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Biocompatible Polymer/Quantum Dots Hybrid Materials: Current Status and Future Developments

机译:生物相容性聚合物/量子点杂化材料:现状和未来发展

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Quantum dots (QDs) are nanometer-sized semiconductor particles with tunable fluorescent optical property that can be adjusted by their chemical composition, size, or shape. In the past 10 years, they have been demonstrated as a powerful fluorescence tool for biological and biomedical applications, such as diagnostics, biosensing and biolabeling. QDs with high fluorescence quantum yield and optical stability are usually synthesized in organic solvents. In aqueous solution, however, their metallic toxicity, non-dissolubility and photo-luminescence instability prevent the direct utility of QDs in biological media. Polymers are widely used to cover and coat QDs for fabricating biocompatible QDs. Such hybrid materials can provide solubility and robust colloidal and optical stability in water. At the same time, polymers can carry ionic or reactive functional groups for incorporation into the end-use application of QDs, such as receptor targeting and cell attachment. This review provides an overview of the recent development of methods for generating biocompatible polymer/QDs hybrid materials with desirable properties. Polymers with different architectures, such as homo- and co-polymer, hyperbranched polymer, and polymeric nanogel, have been used to anchor and protect QDs. The resulted biocompatible polymer/QDs hybrid materials show successful applications in the fields of bioimaging and biosensing. While considerable progress has been made in the design of biocompatible polymer/QDs materials, the research challenges and future developments in this area should affect the technologies of biomaterials and biosensors and result in even better biocompatible polymer/QDs hybrid materials.
机译:量子点(QD)是具有可调荧光光学特性的纳米级半导体颗粒,可以通过其化学组成,尺寸或形状进行调整。在过去的十年中,它们已被证明是用于生物学和生物医学应用(如诊断,生物传感和生物标记)的强大荧光工具。通常在有机溶剂中合成具有高荧光量子产率和光学稳定性的量子点。然而,在水溶液中,它们的金属毒性,不溶性和光致发光不稳定性阻止了量子点在生物介质中的直接应用。聚合物被广泛用于覆盖和涂覆量子点,以制造生物相容性量子点。此类杂化材料可提供在水中的溶解度以及强大的胶体和光学稳定性。同时,聚合物可以带有离子或反应性官能团,以掺入QD的最终用途中,例如受体靶向和细胞附着。这篇综述概述了产生具有所需性能的生物相容性聚合物/ QDs杂化材料的方法的最新发展。具有不同结构的聚合物(例如均聚物和共聚物,超支化聚合物和聚合物纳米凝胶)已用于固定和保护QD。所得的生物相容性聚合物/量子点混合材料在生物成像和生物传感领域显示出成功的应用。尽管在生物相容性聚合物/ QDs材料的设计上已经取得了很大的进步,但是该领域的研究挑战和未来发展将影响生物材料和生物传感器的技术,并产生更好的生物相容性聚合物/ QDs混合材料。

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