Lee Yeon Ui, Li Shilong, Bopp Steven Edward, Zhao Junxiang, Nie Zhaoyu, Posner Clara, Yang Sui, Zhang Xiang, Zhang Jin, Liu Zhaowei
Department of Electrical and Computer Engineering, University of California, San Diego, San Diego, 9500 Gilman Drive, La Jolla, CA, 92093, USA.
Materials Science and Engineering, University of California, San Diego, San Diego, 9500 Gilman Drive, La Jolla, CA, 92093, USA.
Adv Mater. 2021 Mar;33(9):e2006496. doi: 10.1002/adma.202006496. Epub 2021 Jan 27.
The dynamics of photons in fluorescent molecules plays a key role in fluorescence imaging, optical sensing, organic photovoltaics, and displays. Photobleaching is an irreversible photodegradation process of fluorophores, representing a fundamental limitation in relevant optical applications. Chemical reagents are used to suppress the photobleaching rate but with exceptionally high specificity for each type of fluorophore. Here, using organic hyperbolic materials (OHMs), an optical platform to achieve unprecedented fluorophore photostability without any chemical specificity is demonstrated. A more than 500-fold lengthening of the photobleaching lifetime and a 230-fold increase in the total emitted photon counts are observed simultaneously. These exceptional improvements solely come from the low-loss hyperbolic dispersion of OHM films and the large resultant Purcell effect in the visible spectral range. The demonstrated OHM platform may open up a new paradigm in nanophotonics and organic plasmonics for super-resolution imaging and the engineering of light-matter interactions at the nanoscale.
荧光分子中光子的动力学在荧光成像、光学传感、有机光伏和显示器中起着关键作用。光漂白是荧光团的不可逆光降解过程,是相关光学应用中的一个基本限制。化学试剂用于抑制光漂白速率,但对每种荧光团具有极高的特异性。在此,利用有机双曲线材料(OHMs),展示了一个无需任何化学特异性即可实现前所未有的荧光团光稳定性的光学平台。同时观察到光漂白寿命延长了500多倍,总发射光子数增加了230倍。这些显著的改进仅源于OHM薄膜的低损耗双曲线色散以及在可见光谱范围内产生的巨大珀塞尔效应。所展示的OHM平台可能会在纳米光子学和有机等离子体学中开启一个新的范例,用于超分辨率成像和纳米尺度上光与物质相互作用的工程设计。