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Design of Functionalized Polysiloxane Adsorbents and Their Environmental Applications

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Sol-Gel Methods for Materials Processing

Abstract

Here we consider the routes of synthesis (which is performed by use of sol-gel method) of a new class of sorbents, namely: polysiloxane xerogels functionalized with nitrogen-, oxygen-, phosphorus- and sulfur chapter ligand groups. Applying a number of physical methods (SEM, TEM, AFM, IR and Raman spectroscopy, 1H, 13C, 29Si and 31P CP/MAS NMR, EPR spectroscopy, ERS, thermal analysis) we established the structure of both: the xerogels and their surface. An influence of some factors on the structural-adsorption characteristics of such xerogels and their sorption properties is analyzed.

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References

  1. V.A. Tertykh, L.A. Belyakova, Chemical Reactions Involving Silica Surface (Naukova Dumka, Kiev, 1991). (in Russian).

    Google Scholar 

  2. E.F. Vansant, P. van der Voort, K.C. Vrancken, Characterization and Chemical Modification of the Silica Surface (Elsevier, Amsterdam, 1995).

    Google Scholar 

  3. V.N. Zaitsev, Complexing Silicas: Synthesis, Structure of Bonded Layer and Surface Chemistry (Folio, Kharkiv, 1997). (in Russian).

    Google Scholar 

  4. Chemistry of Surface Grafted Compounds, edited by L.G. Lisichkin (Fizmatlit, Moscow, 2003). (in Russian).

    Google Scholar 

  5. Yu.L. Zub, R.V. Parish, Functionalized polysiloxane sorbent: preparation, structure, properties and use, Stud. Surf. Sci. Catal. 99, 285-299 (1996).

    Article  Google Scholar 

  6. Yu.L. Zub, A.A. Chuiko, Salient features of synthesis and structure of surface of func- tionalized polysiloxane serogels, in: Colloidal Silica: Fundamentals and Applications, edited by H.E. Bergna and W.O. Roberts (Taylor & Francis, Washington, DC, 2005), pp. 397-424.

    Google Scholar 

  7. Yu.L. Zub, A.A. Chuiko, Synthesis, Structure and Adsorption Properties of Functionalized Polysiloxane Materials, in: NATO ARWCombined and Hybrid Adsorbents”, edited by J.M. Loureiro and M.T. Kartel (Springer, Dordrecht, The Netherlands 2006), pp. 3-21.

    Google Scholar 

  8. Handbook of Sol-Gel Science and Technology: Processing, Characterization, and Applications, edited by S. Sakka (Kluwer, Dordrecht, The Netherlands, Vol. 1-3, 2005).

    Google Scholar 

  9. Functional Hybrid Materials, edited by P.Gomez-Romero and C.Sanchez (Wiley-VCH, Weinheim, 2004), pp. 1-417.

    Google Scholar 

  10. C.J. Brinker, G.W. Scherer, Sol-Gel Science: The Physics and Chemistry of Sol-Gel Process- ing (Academic, San Diego, CA, 1990).

    Google Scholar 

  11. J. Liu, X. Feng, G.E. Fryxell, L.-Q. Wang, A.Y. Kim, M. Gong, Hybrid mesoporous materials with functionalized monolayers, Adv. Mater. 10, 161-165 (1998).

    Article  Google Scholar 

  12. Yu.L. Zub, M. Ya. Gorochovatskaya, A.A. Chuiko, A.M. Nesterenko, Polysiloxane matrices with functional groups as a basis of new sorbents, Ext. Abstract Fourth International Confer- ence on Fundamentals of Adsorption (Kyoto, 1992), pp. 461-463.

    Google Scholar 

  13. Yu.L. Zub, A.A. Chuiko, N.V. Stolyarchuk, I.V. Mel’nyk, A. Dabrowski, New amine- containing adsorbents on the basis of bridged polysilsesquioxanes, Dopov. NAN Ukrainy 2, 117-122 (2005). (in Russian).

    Google Scholar 

  14. A. Dabrowski, M. Barczak, N.V. Stolyarchuk (Shvaykovska), I.V. Melnyk, Yu.L. Zub, Bridged polysilsesquioxane xerogels functionalizated by amine- and thiol-groups: synthesis, structure, adsorption properties, Adsorption 11, 501-517 (2005).

