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Rapidly Responding pH- and Temperature-Responsive Poly (N-Isopropylacrylamide)-Based Microgels and Assemblies

机译:快速响应pH-和温度响应的聚( N - 基丙基丙烯酰胺)基于微凝胶和组件

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Rapidly responding stimuli-responsive materials can have a benefit in a myriad of applications, for example, sensing and biosensing, actuation, and in drug delivery systems. Thermo- and pH-responsive materials have been among the most widely studied, and can be triggered at physiologically relevant temperatures and pH. Here, we have used a “homologous series” of acids based on the acrylic acid (AAc) backbone and incorporated them into N -isopropylacrylamide (NIPAm)-based microgels. Specifically, the acids used were AAc, methacrylic acid (MAAc), ethylacrylic acid (EAAc), and butylacrylic acid (BAAc), which have pK _(a)’s in the range of 4.25–7.4. The resultant microgels were characterized by optical microscopy, and their responsivity to temperature and pH studied by dynamic light scattering. The microgels were subsequently used to generate optical devices (etalons) and their pH and temperature response was also investigated. We found that the devices composed of BAAc-modified microgels exhibit unusually fast response kinetics relative to those of the rest of the devices. We also found that the speed of the response decreased as the length of the acid pendant group decreased, with AAc-modified microgel-based devices exhibiting the slowest response kinetics. Finally, we showed that the kinetics of the device’s temperature response also decreased as the length of the acid pendant group decreased, which we hypothesize is a consequence of the hydrophobicity of the acid groups, that is, increased hydrophobicity leads to faster responses. Understanding this behavior can lead to the rational design of fast responding materials for the applications mentioned above.
机译:快速响应的刺激响应材料可以在无数的应用中具有益处,例如感测和生物传感,致动和药物递送系统。热量和pH响应材料是最广泛研究的,并且可以在生理相关的温度和pH下触发。在这里,我们使用基于丙烯酸(AAC)骨架的“同源系列”的酸,并将它们掺入 N-异丙基丙烯酰胺(NIPAM)中。具体地,所用的酸是AAC,甲基丙烯酸(MAAC),乙基丙烯酸(EAAc)和丁基丙烯酸(Baac),其在4.25-7.4的范围内具有P k _(a)。通过光学显微镜表征所得的微凝胶,并对通过动态光散射研究的温度和pH的反应性。随后使用微凝胶来产生光学装置(标准龙),并研究了它们的pH和温度响应。我们发现,由BAAC改性的微凝块组成的器件相对于其余装置的那些具有异常快速的响应动力学。我们还发现,随着酸性侧基的长度降低,响应的速度降低,具有呈现最慢的响应动力学的AAC改性的微凝胶基装置。最后,我们表明,随着酸侧群的长度降低,装置的温度响应的动力学也降低,我们假设是酸基团的疏水性的结果,即增加的疏水性导致更快的反应。了解此行为可能导致对上述应用的快速响应材料的合理设计。

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