化学
荧光
催化作用
纳米探针
光致发光
生物相容性
发光
碳纤维
草酸
纳米技术
光化学
组合化学
无机化学
有机化学
光电子学
物理
材料科学
量子力学
复合数
复合材料
作者
Zhiyu Xue,De Ning,Kaihong Jia,Hao Liu,Yong Xiang,Jinlong Cao,Junxian Chen,Yeshuang Zhong,Xinyu Wang,Zhen Zhang
标识
DOI:10.1016/j.saa.2024.125048
摘要
Carbon dots (CQD) have received significant attention as a novel ratiometric fluorescent pH nanoprobe, owing to their favorable optical properties and excellent biocompatibility. Despite their appealing features, the precise mechanism behind the pH-sensitive photoluminescence of CQDs remains to be fully understood. This study endeavors to unravel the mechanism underlying the pH-responsive ratiometric fluorescence in dual-emission CQDs, synthesized through a one-step hydrothermal method using o-phenylenediamine and oxalic acid as precursors. The resultant CQDs exhibit inherent dual-emission at wavelengths of 383 nm and 566 nm, with the ratiometric fluorescence response tailored by the ratio of precursors, providing a robust tool for pH sensing across a range of 2 to 6. Detailed characterizations, including chemical, morphological, and optical analyses, alongside theoretical insights from time-dependent density functional theory (TD-DFT), elucidate the mechanism underlying the pH-dependent luminescence, attributed to the electron cloud transmission between amide and adjacent carboxyl groups on the CQD surface. The superior performance of these CQDs in real-time pH monitoring is demonstrated through their application in glucose oxidase-catalyzed reactions, showcasing their potential as efficient, reliable nanoprobes for biomedical research and diagnostic applications.
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