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JOURNALS // Mendeleev Communications

Mendeleev Commun., 2011, Volume 21, Issue 1, Pages 12–14 (Mi mendc2848)

Hybrid sensor materials based on tin(IV) oxide and crown-containing 4-amino-1,8-naphthalimides
P. A. Panchenko, Yu. V. Fedorov, O. A. Fedorova, B. A. Izmailov, V. A. Vasnev, V. V. Istratov, E. A. Makeeva, M. N. Rumyantseva, A. M. Gaskov

This publication is cited in the following articles:
  1. P. Aiswarya, T. Jayavarthanan, S. Periandy, T. Sivaranjani, “Comprehensive insights into 4-amino-2-methoxybenzoic acid: Spectral analysis, solvent impact, pharmacokinetic characteristics, and docking affinity investigation against Chagas disease”, Journal of Molecular Structure, 1329 (2025), 141434  crossref
  2. P. A. Panchenko, M. A. Ustimova, S. P. Kumanev, O. A. Fedorova, Mendeleev Commun., 35:5 (2025), 550–552  mathnet  crossref
  3. P. A. Panchenko, A. S. Polyakova, V. A. Perevozchikov, O. A. Fedorova, “Fluorescent PET chemosensor for copper(ii) cations based on a 4-methoxy-1,8-naphthalimide derivative containing an iminodiacetate receptor fragment”, Russ Chem Bull, 74:6 (2024), 1753  crossref
  4. Pavel Panchenko, Anastasija Efremenko, Anna Polyakova, Alexey Feofanov, Maria Ustimova, Yuri Fedorov, Olga Fedorova, “Fluorescent RET-Based Chemosensor Bearing 1,8-Naphthalimide and Styrylpyridine Chromophores for Ratiometric Detection of Hg2+ and Its Bio-Application”, Biosensors, 12:9 (2022), 770  crossref
  5. D. S. Kutsybala, A. V. Shokurov, S. L. Selektor, “Molecular Machines in 3D and 2D Systems: Movement, Mechanical Work, and Switching. A Review”, Prot Met Phys Chem Surf, 57:5 (2021), 917  crossref
  6. P. A. Panchenko, A. S. Polyakova, Yu. V. Fedorov, O. A. Fedorova, “Fluorescent chemosensor for mercury(II) cations in an aqueous solution based on 4-acetylamino-1, 8-naphthalimide derivative containing the N-phenylazadithia-15-crown-5-ether receptor”, Russ Chem Bull, 70:10 (2021), 1939  crossref
  7. P. A. Panchenko, Yu. V. Fedorov, A. S. Polyakova, O. A. Fedorova, “Fluorimetric detection of Ag+ cations in aqueous solutions using a polyvinyl chloride sensor film doped with crown-containing 1,8-naphthalimide”, Mendeleev Commun., 31:4 (2021), 517–519  mathnet  crossref
  8. P. A. Panchenko, P. A. Ignatov, M. A. Zakharko, Yu. V. Fedorov, O. A. Fedorova, “A fluorescent PET chemosensor for Zn2+ cations based on 4-methoxy-1,8-naphthalimide derivative containing salicylideneamino receptor group”, Mendeleev Commun., 30:1 (2020), 55–58  mathnet  crossref
  9. P. A. Panchenko, A. S. Polyakova, Yu. V. Fedorov, O. A. Fedorova, “Chemoselective detection of Ag+ in purely aqueous solution using fluorescence 'turn-on' probe based on crown-containing 4-methoxy-1,8-naphthalimide”, Mendeleev Commun., 29:2 (2019), 155–157  mathnet  crossref
  10. A. V. Shokurov, A. V. Alexandrova, I. I. Shepeleva, D. S. Kudinova, P. A. Panchenko, V. V. Arslanov, S. L. Selektor, “Ultrathin film sensory system based on resonance energy transfer between the monolayers consisting of non-covalently linked fluorophores”, Mendeleev Commun., 29:1 (2019), 74–76  mathnet  crossref
  11. Pavel A. Panchenko, Yuri V. Fedorov, Olga A. Fedorova, “Selective fluorometric sensing of Hg2+ in aqueous solution by the inhibition of PET from dithia-15-crown-5 ether receptor conjugated to 4-amino-1,8-naphthalimide fluorophore”, Journal of Photochemistry and Photobiology A: Chemistry, 364 (2018), 124  crossref
  12. Pavel A. Panchenko, Yuri V. Fedorov, Olga A. Fedorova, Gediminas Jonusauskas, “FRET versus PET: ratiometric chemosensors assembled from naphthalimide dyes and crown ethers”, Phys. Chem. Chem. Phys., 17:35 (2015), 22749  crossref
  13. P. A. Panchenko, V. V. Park, O. A. Fedorova, Yu. V. Fedorov, E. A. Kataev, “Cation-dependent spectral properties of fluorescent complexon based on 1,8-naphthalimide with PET mechanism of optical response”, Russ Chem Bull, 64:8 (2015), 1871  crossref
  14. P. A. Panchenko, O. A. Fedorova, Yu. V. Fedorov, “Fluorescent and colorimetric chemosensors for cations based on 1,8-naphthalimide derivatives: design principles and optical signalling mechanisms”, Russian Chem. Reviews, 83:2 (2014), 155–182  mathnet  mathnet  crossref  isi  scopus


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