Citation:
Chen Guofeng, Fan Dongdong, Liu Lin, Wu Jiuli. Research Progress in Coumarin-based Fluorescent Probes for Fe3+[J]. Chemistry,
;2017, 80(8): 708-714.
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The research progresses in the field of Fe3+-fluorescent probes based on coumarin during the past ten years are reviewed. Molecular design, mechanism and application of this kind of probes are briefly introduced. Moreover, the future trends of coumarin-based fluorescent probes for Fe3+ ion are briefly introduced.
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Keywords:
- Coumarin,
- Fluorescent probes,
- Cations recognition,
- Fe3+
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- [1]
-
[2]
M C R Symons, J M C Gutteridge. Free Radicals and Iron:Chemistry, Biology, and Medicine. Oxford:Oxford Science Publications, 1998.
-
[3]
J L Bricks, A Kovalchuk, C Trieflinger et al. J. Am. Chem. Soc., 2005, 127(39):13522~13529.
-
[4]
B P Esposito, S Epsztejn, W Breuer et al. Anal. Biochem., 2002, 304(1):1~18.
-
[5]
E H Hanson, G Imperatore, W Burke. Am. J. Epidemiol., 2001, 154(3):193~206.
-
[6]
J N Feder, A Gnirke, W Thomas et al. Nat. Genet., 1996, 13(4):399~408.
- [7]
- [8]
- [9]
- [10]
- [11]
- [12]
- [13]
- [14]
-
[15]
Z X Li, H X Li, C X Shi et al. Sens. Actuat. B, 2016, 226, 127~134.
-
[16]
-
[17]
Y X Song, Z Chen, H Q Li. Curr. Org. Chem., 2012, 16(22):2690~2707.
-
[18]
- [19]
- [20]
- [21]
-
[22]
H D Li, L L Li, B Z Yin. Inorg. Chem. Commun., 2014, 42:1~4.
-
[23]
J N Yao, W Dou, W W Qin et al. Inorg. Chem. Commun., 2009, 12(2):116~118.
-
[24]
G F Chen, H M Jia, L Y Zhang et al. Res. Chem. Intermed., 2013, 39(9):4081~4090.
- [25]
-
[26]
W Y Lin, L Yuan, J B Feng et al. Eur. J. Org. Chem., 2008, 2008(16):2689~2692.
-
[27]
W H Ma, Q Xu, B Song et al. Adv. Mater. Res., 2012, 396~398:2137~2140.
-
[28]
S Devaraj, Y K Tsui, C Y Chiang et al. Spectrochim. Acta, A, 2012, 96:594~599.
-
[29]
Z Q Li, Y Zhou, K Yin et al. Dyes Pigments, 2014, 105, 7~11.
-
[30]
O García-Beltrán, B K Cassels, C Pérez et al. Sensors, 2014, 14(1):1358~1371.
- [31]
-
[32]
B Zhao, T Liu, Y Fang et al. Tetrahed. Lett., 2016, 57(39):4417~4423.
-
[33]
L J Tang, F F Li, M H Liu et al. Bull. Korean Chem., 2011, 32(9):3400~3404.
-
[34]
F Ge, H Ye, H Zhang et al. Dyes Pigments, 2013, 99(3), 661~665.
-
[35]
J M An, T R Li, B D Wang et al. J. Coord. Chem., 2014, 67(5):921~928.
-
[36]
J C Qin, Z Y Yang, G Q Wang et al. Tetrahed. Lett., 2015, 56(35):5024~5029.
- [37]
-
[38]
Y M Ma, H de Groot, Z D Liu et al. Biochem. J., 2006, 395(1):49~55.
- [39]
-
[40]
Y M Ma, R C Hider. Bioorg. Med. Chem., 2009, 17(23):8093~8101.
-
[41]
E N Kaya, F Yuksel, G A Ozpınar et al. Sens. Actuat. B, 2014, 194:377~388.
-
-
-
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