| [ 1 ] Han J, Burgess K. Fluorescent Indicators for Intracellular pH[ J ]. Chem Rev, 2010, 110: 2 709 - 2 728.
[ 2 ] Quang D T, Kim J S. Fluoro- and Chromogenic Chemodosimeters for Heavy Metal Ion Detection in Solution and Biospecimens[ J ]. Chem Rev, 2010, 110: 6 280 - 6 301.
[ 3 ] Xu Z C, Yoon J Y, Spring D R. Fluorescent Chemosensors for Zn2+[ J ]. Chem Soc Rev, 2010, 39: 1 996 - 2 006.
[ 4 ] 吴粦华,拓宏桂,钟春龙. 2-羟基-1-萘甲醛缩-2-萘甲酰腙对Zn2+的选择性识别[ J ]. 应用化学,2010,27( 6 ):632 - 636.
[ 5 ] Cockrell G M, Zhang G, Van Derveer D G, et al. Enhanced Metal Ion Selectivity of 2, 9-Di-(pyrid-2-yl)-1, 10-phenanthroline and Its Use as a Fluorescent Sensor for Cadmium(II) [ J ]. J Am Chem Soc, 2008, 130: 1 420 - 14 30.
[ 6 ] Liu W M, Xu L W, Sheng R L, et al. A Water-Soluble Switching On” Fluorescent Chemosensor of Selectivity to Cd2+ [ J ]. Org Lett, 2007, 9: 3 829 - 3 832.
[ 7 ] Cheng T Y, Wang T, Zhu W P, et al. Modulating the Selectivity of Near - IR Fluorescent Probes toward Various Metal Ions by Judi-cious Choice of Aqueous Buffer Solutions[ J ]. Chem Commun, 2011, 47: 3 915 - 3 917.
[ 8 ] Lin X, Liu C, Jiang H. Highly Sensitive and Selective Fluorescent Sensor for Distinguishing Cadmium from Zinc Ions in Aqueous Media[ J ]. Org Lett, 2009, 11: 1 655 - 1 658.
[ 9 ] Yu X D, Xie D Y, Li Y J, et al. Photochromic Property of Naphtha-
limide Derivative: Selective and Visual F Recognition by NSS Isomers Both in Solution and in a Self-assembly Gel[ J ]. Sensor Actuat B-Chem, 2017, 251: 828 - 835.
[ 10 ] Lee S Y, Yuen K K Y, Jolliffe K A, et al. Fluorescent and Colori-
metric Chemosensors for Pyrophosphate[ J ]. Chem Soc Rev, 2015, 44: 1 749 - 1 762.
[ 11 ] Busschaert N, Caltagirone C, Rossom W V, et al. Applications of Supramolecular Anion Recognition [ J ]. Chem Rev, 2015, 115: 8 038 - 8 155.
[ 12 ] Baddi S, Madugula S S, Sarma D S, et al. Combined Experimental and Computational Study of the Gelation of Cyclohexane-Based Bis(acyl- semicarbazides) and the Multi-Stimuli-Responsive Properties of Their Gels[ J ]. Langmuir, 2016, 32: 889 - 899.
[ 13 ] Ghosh A, Das P, Kaushik R, et al. Anion Responsive and Morpho-
logy Tunable Tripodal Gelators[ J ]. RSC Adv, 2016( 6 ): 83 303 - 83 311.
[ 14 ] Kandanelli R, Sarkar A, Maitra U. Tb3+ Sensitization in a Deoxy-
cholate oOrganogel Matrix, and Selective Quenching of Lumines-
cence by an Aromatic Nitro Derivative[ J ]. Dalton Trans, 2013, 42: 15 381 - 15 386.
[ 15 ] Cao X H, Zhang T T, Gao A P, et al. Aliphatic Amine Responsive Organogel System Based on a Simple Naphthalimide Derivative[ J ]. Org Biomol Chem, 2014, 12: 6 399 - 6 405.
[ 16 ] Ghosh K, Panja A, Panja S. Cholesterol Appended Bis - 1, 2, 3-
triazoles as Simple Supramolecular Gelators for the Naked Eye Detection of Ag+, Cu2+ and Hg2+ Ions[ J ]. New J Chem, 2016, 40:
3 476 - 3 483.
[ 17 ] Liu Y C, Wang Y, Jin L Y, et al. MPTTF-containing Tripeptide - based Organogels: Receptor for 2, 4, 6-Trinitrophenol and Multiple Stimuli-responsive Properties[ J ]. Soft Matter, 2016, 12: 934 - 945.
[ 18 ] Pang X L, Yu X D, Lan H C, et al. Visual Recognition of Aliphatic and Aromatic Amines Using a Fluorescent Gel: Application of a Sonication - Triggered Organogel[ J ]. ACS Appl Mater Interfaces, 2015, 7: 13 569 - 13 577.
[ 19 ] Vallee B L, Falchuk K H. The biochemical basis of zinc physiology[ J ]. Physiol Rev, 1993, 73: 79 - 118.
[ 20 ] de Silva A P, N Gunaratne H Q, Gunnlaugsson T, et al. Signaling Recognition Events with Fluorescent Sensors and Switches[ J ]. Chem Rev, 1997, 97: 1 515 - 1 566.
[ 21 ] Grandjean P, Weihe P, White R F, et al. Cognitive Performance of Children Prenatally Exposed to “Safe” Levels of Methylmercury[ J ]. Environ Res, 1998, 77: 165 - 172.
[ 22 ] Zhang A, Zhang Y, Xu Z C, et al. Naphthalimide-based Fluores-
cent Gelator for Construction of Both Organogels and Stimul- responsive Metallogels[ J ]. RSC Adv, 2017, 7: 25 673 - 25 677. |