首页> 外文会议>Smart Colloidal Materials; Progress in Colloid and Polymer Science; vol.133 (2006) >Structure of Doubly Temperature Sensitive Core-Shell Microgels Based on Poly-N-Isopropylacrylamide and Poly-N-Isopropylmethacrylamide
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Structure of Doubly Temperature Sensitive Core-Shell Microgels Based on Poly-N-Isopropylacrylamide and Poly-N-Isopropylmethacrylamide

机译:基于聚N-异丙基丙烯酰胺和聚N-异丙基甲基丙烯酰胺的双温敏核-壳微凝胶的结构

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Swelling properties of doubly temperature sensitive core-shell microgels consisting of two thermosensitive polymers namely poly-N-isopropylacrylamide (PNI-PAM) with a lower critical solution temperature (LCST) at ca. 34℃ and poly-N--isopropylmethacrylamide (PNIPMAM) with a LCST of ca. 44℃ have been investigated by small-angle neutron scattering (SANS). Two types of microgels with different core-shell composition were studied: PNIPAM-core -PNIPMAM-shell microgels as well as a microgel with inverse structure, i.e. PNIPMAM-core - PNIPAM-shell. A core-shell form factor has been employed to evaluate the structure and the real space particle structure is expressed by radial density profiles. By this means the influences of composition and temperature on the internal structure have been revealed. At temperatures between the LCSTs the swelling of the PNIPMAM-shell leads to an expansion of the PNIPAM-core. At temperatures below the core LCST, the core cannot swell to its native size (i.e. in the absence of a shell) because the maximum expanded shell network prohibits further swelling. Thus depending on temperature the shell either expands or compresses the core. The inverse PNIPMAM-core -PNIPAM-shell microgel displays qualitatively different behavior. At intermediate temperatures, the segment density of the shell is higher as compared to the core. Since the density ratio of shell and core depends on temperature, such core-shell microgels provide interesting opportunities for encapsulation and controlled release.
机译:由两种热敏聚合物(即聚N-异丙基丙烯酰胺(PNI-PAM))组成的双温度敏感核-壳微凝胶的溶胀特性约为5%,该溶液的临界溶液温度较低。 34℃和LCST约为的聚N-异丙基甲基丙烯酰胺(PNIPMAM)。通过小角中子散射(SANS)研究了44℃。研究了两种具有不同核-壳组成的微凝胶:PNIPAM-核-PNIPMAM-壳微凝胶以及具有相反结构的微凝胶,即PNIPMAM-核-PNIPAM-壳。核-壳形状因数已用于评估结构,实际空间的粒子结构由径向密度分布表示。通过这种方式,揭示了成分和温度对内部结构的影响。在LCST之间的温度下,PNIPMAM壳的膨胀会导致PNIPAM核的膨胀。在低于核心LCST的温度下,核心无法膨胀到其原始尺寸(即在没有外壳的情况下),因为最大的扩展外壳网络会阻止进一步膨胀。因此,取决于温度,壳会膨胀或压缩核。反相PNIPMAM核-PNIPAM壳微凝胶显示出质的不同行为。在中间温度下,壳的段密度高于核。由于壳和核的密度比取决于温度,因此这种核-壳微凝胶为封装和控释提供了有趣的机会。

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