Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology, Atlanta, Georgia, 30332, USA.
Department of Materials Science and Nanoengineering, Rice University, Houston, Texas, 77005, USA.
Chembiochem. 2024 Mar 1;25(5):e202300683. doi: 10.1002/cbic.202300683. Epub 2023 Dec 12.
Perovskite nanomaterials have recently been exploited for bioimaging applications due to their unique photo-physical properties, including high absorbance, good photostability, narrow emissions, and nonlinear optical properties. These attributes outperform conventional fluorescent materials such as organic dyes and metal chalcogenide quantum dots and endow them with the potential to reshape a wide array of bioimaging modalities. Yet, their full potential necessitates a deep grasp of their structure-attribute relationship and strategies for enhancing water stability through surface engineering for meeting the stringent and unique requirements of each individual imaging modality. This review delves into this evolving frontier, highlighting how their distinctive photo-physical properties can be leveraged and optimized for various bioimaging modalities, including visible light imaging, near-infrared imaging, and super-resolution imaging.
钙钛矿纳米材料由于其独特的光物理性质,包括高吸收率、良好的光稳定性、窄发射和非线性光学性质,最近被用于生物成像应用。这些特性优于传统的荧光材料,如有机染料和金属硫属量子点,并赋予它们重塑各种生物成像模式的潜力。然而,要充分发挥其潜力,就需要深入了解其结构-属性关系,并通过表面工程来提高其水稳定性的策略,以满足每种成像模式的严格和独特要求。这篇综述探讨了这一不断发展的前沿领域,强调了如何利用和优化其独特的光物理性质,用于各种生物成像模式,包括可见光成像、近红外成像和超分辨率成像。