    Article  Google Scholar 

  15. N.V. Shvaikovska, I.V. Mel’nyk, G.R. Yurchenko, O.K. Matkovski, Yu.L. Zub, Synthesis and structure adsorption characteristics of bridged polysilsesquioxanes with aminopropyl groups, Chem. Phys. Technol. Surf. 10, 80-84 (2004). (in Russian).

    Google Scholar 

  16. Tailor-Made Silicon-Oxygen Compounds, edited by R. Corriu and P. Jutzi (Vieweg, Wiesbaden, 1996).

    Google Scholar 

  17. O.V. Stechenko, Yu.L. Zub, R.V. Parish, Polyaminosiloxane adsorbents: preparation and properties, Proceedings of 3rd International Symposium “Effects of Surf. Heterogeeneity in Adsorp. and Catal. on Solids” (Torun, Poland, 1998), pp. 231-232.

    Google Scholar 

  18. Yu.L. Zub, L.S. Drozd, A.A. Chuiko, Factors influencing the porous structure of poly- organosiloxanes, Abstract of IUPAC Symposium on the Characterization of Porous Solids (Marseille, France, 1993), 95 pp.

    Google Scholar 

  19. I.B. Slinyakova, T.I. Denisova, Organo-silicon Adsorbents: Production, Properties, and Appli- cation (Naukova Dumka, Kyiv, 1988). (in Russian).

    Google Scholar 

  20. L.P. Finn, I.B. Slinyakova, M.G. Voronkov, N.N. Vlasova, F.P. Kletsko, A.I. Kirillov, T.V. Shklyar, Structure and properties of polymercaptomethylsilsesquioxane xerogel, Dokl. AN SSSR 235(6), 1426-1429 (1977). (in Russian).

    Google Scholar 

  21. L.P. Finn, I.B. Slinyakova, M.G. Voronkov, N.N. Vlasova, F.P. Kletsko, Certificate of Authorship No. 2322972 (1976). (in Russian).

    Google Scholar 

  22. M.G. Voronkov, N.N. Vlasova, Yu.N. Pozhidaev, Organosilicon ion-exchange and complexing adsorbents, J. Appl. Chem. 69, 705-718 (1996). (in Russian).

    Google Scholar 

  23. M.G. Voronkov, N.N. Vlasova, Yu.N. Pozhidaev, Organosilicon ion-exchange and complexing adsorbents, Appl. Organometal. Chem. 14, 287-303 (2000).

    Article  Google Scholar 

  24. A.A. Chuiko, G.Ye. Pavlik, G.B. Budkevich, I.Ye. Neimark, A method of preparation of silica gels containing aminoalkyl groups, USSR Certificate of Authorship No. 182719 (1966). (in Russian).

    Google Scholar 

  25. I.S. Khatib, R.V. Parish, Insoluble ligands and their applications I. A comparison of silica- immobilized ligands and functionalized polysiloxane, J. Organomet. Chem. 369, 9-16 (1989).

    Article  Google Scholar 

  26. J.J. Yang, I.M. El-Nahhal, G.E. Maciel, Synthesis and solid-state NMR structural charac- terization of some functionalized polysiloxanes, J. Non-Crystal. Solids. 204, 105-117 (1996).

    Article  Google Scholar 

  27. O.V. Stechenko, Synthesis, structure and structural-adsorption characteristics of polyamino- siloxane adsorbents, Synopsis of Thesis for Ph.D. Degree (ISC of NAS of Ukraine, Kyiv, 2002). (in Ukrain).

    Google Scholar 

  28. O.V. Stechenko, G.R. Yurchenko, O.K. Matkovskii, Yu.L. Zub, Adsorption properties of some polyaminosiloxanes, Naukovyi Visnyk Uzhgor. Univer., Series ‘Khimiya’ 5, 107-112 (2000). (in Ukrain).

    Google Scholar 

  29. O.K. Matkovskii, G.R. Yurchenko, O.V. Stechenko, Yu.L. Zub, Influence of solvent nature on structure-adsorption characteristics of poly(3-aminopropyl)siloxane, Naukovi Zapysky Ternopil’s kogo Derzhav. Pedagog. Univer., Series ‘Khimiya’ 4, 40-45 (2000). (in Ukrain).

