Chen Jie, Shao Jiwei, Sun Ruifen, Zhang Weiwei, Huang Yun, Zheng Jingcheng, Chi Yuwu
MOE Key Laboratory for Analytical Science of Food Safety and Biology, Fujian Provincial Key Laboratory of Analysis and Detection for Food Safety, College of Chemistry, Fuzhou University, Fuzhou, Fujian 350108, China.
Anal Chem. 2023 Aug 8;95(31):11839-11848. doi: 10.1021/acs.analchem.3c02571. Epub 2023 Jul 25.
Recently, the newly emerging lead halide perovskite nanocrystals (PNCs) have been intensely researched in many fields, such as light-emitting diodes (LEDs), solar cells, lasers, and display devices. The extremely high fluorescence quantum yield (near 100%) of PNCs over classic fluorescent materials would enable good applications of PNCs in sensing. However, the study on PNCs for bio- and chemical sensing, especially for detecting targets that exist in aqueous medium, faces great challenges due to the well-known instability of PNCs in polar solvents, especially water. Although the encapsulation of polymers or inorganic materials can efficiently protect PNCs from decomposition in aqueous solution, the sensing based on the interaction between PNCs and targets is severely hindered by the compact protection coating at the surfaces of PNCs. In this work, novel water-dispersed PNCs (W-PNCs), i.e., CsPbBr@CsPbBr PNCs, with strong fluorescence and excellent water stability were synthesized from OAm-capped CsPbBr PNCs by a simple "oil-solid-water" phase transition. The W-PNCs without being encapsulated with compact polymers or inorganic materials can sensitively and stably sense targets in the pure water phase via direct chemical reactions. For the first time, ion exchanges between PNCs and halide ions and their effects on the fluorescence wavelength of PNCs were investigated in the pure water phase, on the basis of which a new, visualized, selective, and sensitive smartphone-based sensing platform for halide ions has been established by the integration of the conveniently prepared W-PNC nanoprobe and the portable mobile phone. It is envisioned that the uncoated but extremely water-stable and highly fluorescent W-PNCs have promising applications in chemical sensing, biosensing, and bioimaging of targets in aqueous medium.
近年来,新出现的卤化铅钙钛矿纳米晶体(PNCs)在许多领域都得到了深入研究,如发光二极管(LED)、太阳能电池、激光器和显示设备等。与传统荧光材料相比,PNCs极高的荧光量子产率(接近100%)使其在传感领域具有良好的应用前景。然而,由于PNCs在极性溶剂(尤其是水)中众所周知的不稳定性,对其进行生物和化学传感的研究,特别是用于检测水性介质中存在的目标,面临着巨大挑战。尽管聚合物或无机材料的封装可以有效地保护PNCs在水溶液中不分解,但基于PNCs与目标之间相互作用的传感受到PNCs表面致密保护涂层的严重阻碍。在这项工作中,通过简单的“油-固-水”相变,由油酸铵包覆的CsPbBr PNCs合成了具有强荧光和优异水稳定性的新型水分散性PNCs(W-PNCs),即CsPbBr@CsPbBr PNCs。无需用致密聚合物或无机材料封装的W-PNCs可以通过直接化学反应在纯水相中灵敏且稳定地检测目标。首次在纯水相中研究了PNCs与卤离子之间的离子交换及其对PNCs荧光波长的影响,并在此基础上,通过将制备方便的W-PNC纳米探针与便携式手机集成,建立了一种新型的、可视化的、选择性的、基于智能手机的卤离子传感平台。可以预见,未包覆但具有极高水稳定性和高荧光性的W-PNCs在水性介质中目标的化学传感、生物传感和生物成像方面具有广阔的应用前景。