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首页> 外文期刊>Chemical science >Enthalpic incompatibility between two steric stabilizer blocks provides control over the vesicle size distribution during polymerization-induced self-assembly in aqueous media
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Enthalpic incompatibility between two steric stabilizer blocks provides control over the vesicle size distribution during polymerization-induced self-assembly in aqueous media

机译:两个空间稳定剂块之间的焓不相容,可在含水介质中的聚合诱导的自组装期间对囊泡尺寸分布进行控制

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摘要

Over the past two decades, block copolymer vesicles have been widely used by many research groups to encapsulate small molecule drugs, genetic material, nanoparticles or enzymes. They have also been used to design examples of autonomous self-propelled nanoparticles. Traditionally, such vesicles are preparedviapost-polymerization processing using a water-miscible co-solvent such as DMF or THF. However, such protocols are invariably conducted in dilute solution, which is a significant disadvantage. In addition, the vesicle size distribution is often quite broad, whereas aqueous dispersions of relatively small vesicles with narrow size distributions are highly desirable for potential biomedical applications. Alternatively, concentrated dispersions of block copolymer vesicles can be directly preparedviapolymerization-induced self-assembly (PISA). Moreover, using a binary mixture of a relatively long and a relatively short steric stabilizer block enables the convenient PISA synthesis of relatively small vesicles with reasonably narrow size distributions in alcoholic media (C. Gonzatoet al.,JACS, 2014,136, 11100-11106). Unfortunately, this approach has not yet been demonstrated for aqueous media, which would be much more attractive for commercial applications. Herein we show that this important technical objective can be achieved by judicious use of two chemically distinct, enthalpically incompatible steric stabilizer blocks, which ensures the desired microphase separation across the vesicle membrane. This leads to the formation of well-defined vesicles of around 200 nm diameter (size polydispersity = 13-16%) in aqueous media at 10% w/w solids as judged by transmission electron microscopy, dynamic light scattering and small-angle X-ray scattering.
机译:在过去的二十年中,许多研究组已广泛使用嵌段共聚物囊泡以包封小分子药物,遗传物质,纳米颗粒或酶。它们还被用来设计自治自推进纳米粒子的实例。传统上,这种囊泡是使用水溶性共溶剂如DMF或THF的制备viapost聚合加工。然而,这些方案总是在稀释溶液中进行的,这是一个显着的缺点。此外,囊泡尺寸分布通常非常宽,而具有窄尺寸分布的相对小囊泡的水分散体非常希望潜在的生物医学应用。或者,嵌段共聚物囊泡的浓缩分散体可以直接制备viap聚合诱导的自组装(PISA)。此外,使用相对较长的二元混合物和相对短的空间稳定剂块,使得方便的比萨合成相对小的囊泡,具有在酒精培养基中具有合理窄的尺寸分布(C.Gonzatoet Al,Jacs,2014,136,11100-11106 )。遗憾的是,这种方法尚未对水性介质证明,这对商业应用来说更具吸引力。在这里,我们表明,这种重要的技术目标可以通过明智地使用两个化学上独异的焓不相容的空间稳定剂块来实现,这确保了穿过囊泡膜的所需的微相分离。这导致在通过透射电子显微镜,动态光散射和小角度X-判断的10%w / w固体中形成大约200nm直径(尺寸的PolyDispersity = 13-16%)的明确定义的囊泡。射线散射。

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  • 来源
    《Chemical science》 |2020年第39期|共14页
  • 作者单位

    Univ Sheffield Dept Chem Dainton Bldg Brook Hill Sheffield S3 7HF S Yorkshire England;

    Univ Sheffield Dept Chem Dainton Bldg Brook Hill Sheffield S3 7HF S Yorkshire England;

    Univ Sheffield Dept Chem Dainton Bldg Brook Hill Sheffield S3 7HF S Yorkshire England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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