214
Views
4
CrossRef citations to date
0
Altmetric
Articles

Fluorescent chemosensor for lethal cesium detection using thin film membrane

, , &
Pages 1687-1696 | Received 08 Jun 2018, Accepted 22 Jan 2019, Published online: 26 Feb 2019

References

  • Quang, D.T.; Kim, J.S. (2010) Fluoro- and chromogenic chemodosimeters for heavy metal ion detection in solution and biospecimens. Chemical Reviews, 110: 6280–6301. doi:10.1021/cr100154p
  • Silvia, J.; Williams, R. (1991) The Biological Chemistry of the Elements: The Inorganic Chemistry of Life, Claredon Press: Oxford. doi:10.1016/0307-4412(92)90039-O
  • Bertini, I.; Gray, H.B.; Stiefel, E.I.; Valentine, J.S. (2007) Biological Inorganic Chemistry, 1st ed., University Science Books, Sausalito, CA, 46: 8741–8742.
  • Greenwood, N.N.; Earnshaw, A. (1997). Chemistry of the Elements, 2nd ed.; Butterworth-Heinemann, UK.
  • McRae, R.; Bagchi, P.; Sumalekshmy, S.; Fahrni, C. (2009) In situ imaging of metals in cells and tissues. Journal of Chemical Reviews, 109: 4780–4827. doi:10.1021/cr900223a
  • Rahman, M.M.; Voigt, G. (2004) Radiocaesium soil-to-plant transfer in tropical environments. Journal of Environmental Radioactivity, 71: 127–138. doi:10.1016/S0265-931X(03)00163-2
  • Rowan, D.J.; Rasmussen, J.B. (1994) Bioaccumulation of radiocesium by fish: the influence of physicochemical factors and trophic structure. Canadian Journal of Fisheries and Aquatic Sciences, 51: 2388–2410. doi:10.1139/f94-240
  • Latifi, A.M.; Nabavi, S.M.; Mirzaei, M.; Tavalaei, M.; Ghafurian, H.; Hellio, C.; Nabavi, S.F. (2012) Bioremediation of toxic metals mercury and cesium using three types of biosorbent: bacterial exopolymer, gall nut, and oak fruit particles. Toxicological & Environmental Chemistry, 94: 1670–1677. doi:10.1080/02772248.2012.728603
  • Vanhoe, H.; Vandecasteele, C.; Versieck., J.; Dams., R. (1989) Determination of iron, cobalt, copper, zinc, rubidium, molybdenum, and cesium in human serum by inductively coupled plasma mass spectrometry. Analytical Chemistry, 61 (17): 1851–1857. doi:10.1021/ac00192a014
  • Theimer, K.H.; Krivan, V. (1990) Determination of uranium, thorium, and 18 other elements in high-purity molybdenum by radiochemical neutron activation analysis. Analytical Chemistry, 62 (24): 2722–2727. doi:10.1021/ac00223a014
  • Van-Renterghem, D.; Cornelis, R.; Vanholder, R. (1992) Radiochemical determination of twelve trace elements in human blood serum. Analytica Chimica Acta, 257 (1): 1–5. doi:10.1016/0003-2670(92)80142-T
  • Saleh, M.B.; Hassan, S.S.M.; Abdel Gaber, A.A.; Abdel Kream, N.A. (2003) PVC membrane cesium ion-selective sensor based on cephalexin antibiotic. Analytical Letters, 36 (11): 2367–2377. doi:10.1081/AL-120024328
  • Arida, H.A.M.; Aglan, R.F.; El-Reefy, S.A. (2004) A new cesium ion selective graphite rod electrode based on Cs-molybdophosphate. Analytical Letters, 37 (1): 21–33. doi:10.1081/AL-120027771
  • Radu, A.; Peper, S.; Gonczy, C.; Runde, W.; Diamond, D. (2006) Trace level determination of Cs+ using membrane-based ion-selective electrodes. Electroanalysis, 18 (13–14): 1379–1388. doi:10.1002/(ISSN)1521-4109