    Google Scholar 

  30. Yu.L. Zub, A.A. Chuiko, O.V. Stechenko, Synthesis, structure and structure-adsorption characteristics of some polyamonisiloxanes, Doklady NAN Ukrainy 4, 150-155 (2002). (in Russian).

    Google Scholar 

  31. J.J. Yang, I.M. El-Nahhal, I.-S. Chuang, G.E. Maciel, Synthesis and solid-state NMR struc- tural characterization pf polysiloxane-immobilized amine ligands and their metal complexes, J. Non-Crystal. Solids 209, 19-39 (1997).

    Article  Google Scholar 

  32. R.V. Parish, D. Habibi, V. Mohammadi, Insoluble ligands and their applications II. Polysiloxane- phosphine ligands, their complexes, and hydrogenation catalysts, J. Organomet. Chem. 369, 17-28 (1989).

    Article  Google Scholar 

  33. I.M. El-Nahhal, R.V. Parish, Insoluble ligands and their applications III. Polysiloxane diaminoethane derivatives, J. Organometal. Chem. 452, 19-22 (1993).

    Article  Google Scholar 

  34. C.R. Silva, C. Airoldi, Acid and base catalysts in the hybrid silica sol-gei process, J. Colloid Interf. Sci. 195, 381-387 (1997).

    Article  Google Scholar 

  35. F.A. Pavan, I.S. Lima, E.V. Benvenutti, Y. Gushikem, C. Airoldi, Hybrid aniline/silica xero-gel cation adsorption and thermodynamics of interaction, J. Colloid Interf. Sci. 275, 386-391 (2004).

    Article  Google Scholar 

  36. F.A. Pavan, W.F. de Mahalhaes, M.A. de Luca, C.C. Moro, T.M.H. Costa, E.V. Benvenutti, A characterization study of xerogel silicapropylaniline powders, J. Non-Crystal. Solids 311, 54-60 (2002).

    Article  Google Scholar 

  37. F.A. Pavan, L. Franken, C.A. Moreira, T.M.H. Costa, E.V. Benvenutti, Y. Gushikem, Synthesis of a thermal stable silica/p-anisidine sol-gel powdered material, J. Colloid Interf. Sci. 241, 413-416 (2001).

    Article  Google Scholar 

  38. D.R. Azolin, C.C. Moro, T.M.H. Costa, E.V. Benvenutti, Effects of organic content and H2O/TEOS molar ratio on the porosity and pore size distribution of hybrid naphthalene- aminepropylsilica xerogel, J. Non-Cryst. Solids 337, 201-206 (2004).

    Article  Google Scholar 

  39. C. Alie, F. Ferauche, R. Pirard, A.J. Lecloux, J.-P. Pirard, preparation of low-density xerogels by incorporation of additives during synthesis, Micropor. Mesopor. Mat. 70, 57-62 (2004).

    Article  Google Scholar 

  40. V. van Blaaderen, A. Vru, Synthesis and characterization of monodisperse colloidal organo- silica Shperes, J. Colloid Interf. Sci. 156, 1-18 (1993).

    Article  Google Scholar 

  41. E. Yacoub-George, E. Bratz, H. Tiltscher, Preparation of functionalized polyorganosiloxane spheres for the immobilization of catalytically active compounds, J. Non-Cryst. Solids 167, 9-15 (1994).

    Article  Google Scholar 

  42. L.T. Arenas, T.A.S. Aguire, A. Langaro, Y. Gushikem, E.V. Benvenutti, T.M.H. Costa, 3-n- propyl-1-azonia-4-azabicyclo[2.2.2]octanechloride/silica hybrid polymer. A morphologic study in relation to the organic content, Polymer 44, 5521-5525 (2003).

    Article  Google Scholar 

  43. G. Dubois, R.J.P. Corriu, C. Reye, S. Brandes, F. Denat, R. Guilard, First organic-inorganic hybrid materials with controlled porosity incorporating cyclam units, Chem. Commun. 2283- 2284 (1999).

    Google Scholar 

  44. I.V. Melnyk, Synthesis and investigation of polyorganosiloxanes with bi- and trifunctional surface layer, Synopsis of Thesis for Ph.D. Degree (ISC of NAS of Ukraine, Kyiv, 2002). (in Ukrain).

