扬州大学 化学化工学院,江苏 扬州 225002
徐 琴,博士,教授,研究方向:分析化学,E-mail:xuqin@yzu.edu.cn
胡效亚,博士,教授,研究方向:分析化学,E-mail:xyhu@yzu.edu.cn
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宋敏霞,管杰,陈璐等.溶胶-凝胶分子印迹CsPbBr3量子点的构建及其在胆固醇荧光检测中的应用[J].分析测试学报,2021,40(09):1367-1373.
SONG Min-xia,GUAN Jie,CHEN Lu,et al.Construction of a Sol-Gel Molecularly Imprinted CsPbBr3 Quantum Dots Probe and Its Application in Fluorescence Detection of Cholesterol[J].Journal of Instrumental Analysis,2021,40(09):1367-1373.
宋敏霞,管杰,陈璐等.溶胶-凝胶分子印迹CsPbBr3量子点的构建及其在胆固醇荧光检测中的应用[J].分析测试学报,2021,40(09):1367-1373. DOI: 10.19969/j.fxcsxb.21010201.
SONG Min-xia,GUAN Jie,CHEN Lu,et al.Construction of a Sol-Gel Molecularly Imprinted CsPbBr3 Quantum Dots Probe and Its Application in Fluorescence Detection of Cholesterol[J].Journal of Instrumental Analysis,2021,40(09):1367-1373. DOI: 10.19969/j.fxcsxb.21010201.
该文研究了CsPbBr,3,量子点(QDs)作为一种新型荧光(FL)探针对胆固醇(CHO)的检测。以3-氨丙基三乙氧基硅烷(APTES)为功能单体,CHO为模板分子,采用溶胶-凝胶技术,将CHO引入到SiO,2,网络中,制备了CHO分子印迹膜保护的CsPbBr,3,@SiO,2, QDs。该分子印迹膜既可降低空气、湿度等与CsPbBr,3, QDs的接触,提高CsPbBr,3, QDs的稳定性,又赋予CsPbBr,3, QDs对CHO的选择性。检测过程中,CHO被捕获到CsPbBr,3,@SiO,2,QDs的印迹位点上,形成空间位阻,导致CsPbBr,3, QDs荧光强度下降。在最优条件下,CsPbBr,3, QDs的荧光猝灭效率和CHO浓度对数在1.00 × 10,-11, ~ 5.00 × 10,-8, mol·L,-1,范围内呈现良好的线性关系,检出限为2.48 × 10,-12, mol·L,-1,。结果表明,该方法灵敏度高、选择性好。该工作为CHO检测提供了一种新的策略,拓宽了CsPbBr,3, QDs的应用范围。
In this work, CsPbBr,3 ,quantum dots(QDs) were used as a new kind of fluorescence(FL)probe to detect cholesterol(CHO). By using 3-aminopropyltrimethoxysilane(APTES) as the functional monomer and CHO as the template molecule, a CHO molecularly imprinted layer was formed on CsPbBr,3, QDs via a simple silica sol-gel process. The formed silica layer not only improve the stability of CsPbBr,3, QDs by protecting CsPbBr,3, QDs from direct exposure to air and humidity, but also renders CsPbBr,3, QDs good selectivity to CHO. During the detection process, CHO was captured into the specific cavity sites of CHO-imprinted SiO,2, shell layers on CsPbBr,3,@SiO,2, QDs to cause the decrease of the FL intensity of CsPbBr,3, QDs. Under the optimal conditions, a good linear relationship was obtained between fluorescence quenching efficiency and the logarithm of CHO concentrations in the range of 1.00 × 10,-11,-5.00 × 10,-8, mol·L,-1,, with a detection limit down to 2.48 × 10,-12, mol·L,-1,. This sensor showed better sensitivity and selectivity to CHO than to other interferences. This work broadens the application horizon of CsPbBr,3, QDs and provides a new strategy for CHO detection.
溶胶-凝胶钙钛矿量子点胆固醇荧光传感器
sol-gelperovskite quantum dotscholesterolfluorescence sensor
Gu Y J, Wu R, Yan S P, Mu D H, Su L K, Nong Y J, Zheng J G. J. Instrum. Anal.(辜英杰, 吴锐, 闫世平, 牟德海, 苏流坤, 农云军, 郑家概. 分析测试学报), 2006, 25(6): 98-100.