  • Wang, X.D.; Wolfbeis, O.S. (2014) Optical methods for sensing and imaging oxygen: materials, spectroscopies and applications. Chemical Society Reviews, 43: 3666–3761. doi:10.1039/c4cs00039k
  • Zhu, S.; Ma, L.; Wang, S.; Chen, C.; Zhang, W.; Yang, L.; Hang, W.; Nolan, J.P.; Wu, L.; Yan, X. (2014) Light-scattering detection below the level of single fluorescent molecules for high-resolution characterization of functional nanoparticles. ACS Nano, 8: 10998–11006. doi:10.1021/nn505162u
  • Yang, Z.; Cao, J.; He, Y.; Yang, J.H.; Kim, T.; Peng, X.; Kim, J.S. (2014) Macro-/micro-environment-sensitive chemosensing and biological imaging. Chemical Society Reviews, 43: 4563–4601. doi:10.1039/c4cs00051j
  • de Silva, A.P.; Gunaratne, H.Q.N.; Gunnlaugsson, T.; Huxley, A.J.M.; McCoy, C.P.; Rademacher, J.T. (1997) Signaling recognition events with fluorescent sensors and switches. Chemical Reviews, 97: 1515–1566.
  • Santos-Figueroa, L.E.; Moragues, M.E.; Climent, E.; Agostini, A.; Martínez-Máñez, R.; Sancenón, F. (2013) Chromogenic and fluorogenicchemosensors and reagents for anions. A comprehensive review of the years 2010–2011. Chemical Society Reviews, 42: 3489–3613. doi:10.1039/c3cs35429f
  • Kumar, N.; Leray, I.; Depauw, A. (2016) Chemically derived optical sensors for the detection of cesium ions. Coordination Chemistry Reviews, 310: 1–15. doi:10.1016/j.ccr.2015.11.008
  • Kim, J.S.; Shon, O.J.; Rim, J.A.; Kim, S.K.; Yoon, J. (2002) Extended Calix[4]arene-based receptors for molecular recognition and sensing. The Journal of Organic Chemistry, 67: 2348–2351. doi:10.1021/jo010877w
  • Kim, J.S.; Noh, K.H.; Lee, S.H.; Kim, S.K.; Kim, S.K.; Yoon, J. (2003) Molecular taekwondo. 2. A new calix[4]azacrown bearing two different binding sites as a new fluorescent ionophore. The Journal of Organic Chemistry, 68: 597–600. doi:10.1021/jo020538i
  • Lee, M.H.; Quang, D.T.; Jung, H.S.; Yoon, J.; Lee, C.-H.; Kim, J.S. (2007) Ion-induced FRET On−Off in fluorescent calix[4]arene. The Journal of Organic Chemistry, 72: 4242–4245. doi:10.1021/jo070361y
  • Mori, T.; Akamatsu, M.; Okamoto, K.; Sumita, M.; Tateyama, Y.; Sakai, H.; Hill, J.P.; Abe, M.; Ariga, K. (2013) Micrometer-level naked-eye detection of caesium particulates in the solid state. Science and Technology of Advanced Materials, 14: 015002. doi:10.1088/1468-6996/14/1/015002
  • Mahapatra, A.K.; Manna, S.K.; Mandal, D.; Das, M.C. (2013) Highly sensitive and selective rhodamine-based “Off−On” reversible chemosensor for tin (Sn4+) and imaging in living cell. Inorganic Chemistry, 52: 10825−10834. doi:10.1021/ic4007026
  • Mahapatra, A.K.; Maiti, K.; Manna, S.K.; Maji, R.; Mondal, S.; Das, M.C.; Sahoo, P.; Mandald, D. (2015) cyclization-induced emission enhancement (CIEE)-based ratiometric fluorogenic and chromogenic probe for the facile detection of a nerve agent simulant DCP. Chemical Communications, 51: 9729–9732. doi:10.1039/C5CC02991K