    Google Scholar 

  45. J.J. Yang, I.M. El-Nahhal, I.-S. Chuang, G.E. Maciel, Synthesis and solid-state NMR structural characterization of polysiloxane-immobilized phosphine, phosphine-amine and phosphine- thiol ligand systems, J. Non-Cryst. Solids 212, 281-291 (1997).

    Article  Google Scholar 

  46. Z. Lu, E. Lindner, H.A. Mayer, Applications of sol-gel-processed interphase catalysts, Chem. Rev. 102, 3543-3578 (2002).

    Article  Google Scholar 

  47. Yu.L. Zub, I.V. Melnyk, A.A. Chuiko, D. Cauzzi, G. Predieri, Design of functionalized polysiloxanes: synthesis and investigation of sulfur-containing xerogels with mono- and bifunctional surface layer, Chemistry, Physics and Technology of Surface 7, 35-45 (2002).

    Google Scholar 

  48. I.V. Melnyk, N.V. Stolyarchuk, Yu.L. Zub, A. Dabrowski, Polysiloxane xerogel containing arch-fixed urea groups, J. Appl. Chem. 79, 992-997 (2006). (in Russian).

    Google Scholar 

  49. J.-C. Broudic, O. Conocar, J.J.E. Moreau, D. Meyer, M.W.C. Man, New hybrid silica based materials for the solid-liquid extraction of actinides, J. Mater. Chem. 9, 2283-2285 (1999).

    Article  Google Scholar 

  50. N. Becker, K. Unger, Synthesis and properties of chemical modified dihydroxy-, hydroxyamino- and amino-functional silica packings in adsorption chromatography, Fresenius Z. Anal. Chem. 304, 374-381 (1980).

    Article  Google Scholar 

  51. I.M. El-Nahhal, J.J. Yang, I.-S. Chuang, G.E. Maciel, Synthesis and solid-state NMR struct+ural characterization of polysiloxane-immobilized thiol and thiol-amine ligands, J. Non-Cryst. Solids 208, 105-118 (1996).

    Article  Google Scholar 

  52. J.S. Lee, S. Gomes-Salazar, L.L. Tavlarides, Synthesis of thiol functionalized organo- ceramic adsorbent by sol-gel technology, React. Funct. Polym. 49, 159-172 (2001).

    Article  Google Scholar 

  53. G.E. Maciel, NMR characterization of functionalized polysiloxanes, in: Solid State NMR of Polymers, edited by I. Ando and T. Asakura (Elsevier, Amsterdam, 1998), pp. 923-984.

    Google Scholar 

  54. I.V. Melnyk (Seredyuk), Yu.L. Zub, A.A. Chuiko, Van Der P. Voort, Novel polyorgano- siloxane xerogels with a bifunctional {Si(CH2)3SH/{Si(CH2)3NH2 surface layer, Chemistry, Physics and Technology of Surface 8, 125-133 (2002).

    Google Scholar 

  55. H.I. Dobryanska, I.V. Melnyk, Yu.L. Zub, A.A. Chuiko, M. Barchak, A. Dabrowski, The influence of the Si(OC2H5)4/(CH3O)3Si(CH2)3SH ration on the structure-adsorption characteristics of xerogels formed and accessibility of functional groups in thier surface layers, J. Phys. Chem. 80, 939-944 (2006). (in Russian).

    Google Scholar 

  56. Yu.L. Zub, N.V. Stolyarchuk, I.V. Melnyk, A.A. Chuiko, A. Dabrowski, M. Barczak. New adsorbents based on bridged polysilsesquioxanes containing 3-mercaptopropyl functional groups, Mendeleev Commun. 15(4), 168-170 (2005).

    Article  Google Scholar 

  57. C. Airoldi, L.N.H. Arakaki, Immobilization of ethylenesulfide on silica surface through sol- gel process and some thermodynamic data of divalent cation interaction, Polyhedron 20, 929-936 (2001).

    Article  Google Scholar 

  58. H.-J. Im, C.E. Barnes, S. Dai, Z. Xue, Functionalized sol-gels for mercury(II) separation: a comparison of mesoporous materials prepared with and without surfactant templates, Micropor. Mesopor. Mat. 70, 57-62 (2004).

