Engineering chiral mesoporous silica nanoparticles: Template design and structural control for advanced applications

Yu Yin , Wu Wei , Kai Zhang
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Abstract

Chiral mesoporous silica nanoparticles (CMSNs) are a distinct subset of mesoporous silica nanoparticles, combining the favorable physicochemical properties of MSNs with unique chiral architectures at both molecular and macroscopic scales. These helical structures endow CMSNs with specialized functionalities, enabling their applications in chiral catalysis, enantioselective recognition, chiral separation, drug delivery, and optical devices, making them a focal point in materials and biomedical research. Significant progress has been achieved in the synthesis of CMSNs, particularly in understanding the mechanisms of chirality formation and the critical role of surfactant templates in guiding chiral structures. This review summarizes these advancements, emphasizing experimental and theoretical insights. Key applications of CMSNs, especially in drug delivery systems, are explored in detail, highlighting their potential to enhance bioavailability and therapeutic efficacy. Looking ahead, CMSN research presents exciting opportunities, including precise control over chiral structures, the development of novel templating strategies, and the exploration of broader applications. These advancements are expected to drive progress in nanoporous silica technologies and open new frontiers in materials science and nanomedicine.

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工程手性介孔二氧化硅纳米颗粒:先进应用的模板设计和结构控制
手性介孔二氧化硅纳米颗粒(CMSNs)是介孔二氧化硅纳米颗粒的一个独特子集,在分子和宏观尺度上结合了MSNs良好的物理化学性质和独特的手性结构。这些螺旋结构赋予cmsn特殊的功能,使其在手性催化、对映选择性识别、手性分离、药物传递和光学器件等方面的应用成为材料和生物医学研究的焦点。在CMSNs的合成方面取得了重大进展,特别是在了解手性形成机制和表面活性剂模板在指导手性结构中的关键作用方面。本文综述了这些进展,强调实验和理论见解。详细探讨了CMSNs在药物传递系统中的关键应用,强调了其提高生物利用度和治疗功效的潜力。展望未来,CMSN研究提供了令人兴奋的机会,包括对手性结构的精确控制,新型模板策略的开发以及更广泛应用的探索。这些进步有望推动纳米多孔二氧化硅技术的进步,并为材料科学和纳米医学开辟新的领域。
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CiteScore
6.70
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0.00%
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