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Active Anion Delivery by Self-Propelled Microswimmers

机译:自推进的microWimmers积极的阴离子

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Self-propelled micro- and nanomachines are at the forefront of materials research, branching into applications in biomedical science and environmental remediation. Cationic frameworks enabling the collection and delivery of anionic species (A(-)) are highly required, due to the large variety of lifethreatening pollutants, such as radioactive technetium and carcinogenic chromium, and medicines, such as dexamethasone derivatives with negative charges. However, such autonomous moving carriers for active transport of the anions have been barely discussed. A polymeric viologen (PV++)-consisting of electroactive bicationic subunits-is utilized in a tubular autonomous microswimmer to selectively deliver A(-) of different sizes and charge densities. The cargo loading is based on a facile anion exchange mechanism. The packed crystal structure of PV++ allows removal of an exceptionally high quantity of anions per one microswimmer (2.55 X 10(-13) mol anions per microswimmer), a critical factor often neglected regarding the real-world application of microswimmers. Notably, there was virtually no leakage of anions during the delivery process or upon keeping the loaded microswimmers under ambient conditions for at least 4 months. Multiple release mechanisms, compatible with different environments, including electrochemical, photochemical, and a metathesis reaction, with high efficiencies up to 98% are introduced. Such functional autonomous micromachines provide great promise for the next generation of functional materials for biomedical and environmental applications.
机译:自推进的微型和纳米胺位于材料研究的最前沿,分支为生物医学科学与环境修复的应用。由于诸如放射性技术和致癌铬等种类的生命培养污染物,因此,阳离子框架使得阴离子物种的收集和交付(A( - ))是非常需要的。然而,这种自主移动的载体用于主动传输的阴离子已经几乎没有讨论。由电活性亚基(PV ++)组成的聚合物Violologen(PV ++)用于管状自主微倍微灯泡中,以选择性地提供不同尺寸和电荷密度的( - )。货物负载基于容易的阴离子交换机制。 PV ++的填充晶体结构允许通过每一个微宽度(2.55×10(-13)摩尔阴离子)去除极高的阴离子(2.55×10(-13)摩尔阴离子),关于微威尔的真实应用常见的关键因素经常被忽略。值得注意的是,在递送过程中几乎没有阴离子泄漏,或者在环境条件下保持负载的微威尔至少4个月。介绍了多种释放机制,兼容不同的环境,包括电化学,光化学和复分解反应,具有高达98%的高效率。这种功能性自主微机芯对生物医学和环境应用的下一代功能材料提供了很大的承诺。

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