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Compact Polyelectrolyte Complexes: Saloplastic Candidates for Biomaterials

机译:紧凑型聚电解质复合物:生物材料的盐基候选材料

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摘要

Precipitates of polyelectrolyte complexes were transformed into rugged shapes suitable for bioimplants by ultracentrifugation in the presence of high salt concentration. Salt ions dope the complex, creating a softer material with viscous fluid-like properties. Complexes that were compacted under the centrifugal field (CoPECs) were made from poly(diallyldimethyl ammonium), PDADMA, as polycation, and poly(styrene sulfonate), PSS, or poly(methacrylic acid), PMAA, as polyanion. Dynamic mechanical testing revealed a rubbery plateau at lower frequencies for PSS/PDADMA with moduli that decreased with increasing salt concentration, as internal ion pair cross-links were broken. CoPECs had significantly lower modulii compared to similar polyelectrolyte complexes prepared by the “multilayering” method. The difference in mechanical properties was ascribed to higher water content (located in micropores) for the former and, more importantly, to their nonstoichiometric polymer composition. The modulus of PMAA/PDADMA CoPECs, under physiological conditions, demonstrated dynamic mechanical properties that were close to those of the nucleus pulposus in an intervertebral disk.
机译:在高盐浓度下,通过超速离心将聚电解质复合物的沉淀物转变成适合生物植入物的粗糙形状。盐离子掺杂了复合物,形成了一种具有粘性流体状特性的较软材料。由聚二烯丙基二甲基铵,PDADMA(作为聚阳离子)和聚(苯乙烯磺酸盐),PSS或聚(甲基丙烯酸),PMAA(作为聚阴离子)制成在离心场下压实的复合物(CoPEC)。动态机械测试表明,PSS / PDADMA的低频呈橡胶态平稳状态,其模量随盐浓度的增加而降低,因为内部离子对的交联被破坏了。与通过“多层”方法制备的类似聚电解质复合物相比,CoPEC具有明显更低的模量。机械性能的差异归因于前者较高的水含量(位于微孔中),更重要的是其非化学计量的聚合物组成。在生理条件下,PMAA / PDADMA CoPEC的模量显示出接近椎间盘中髓核的动态机械性能。

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