光热治疗
荧光
共轭体系
材料科学
分子
亮度
光化学
纳米技术
化学
聚合物
光学
有机化学
物理
复合材料
作者
Yuanyuan Li,Yufu Tang,Wenbo Hu,Zhen Wang,Xi Li,Xiaomei Lü,Shufen Chen,Wei Huang,Quli Fan
标识
DOI:10.1002/advs.202204695
摘要
Abstract Second near‐infrared (NIR‐II, 1000–1700 nm) window fluorescence imaging‐guided photothermal therapy probes are promising for precise cancer phototheranostics. However, most of the currently reported probes do not demonstrate high NIR‐II fluorescent brightness (molar absorption coefficient ( ε ) × quantum yield (QY)) and photothermal performance ( ε × photothermal conversion efficiency (PCE)) in a single molecule. Herein, a versatile strategy to solve this challenge is reported by fabricating a large π ‐conjugated molecule (BNDI‐Me) with a rigid molecular skeleton and flexible side groups. The proposed BNDI‐Me nanoprobe boosts the ε and simultaneously optimizes its QY and PCE. Therefore, high NIR‐II fluorescent brightness ( ε × QY = 2296 m −1 cm −1 ) and strong photothermal performance ( ε × PCE = 82 000) are successfully incorporated in a single small molecule, and, to the best of knowledge, either of these two parameters is better than the best currently available fluorescent or photothermal probes. Thus, superior NIR‐II imaging effect in vivo and high photothermal tumor inhibition rate (81.2%) at low systemic injection doses are obtained. The work provides further insights into the relationship of photophysical mechanisms and structures, and presents promising molecular design guidelines for the integration of more efficient multiple theranostic functions in a single molecule.
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