基于非金属掺杂量子点的荧光传感有利于环境污染物的监测

IF 11.1 2区 化学 Q1 CHEMISTRY, ANALYTICAL Trends in Environmental Analytical Chemistry Pub Date : 2023-10-21 DOI:10.1016/j.teac.2023.e00218
Hong Wu, Jian-Hong Li, Wei-Cheng Yang, Ting Wen, Jie He, Yang-Yang Gao, Ge-Fei Hao, Wen-Chao Yang
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引用次数: 0

摘要

环境污染是威胁人类健康、生存和全球可持续发展的主要因素。实现污染物的快速、灵敏检测对于及时监测和治理环境污染至关重要。量子点(QD)探针已成为污染物检测的常用方法。特别是基于非金属元素掺杂碳材料量子点和其他非金属掺杂Si量子点、MoOx量子点、MoS2量子点和MXene量子点的量子点的发展,为污染物的检测提供了更方便和有效的手段。然而,对非金属掺杂量子点探针在污染物检测中的应用还缺乏全面的总结。为了解决这一问题,在本工作中,我们主要根据其制备方法将不同的非金属掺杂量子点分为“自上而下”和“自下而上”两种策略。基于非金属掺杂的量子点探针具有激发光谱窄、光可调谐、荧光量子产率高、荧光稳定性好等独特的光学性质。荧光传感技术可通过荧光/动态猝灭、光致电子转移(PET)、内滤效应(IFE)、荧光共振能量转移(FRET)等传感机制实现。由于荧光传感技术易于实现、操作简便、响应迅速等优点,在环境污染物检测的研究中得到了广泛的应用。我们发现基于非金属掺杂QD探针的荧光传感技术可以实现对污染物(如水或食物中的重金属、有害非金属离子、有机农药、抗生素残留)的快速检测,其检出限(LOD)可以达到痕量检测的皮摩尔水平。此外,非金属量子点探针的荧光传感技术可以与智能设备相结合,实现对污染物的实时监测。我们的工作为开发基于非金属掺杂QD探针的污染物检测和推进未来的环境治理提供了额外的策略。
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Nonmetal-doped quantum dot-based fluorescence sensing facilitates the monitoring of environmental contaminants

Environmental pollution is the main threatening factor to human health, survival and global sustainable development. Achieving rapid, sensitive detection of contaminants is extremely important for timely environmental pollution monitoring and treatment. Quantum dot (QD) probes have become a common method for the detection of contaminants. In particular, the development of QDs based on nonmetallic element-doped carbon materials QDs and other nonmetallic doped Si QDs, MoOx QDs, MoS2 QDs, and MXene QDs provides a more convenient and effective means of detecting pollutants. However, a comprehensive summary of the application of nonmetal-doped QD probes for contaminant detection is still lacking. To address this issue, in the present work we mainly categorize different nonmetal-doped QDs into “top-down” and “bottom-up” strategies based on their preparation methods. QD probes based on nonmetal doping have unique optical properties, such as a narrow excitation spectrum, optical tunability, high fluorescence quantum yield (QY), and fluorescence stability. Fluorescence sensing technology can be realized through sensing mechanisms such as fluorescence/dynamic quenching, photoinduced electron transfer (PET), internal filtering effect (IFE), and fluorescence resonance energy transfer (FRET). Considering the ease of implementation, operation, and immediate response of fluorescence sensing technology, it has been widely used in research for the detection of environmental pollutants. We have found that fluorescence sensing technology based on nonmetal-doped QD probes can achieve rapid detection of pollutants (such as heavy metals in water or food, harmful nonmetallic ions, organic pesticides, and antibiotic residues), and its limit of detection (LOD) can reach the picomolar level for trace detection. In addition, the fluorescence sensing technology of nonmetallic QD probes can be combined with smart devices to realize real-time monitoring of pollutants. Our work provides additional strategies for developing nonmetal-doped QD probe-based detection of contaminants and advancing future environmental governance.

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来源期刊
Trends in Environmental Analytical Chemistry
Trends in Environmental Analytical Chemistry Chemistry-Analytical Chemistry
CiteScore
21.20
自引率
2.70%
发文量
34
审稿时长
44 days
期刊介绍: Trends in Environmental Analytical Chemistry is an authoritative journal that focuses on the dynamic field of environmental analytical chemistry. It aims to deliver concise yet insightful overviews of the latest advancements in this field. By acquiring high-quality chemical data and effectively interpreting it, we can deepen our understanding of the environment. TrEAC is committed to keeping up with the fast-paced nature of environmental analytical chemistry by providing timely coverage of innovative analytical methods used in studying environmentally relevant substances and addressing related issues.
期刊最新文献
Recent innovations in explosive trace detection: Advances and emerging technologies Assessing emerging contaminants in soils using soil enzyme-based methods: A critical review Recent trends in use of plant-derived carbon dot-based fluorescent probes for heavy metal ion detection and their biological applications Chitosan-based sorbents for the micro-solid-phase extraction of pesticides Trace element determination using mass spectrometry coupled detection methods
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