与不断升高的温度连续收缩并使LCST向更高温度转移,显示了与功能性单体(3-APB和ATMA)共聚合的PNIPAM微凝胶的典型行为。另外,这些微凝胶在生理条件下随着葡萄糖浓度的增加而表现出溶胀行为,即在35℃和pH 7.5下,颗粒在0.1至10mmol / L的葡萄糖浓度范围内膨胀。还研究了这些微凝胶在35oC和pH 8.5下随葡萄糖浓度变化的行为。尽管颗粒的溶胀在pH 8.5时稍大,但在pH 7.5时也观察到相当大的溶胀,使它们成为第一个在生理pH和温度下对葡萄糖敏感的微凝胶系统。

著录项

  • 作者

    Muratalin Marat;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 eng
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