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胶体光子晶体在生物应用方面的进展。

Colloidal photonic crystals towards biological applications.

机构信息

College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, P. R. China.

State Key Laboratory of Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu 610041, P. R. China.

出版信息

J Mater Chem B. 2024 Sep 11;12(35):8488-8504. doi: 10.1039/d4tb01325e.

Abstract

Colloidal photonic crystals (CPCs), fabricated from the assembly of micro-/nano-particles, have attracted considerable interest due to their unique properties, such as structural color, slow-photon effect, and high specific surface area (SSA). Benefiting from these properties, significant progress has been made in the biological applications of CPCs. In this perspective, these properties and relative manipulation strategies are firstly discussed, building bridges between properties and biological applications of CPCs. Structural color endows CPCs with naked-eye sensing capability, which can be applied to physiological state assessment and diagnosis, as well as self-report of CPC-based diagnostic and therapeutic devices. The slow-photon effect contributes to enhanced fluorescence, surface-enhanced Raman scattering, and efficacy of photodynamic/photothermal therapy, when CPCs are combined with corresponding functional materials. High SSA provides CPCs with abundant binding sites and superior capabilities for loading, adsorption, delivery, These properties can be utilized individually or synergistically to grant CPCs superior performance in biological applications. Next, the recent advancements of CPCs towards biological applications are summarized, including biosensors, wound dressings, cells-on-a-chip, and phototherapy. Finally, a perspective on the challenges and future development of CPCs for biological applications is presented.

摘要

胶体光子晶体(CPCs)由微/纳米颗粒组装而成,由于其独特的性质,如结构色、慢光效应和高比表面积(SSA),引起了相当大的关注。得益于这些特性,CPCs 在生物应用方面取得了重大进展。在这篇观点文章中,首先讨论了这些特性和相关的操纵策略,在 CPCs 的特性和生物应用之间架起了桥梁。结构色赋予 CPCs 肉眼感知能力,可应用于生理状态评估和诊断,以及基于 CPC 的诊断和治疗设备的自我报告。当 CPCs 与相应的功能材料结合时,慢光效应有助于增强荧光、表面增强拉曼散射和光动力/光热治疗的效果。高 SSA 为 CPCs 提供了丰富的结合位点和卓越的负载、吸附、递药能力。这些特性可以单独或协同利用,赋予 CPCs 在生物应用中的卓越性能。接下来,总结了 CPCs 在生物应用方面的最新进展,包括生物传感器、伤口敷料、芯片上细胞和光疗。最后,对 CPCs 在生物应用方面的挑战和未来发展提出了展望。

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