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可视化铁离子荧光探针的合成及性能研究

Synthesis and properties of visual Fe^(3+) probe
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摘要 铁元素是人体必需的微量元素,与人体健康关系紧密。该研究设计并合成了以罗丹明101、乙二胺和8-羟基久洛尼定为原料的化合物R,对其结构进行表征,并对其探针性能和反应机理进行研究。结果表明,R对Fe^(3+)具有很好的响应,伴随溶液颜色发生明显变化的同时,荧光也发生变化。通过等摩尔连续变化法,得出R与Fe^(3+)的反应络合比为2∶1。R对Fe^(3+)检测限分别为49.2 nmol/L(分光光度法)和135.7 nmol/L(荧光光谱法),均远低于国家饮用水标准值。此外,细胞成像实验表明,R具有良好的生物相容性。因此R可以作为一种新型的视觉荧光探针,用于检测Fe^(3+)含量。 Iron is an essential trace element for human body,which is closely related to human health.In this study,compound R was designed and synthesized with rhodamine 101,ethylenediamine and 8-hydroxy-dulonidine as raw materials.Its structure was characterized,and its probe performance and reaction mechanism were studied.The results showed that R had a good response to Fe^(3+),and the fluorescence also changed with the obvious change of solution color.The reaction ratio of R and Fe^(3+)was 2∶1 by equimolar continuous change method.The detection limits of R for Fe^(3+)were 49.2 nmol/L(UV)and 135.7 nmol/L(fluorescence),which were far lower than the Chinese national standard for drinking water.In addition,cell imaging experiments showed that R had good biocompatibility.Therefore,R can be used as a new visual fluorescence probe to detect the content of Fe^(3+).
作者 余亮 江薇 江蓉 黄良芳 胡晓倩 方辉平 柯仲成 史建俊 李长江 YU Liang;JIANG Wei;JIANG Rong;HUANG Liangfang;HU Xiaoqian;FANG Huiping;KE Zhongcheng;SHI Jianjun;LI Changjiang(Department of medicine,Huangshan vocational and Technical College,Huangshan 245041,China;School of Chemistry and Chemical Engineering,Huangshan University,Huangshan 245041,China;College of Life and Environment Sciences,Huangshan University,Huangshan 245041,China;Research Center of Chinese Medicine Efficacy and Health Technology,Huangshan University,Huangshan 245041,China)
出处 《食品与发酵工业》 CAS CSCD 北大核心 2022年第24期266-272,I0013,I0014,共9页 Food and Fermentation Industries
基金 安徽省自然科学研究项目(2008085MH269) 安徽省重点研究及开发计划项目(202204c06020046) 安徽省高校自然科学项目(KJ2021ZD0123 KJ2021A1045 KJHS2017B08) 安徽省质量工程项目(2020sjjd120 2021sx154) 安徽省大学生创新训练项目(S202110375022)。
关键词 合成 性能 反应机理 视觉荧光探针 Fe^(3+) synthesis performance reaction mechanism visual fluorescent probe Fe^(3+)
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