    Article  Google Scholar 

  59. N.V. Stolyarchuk, I.V. Melnyk, Yu.L. Zub, M. Barchak, A. Dabrovski, Colloid J. (2008) (in press). (in Russian).

    Google Scholar 

  60. L.P. Finn, I.B. Slinyakova, M.G. Voronkov, N.N. Vlasova, Study of structure and adsorption properties of sulfur-containing polyorganosiloxane xerogels, Adsorbtsiya i Adsorbenty 8, 98-102 (1980). (in Russian).

    Google Scholar 

  61. G.I. Dobryanskaya, Yu.L. Zub, M. Barczak, A. Dabrowski, Synthesis and structure- related adsorption characteristics of bifunctional polysiloxane xerogels with methyl and 3- mercaptopropyl groups, Colloid J. 68, 548-557 (2006). (in Russian).

    Article  Google Scholar 

  62. G.I. Dobryanskaya, I.V. Melnyk, Yu.L. Zub, A. Dabrowski, SPorous xerogels with bi- functional surface layer of ŁSi(CH2)3SH/ŁSi(CH2)2CH3 composition, J. Phys. Chem. 81, 410-417 (2007). (in Russian).

    Google Scholar 

  63. A.A. Chuiko, G.Ye. Pavlik, I.Ye. Neimark, Method of preparation of organosilica gel, USSR Certificate of Authorship No. 164680 (1964).

    Google Scholar 

  64. N.A. Prybora, L.S. Dzyubenko, Yu.L. Zub, M. Jaroniec, Synthes of the polysiloxane con- taining butyric acid residue on its surface layer, Khimichni Nauky. Collected Sci. Papers of Nat. Training M.P. Dragomanov’s Univ. 41-47 (1999). (in Ukrain).

    Google Scholar 

  65. N.A. Prybora, Yu.L. Zub, A.A. Chuiko, M. Jaroniec, Synthesis and properties of some polycarboxylsiloxane sorbents, Abstract of 2nd International Conference on Silica Science and Technology (Mulhouse, France, 2001), 171 pp.

    Google Scholar 

  66. P. Tien, L.-K. Chau, Novel sol-gel-derived material for separation and optical sensing of metal ions: propyl-ethylenediamine triacetate functionalized silica, Chem. Mater. 11, 2141-2147 (1999).

    Article  Google Scholar 

  67. G.H. Barnes Jr., M.P. David, Synthesis and hydrolityc stability of some organosilicon phophonate esters, J. Org. Chem. 25, 1191-1194 (1960).

    Article  Google Scholar 

  68. J.-P. Bezombes, C. Chuit, R.J.P. Corriu, C. Reye, Preparation and characterization of new organic-inorganic hybrid materials incorporating phosphorus centers, J. Mater. Chem. 8, 1749-1759 (1998).

    Article  Google Scholar 

  69. O.A. Dudarko, I.V. Mel’nyk, Yu.L. Zub, A.A. Chuiko, A. Dabrowski, Synthesis of poly- siloxane xerogels using teraethoxysilane/(diethylphosphoneethyl)triethoxysilane system, Colloid J. 67, 753-758 (2005). (in Russian).

    Article  Google Scholar 

  70. A. Aliev, D.L. Ou, B. Ormsby, A.C. Sullivan, Porous silica and polysilsesquioxane linked phosphonates and phosphonic acids, J. Mater. Chem. 10, 2758-2764 (2000).

    Article  Google Scholar 

  71. A. Dabrowski, M. Barczak, O.A. Dudarko, Yu.L. Zub, Preparation and characterization characterization of polysiloxane xerogels having covalently attached phosphonic groups, Polish J. Chem. 81, 475-483 (2007).

    Google Scholar 

  72. M. Jurado-Gonzalez, D.L. Ou, A.C. Sullivan, J.R.H. Wilson, Synthesis, characterization and catalytic activity of porous vanadyl phosphonate-modified silicas, J. Mater. Chem. 12, 3605-3609 (2002).

    Article  Google Scholar 

  73. O.A. Dudarko, Yu.L. Zub, A. Dabrowski, M. Barczak, Polysiloxane xerogels with a bi-func- tional surface layer containing O/N, O/S, S/N and S/S donor centres, J. Appl. Chem. (2007) (in press). (in Russian).