Kardani F, Mirzajani R, Ramezani Z. J. Iran. Chem. Soc., 2018, 15 (12): 2877-2888.
Dewangan L, Korram J, Karbhal I, Nagwanshi R, Jena V K, Satnami M L. RSC Adv., 2019, 9 (72): 42085-42095.
Yang D P, Guo W W, Cai Z F, Chen Y S, He X S, Huang C S, Zhuang J Y, Jia N Q. Sens. Actuators B, 2018, 260:642-649.
Barua S, Gogoi S R. Synth. Met. Khan, 2018, 244: 92-98.
Kim K E, Kim T G, Sung Y M. J. Nanopart. Res., 2012, 14 (10): 1179.
Lü Y C, Sun Q Q, Hu B L, Chen X L, Miao R, Fang Y. New J. Chem., 2016, 40(2): 1817-1824.
Roy A D, Dey D, Saha J, Debnath P, Bhattacharjee D, Hussain S A. Sens. Actuators B, 2018, 255: 519-528.
Li X M, Cao F, Yu D J, Chen J, Sun Z G, Shen Y L, Zhu Y, Wang L, Wei Y, Wu Y, Zeng H B. Small, 2017, 13(9): 1603996.
Reyes-Pérez F, Gallardo J J, Aguilar T, Alcántara R, Fernández-Lorenzo C, Nava S J. ChemistrySelect, 2018, 3(36): 10226-10235.
Zhang J R, Hodes G, Jin Z W, Liu S Z. Angew. Chem. Int. Ed., 2019, 58: 15596-15618.
Zhong Q X, Cao M H, Hu H C, Yang D, Chen M, Li P L, Wu L Z, Zhang Q. ACS Nano, 2018, 12(8): 8579-8587.
Chen Y, Yu M H, Ye S, Song J, Qu J L. Nanoscale, 2018, 10: 6704-6711.
Wang K, Ren H L, Li N, Tan X Y, Dang F Q. Talanta, 2018, 188: 708-713.
Wang T T, Huang Z L, Xu Q, Hu X Y. Int. J. Environ. Anal. Chem., 2018, 98: 477-491.
Ji X Y, Ye T, Yuan M, Cao H, Xu F, Yu J S, Ren H, Ye Y Y, Li J Y, Wang Y Q. J. Instrum. Anal.(季芯羽, 叶泰, 袁敏, 曹慧, 徐斐, 于劲松, 任华, 叶寅颖, 李嘉怡, 王彦茜. 分析测试学报), 2019, 38(12): 1487-1492.
Li J H, Xu L M, Wang T, Song J Z, Chen J W, Xue J, Dong Y H, Cai B, Shan Q S, Han B N, Zeng H B. Adv. Mater., 2017, 29(5): 10.1002/adma.201603885.
Odabaşı M, Uzun L, Baydemir G, Aksoy N H, Acet Ö, Erdönmez D. Colloids Surf. B, 2018, 163: 266-274.
Tan L, Guo M L, Tan J, Geng Y Y, Huang S Y, Tang Y W, Su C C, Lin C C, Liang Y. Sens. Actuators B, 2019, 291: 226-234.
Yang J C, Park J Y. ACS Appl. Mater. Inter., 2016, 8(11): 7381-7389.
Huang Y, Cui L J, Xue Y W, Zhang S B, Zhu N X, Liang J T, Li G Y. Mat. Sci. Eng. C, 2017, 77: 1-8.
Yang Q, Li J H, Wang X Y, Xiong H, Chen L X. Anal. Chem., 2019, 91: 6561-6568.
Li W S, Huang S P, Wen H Y, Luo Y, Cheng J W, Jia Z, Han P, Xue W M. Microchem. J., 2020, 154:104579.
GB 5009.128-2016. Determination of Cholesterol in Food. National Standards of the People's Republic of China(食品中胆固醇的测定. 中华人民共和国国家标准).
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