Yang Hui, Wei Yunlong, Yan Xiufang, Nie Chao, Sun Zhenchun, Hao Likai, Su Xiankun
State Key Laboratory of Environmental Geochemistry, Institute of Geochemistry, Chinese Academy of Sciences, Guiyang 550081, China.
Guizhou Academy of Tobacco Science, Guiyang 550081, China.
Nanomaterials (Basel). 2022 Sep 18;12(18):3241. doi: 10.3390/nano12183241.
Recycling waste biomass into valuable products (e.g., nanomaterials) is of considerable theoretical and practical significance to achieve future sustainable development. Here, we propose a one-pot hydrothermal synthesis route to convert waste tobacco stems into biomass-based N, S-codoped carbon dots (C-dots) with the assistance of carbon black. Unlike most of the previously reported luminescent C-dots, these biomass-based C-dots showed a satisfactory stability, as well as an excitation-independent fluorescence emission at ~520 nm. Furthermore, they demonstrated a pH-dependent fluorescence emission ability, offering a scaffold to design pH-responsive assays. Moreover, these as-synthesized biomass-based C-dots exhibited a fluorescence response ability toward tetracycline antibiotics (TCs, e.g., TC, CTC, and OTC) through the inner filter effect (IFE), thereby allowing for the establishment a smart analytical platform to sensitively and selectively monitor residual TCs in real environmental water samples. In this study, we explored the conversion of waste tobacco stems into sustainable biomass-based C-dots to develop simple, efficient, label-free, reliable, low-cost, and eco-friendly analytical platforms for environmental pollution traceability analysis, which might provide a novel insight to resolve the ecological and environmental issues derived from waste tobacco stems.
将废弃生物质转化为有价值的产品(如纳米材料)对于实现未来的可持续发展具有重要的理论和实践意义。在此,我们提出了一种一锅水热合成路线,借助炭黑将废弃烟梗转化为生物质基氮、硫共掺杂碳点(C点)。与大多数先前报道的发光C点不同,这些生物质基C点表现出令人满意的稳定性,以及在~520nm处与激发无关的荧光发射。此外,它们表现出pH依赖的荧光发射能力,为设计pH响应分析提供了一个框架。而且,这些合成的生物质基C点通过内滤效应(IFE)对四环素类抗生素(TCs,如土霉素、金霉素和强力霉素)表现出荧光响应能力,从而能够建立一个智能分析平台,用于灵敏且选择性地监测实际环境水样中的残留TCs。在本研究中,我们探索了将废弃烟梗转化为可持续的生物质基C点,以开发用于环境污染溯源分析的简单、高效、无标记、可靠、低成本且环保的分析平台,这可能为解决源自废弃烟梗的生态和环境问题提供新的见解。