  • Ali, S.S.; Gangopadhyay, A.; Maiti, K.; Mondal, S.; Pramanik, A.K.; Guria, U.N.; Uddin, R.; Mandal, S.; Mandal, D.; Mahapatra, A.K. (2017) chromogenic and ratiometric fluorogenic probe for rapid detection of a nerve agent simulant DCP based on a hybrid hydroxynaphthalene–hemicyanine dye. Organic & Biomolecular Chemistry, 15: 5959–5967. doi:10.1039/C7OB01252G
  • Maiti, K.; Mahapatra, A.K.; Gangopadhyay, A.; Maji, R.; Mondal, S.; Ali, S.S.; Das, S.; Sarkar, R.; Datta, P.; Mandal, D. (2017) Simple bisthiocarbonohydrazone as a sensitive, selective, colorimetric, and ratiometric fluorescent chemosensor for picric acids. ACS Omega, 2: 1583−1593. doi:10.1021/acsomega.6b00288
  • Chopra, S.; Singh, N.; Thangarasu, P.; Bhardwaj, V.K.; Kaur, N. (2014) Fluorescent organic nanoparticles as chemosensor for nanomolar detection of Csþ in aqueous medium. Dyes and Pigments, 106: 45–50. doi:10.1016/j.dyepig.2014.02.024
  • Jung, S.H.; Hyun, T.K.; Kim, J.-Y.; Jung, J.H. (2015) High selective fluorescence imaging of cesium distribution in Arabidopsis using bis(trihydroxyphenyl)-appended fluorescent probe with turn-on system. RSC Advances, 5: 26662–26665. doi:10.1039/C5RA03371C
  • Azadbakht, R.; Khanabadi, J. (2015) A novel fluorescent nano-chemosensor for cesium ions based on naphthalene macrocyclic derivative. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 139: 279–285. doi:10.1016/j.saa.2014.12.085
  • Sadeghi, S.; Fathi, F. (2010) Polymeric membrane coated graphite cesium selective electrode based on 4′, 4″ (5′) di–tert-butyl di-benzo-18-crown-6. Journal of Inclusion Phenomena and Macrocyclic Chemistry, 67: 91–98. doi:10.1007/s10847-009-9679-6
  • Vosburgh, W.C.; Cooper, G.R. (1941) Complex ions. I. The identification of complex ions in solution by spectrophotometric measurements. Journal of the American Chemical Society, 63: 437–442. doi:10.1021/ja01847a025
  • Avirah, R.R.; Jyothish, K.; Ramaiah, D. (2007) Dual-mode semisquaraine-based sensor for selective detection of Hg2+in a micellar medium. Organic Letters, 9: 121–124. doi:10.1021/ol062691v
  • Pathak, R.K.; Hinge, V.K.; Rai, A.; Panda, D.; Rao, C.P. (2012) Imino-phenolic- pyridyl conjugates of calix[4]arene (L1 and L2) as primary fluorescence switch on sensors for Zn 2+ in solution and in HeLa cells, and the recognition of pyrophosphate and ATP by [ZnL 2]. Inorganic Chemistry, 51: 4994−5005.
  • Thomas, S.W.; Joly, G.D.; Swager, T.M. (2007) Chemical sensors based on amplifying fluorescent conjugated polymers. Chemical Reviews, 107: 1339. doi:10.1021/cr0501339
  • Ding, L.; Fang, Y. (2010) Chemically assembled monolayers of fluorophores as chemical sensing materials. Chemical Society Reviews, 39: 4258–4273. doi:10.1039/c003028g
  • Sun, Z.; Lv, F.; Cao, L.; Liu, L.; Zhang, Y.; Lu, Z. (2015) Multistimuli-responsive, moldable supramolecular hydrogels cross-linked by ultrafast complexation of metal ions and biopolymers. Angewandte Chemie, 54: 7944–7948. doi:10.1002/anie.201502228
  • Sanchez, J.C.; Trogler, W.C. (2008) Efficient blue-emitting silafluorene–fluorene-conjugated copolymers: selective turn-off/turn-on detection of explosives. Journal of Materials Chemistry, 18: 3143–3156. doi:10.1039/b802623h

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.