    Google Scholar 

  74. C. Liu, J.B. Lambert, L. Fu, Simple surfactant-free route to mesoporous organic-inorganic hybrid silicas containing covalently bound cyclodextrins, J. Org. Chem. 69, 2213-2216 (2004).

    Article  Google Scholar 

  75. O.V. Kuchma, Yu.L. Zub, S.V. Ryabov, L.V. Kobrina, Hybrid organic-inorganic materials on a base of Į- and β-cyclodextrins derivatives obtaining sol-gel method, Polym. J. 28, 147-154 (2006).

    Google Scholar 

  76. D. Lin-Vien, N.B. Colthup, W.G. Fateley, J.G. Grasselly, The Handbook of Infrared and Raman Characteristic Frequencies of Organic Molecules (Academic, San Diego, CA, 1991).

    Google Scholar 

  77. H. Okabayashi, K. Izawa, T. Yamamoto, H. Masuda, E. Nishio, C.J. O’Connor, Surface structure of silica gel reacted with 3-mercaptopropyltriethoxysilane and 3-aminopro- pyltriethoxysilane: formation of the S-S bridge structure and its characterization by raman scattering and diffuse reflectance fourier transform spectroscopic studies, Colloid Polym. Sci. 280, 135-145 (2002).

    Article  Google Scholar 

  78. L. Li, X. Liu, Y. Ge, L. Li, J. Klinowski, Interaction and pillaring of zirconium bis(monohydrogenphosphate) with NH2(CH2)3Si(OC2H5)3, J. Phys. Chem. 95, 5910-5914 (1991).

    Article  Google Scholar 

  79. Yu.L. Zub, I.V. Melnuk, N.V. Stolyarchuk et al., Synthesis of functionalized polysiloxane xerogels, structure of their surface layer and sorption properties, Chemistry, Physics and Technology of Surfaces 11-12, 165-203 (2006).

    Google Scholar 

  80. Yu.L. Zub, I.V. Seredyuk, A.A. Chuiko, M. Jaroniec, M.O. Jones, R.V. Parish, S. Mann, Polyfunctionalised surfactant-templated adsorbents with high specific surface areas, Mendeleev Commun. 11, 238-240 (2001).

    Article  Google Scholar 

  81. Yu.L. Zub, I.V. Melnyk, M.G. White, B. Alonso, Structure peculiarities of the surface layer of bifunctional polysiloxane xerogels containing 3-aminopropyl and 3-mercaptopropyl groups, Ads. Sci. Technol. (2008) (in press).

    Google Scholar 

  82. J.J. Yang, I.M. El-Nahhal, I.-S. Chuang, G.E. Maciel , Synthesis and solid-state NMR struc- tural characterization of polysiloxane-immobilized amine ligands and their metal complexes, J. Non-Cryst. Solids. 209, 19-39 (1997).

    Article  Google Scholar 

  83. O.A. Dudarko, I.V. Mel’nyk, Yu.L. Zub, A.A. Chuiko, A. Dabrowski, Template synthesis of mesoporous silicas containing phosphonic acid derivatives in their surface layer, Inorg. Mater. 42, 413-420 (2006). (in Russian).

    Article  Google Scholar 

  84. A. Cardenas, N. Hovnanian, M. Smaihi, Sol-Gel formation of heteropolysiloxanes from diethylphosphatoethyltriethoxysilane and tetraethoxysilane, J. Appl. Polym. Sci. 60, 2279-2288 (1996).

    Article  Google Scholar 

  85. G. Engelhardt, D. Michel, High-Resolution Solid-State NMR of Silicates and Zeolites (Wiley, Chichester, 1987).

    Google Scholar 

  86. O.V. Stechenko, T.N. Yakubovich, V.V. Teslenko, Yu.L. Zub, A.A. Chuiko, Study of copper(II) absorbtion by some polyaminosiloxanes from the acetonitrile solutions, Chemistry, Physics and Technology of Surface 2, 62-67 (1997). (in Ukrain).

    Google Scholar 

  87. Ye.V. Stechenko, T.N. Yakubovich, V.V. Teslenko, B.K. Veisov, Yu.L. Zub, A.A. Chuiko, Copper(II) adsorption from acetonitrile solutions by nitrogencontaining polysiloxanes, Chemistry, Physics and Technology of Surface 3, 46-50 (1999). (in Russian).

