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用于荧光光谱法和基于智能手机的荧光计测定左旋多巴的硫氮共掺杂碳量子点的绿色合成

Green Synthesis of Sulfur- and Nitrogen-Doped Carbon Quantum Dots for Determination of L-DOPA Using Fluorescence Spectroscopy and a Smartphone-Based Fluorimeter.

作者信息

Hemmati Amir, Emadi Hamid, Nabavi Seyed Reza

机构信息

Department of Applied Chemistry, Faculty of Chemistry, University of Mazandaran, Babolsar 4741695447, Iran.

出版信息

ACS Omega. 2023 May 31;8(23):20987-20999. doi: 10.1021/acsomega.3c01795. eCollection 2023 Jun 13.

DOI:10.1021/acsomega.3c01795
PMID:37332813
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10269249/
Abstract

Sulfur- and nitrogen-doped carbon quantum dots (S,N-CQDs) were synthesized using feijoa leaves as a green precursor via a novel route. Spectroscopic and microscopic methods such as X-ray photoelectron spectroscopy, fluorescence spectroscopy, and high-resolution transmission electron microscopy were used to analyze the synthesized materials. The blue emissive S,N-CQDs were applied for qualitative and quantitative determination of levodopa (L-DOPA) in aqueous environmental and real samples. Human blood serum and urine were used as real samples with good recovery of 98.4-104.6 and 97.3-104.3%, respectively. A smartphone-based fluorimeter device was employed as a novel and user-friendly self-product device for pictorial determination of L-DOPA. Bacterial cellulose nanopaper (BC) was used as a substrate for S,N-CQDs to make an optical nanopaper-based sensor for L-DOPA determination. The S,N-CQDs demonstrated good selectivity and sensitivity. The interaction of L-DOPA with the functional groups of the S,N-CQDs via the photo-induced electron transfer (PET) mechanism quenched the fluorescence of S,N-CQDs. The PET process was studied using fluorescence lifetime decay, which confirmed the dynamic quenching of S,N-CQD fluorescence. The limit of detection (LOD) of S,N-CQDs in aqueous solution and the nanopaper-based sensor was 0.45 μM in the concentration range of 1-50 μM and 31.05 μM in the concentration range of 1-250 μM, respectively.

摘要

以费约果叶为绿色前驱体,通过一种新的路线合成了硫氮共掺杂碳量子点(S,N-CQDs)。采用X射线光电子能谱、荧光光谱和高分辨率透射电子显微镜等光谱和显微镜方法对合成材料进行了分析。将蓝色发光的S,N-CQDs用于水环境和实际样品中左旋多巴(L-DOPA)的定性和定量测定。以人血清和尿液作为实际样品,回收率分别为98.4-104.6%和97.3-104.3%,效果良好。一种基于智能手机的荧光计装置被用作一种新颖且用户友好的自行制作的装置,用于L-DOPA的图像测定。细菌纤维素纳米纸(BC)被用作S,N-CQDs的基底,制成用于L-DOPA测定的基于光学纳米纸的传感器。S,N-CQDs表现出良好的选择性和灵敏度。L-DOPA通过光诱导电子转移(PET)机制与S,N-CQDs的官能团相互作用,淬灭了S,N-CQDs的荧光。利用荧光寿命衰减研究了PET过程,证实了S,N-CQD荧光的动态淬灭。S,N-CQDs在水溶液和基于纳米纸的传感器中的检测限(LOD)在1-50μM浓度范围内为0.45μM,在1-250μM浓度范围内为31.05μM。

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