    Google Scholar 

  88. O.V. Stechenko, T.N. Yakubovich, V.V. Teslenko, Yu.L. Zub, A.A. Chuiko. Copper(II) ions adsorption from acetonitrile solutions by polyaminosiloxane xerogel with bifunctional surface layer, Ukr. Khim. Zh. 69, 19-24 (2003). (in Russian).

    Google Scholar 

  89. A.K. Trofimchuk, V.A. Kuzovenko, I.V. Melnyk, Yu.L. Zub, Comparation of complexing ability of bifunctional polisiloxane xerogels and chemical modified silica gels, J. Applied Chem. 79, 230-236 (2006). (in Russian).

    Google Scholar 

  90. B.J. Hathway, A.A.G. Tomlinson, Copper (II) ammonia complexes, Coord. Chem. Rev. 5, 1-43 (1970).

    Article  Google Scholar 

  91. N.V. Stolyarchuk, I.V. Melnyk, Yu.L. Zub, N.V. Kozak, Copper(II) adsorption from aceto- nitryl solutions by aminocontaining bridged polysilsesquioxane xerogels, Visnyk donest’kogo universytetu A, 283-288 (2006). (in Ukrain).

    Google Scholar 

  92. O.V. Kuchma, Yu.L. Zub, Experimental approach to the synthesis of hybrid adsorbents on the basis of polysiloxane xerogels functionalized with calix[4]arenes and their derivatives, in: ARW NATO “Combined and Hybrid Adsorbents: Fundamental and Applications”, edited by J.M. Loureiro and M.T. Kartel (Springer, Dordrecht, The Netherlands, 2006), pp. 49-54.

    Google Scholar 

  93. I. Ahmed, R.V. Parish, Insoluble ligands and their applications IV. Polysiloxane-bis(2- aminoethyl)amine ligands and some derivatives, J. Organomet. Chem. 452, 23-28 (1993).

    Article  Google Scholar 

  94. I.M. El Nahhal, M.M. Chehimi, C. Cordier, G. Dodin, XPS, NMR and FTIR structural characterization of polysiloxane-immobilized amine ligand system, J. Non-Cryst. Solids 275, 142-146 (2000).

    Article  Google Scholar 

  95. A.R. Cestari, E.F.S. Vieira, J. de A. Simoni, C. Airoldi, Thermochemical investigation on the adsorption of some divalent cations on modified silicas obtained from sol-gel process, Thermochim. Acta 348, 25-31 (2000).

    Article  Google Scholar 

  96. I.V. Melnyk, V.Ya. Demchenko, Yu.L. Zub, A.A. Chuiko, Sorption of aurum(III) using polysiloxane xerogels functionalized with thiourea groups, Chemistry, Physics, and Technology of Surface 9, 31-36 (2003). (in Ukrain.).

    Google Scholar 

  97. Yu.L. Zub, Surface chemistry of new hybrid organic-inorganic materials, Synopsis of Thesis for a Doctor’s Degree (ISC, NAS of Ukraine, Kyiv, 2002). (in Ukrain).

    Google Scholar 

  98. H.I. Dobryanska, V.P. Honcharyk, L.I. Kozhara, Yu.L. Zub, A. Dabrowski. Sorption of mercury(II) by polysiloxane xerogels functionalized with ŁSi(CH2)3SH groups, 4th International Conference on Sol-Gel Materials (Kliczkow Castle, Poland, 2006), 40 pp.

    Google Scholar 

  99. H.I. Dobryanska, V.P. Honcharyk, L.I. Kozhara, Yu.L. Zub, A. Dabrowski, Complexation with participation of Hg(II) on the surface polysiloxane xerogels functionalized by 3-mercapropropyl groups, Coord. Chem. 2008 (in press) (in Russian).

    Google Scholar 

  100. Yu.V. Kholin, Quantitative Physico-Chemical Analysis of Complexation in Solutions and on the Surface of Chemical Modified Silicas (Folio, Karkiv, 2000).

    Google Scholar 

  101. G. Zuo, M. Mohammed, Selective binding of mercury yo thiourea-based coordinating resins, React. Funct. Polym. 27, 187-198 (1995).

    Article  Google Scholar 

  102. N.V. Stolyarchuk, I.V. Melnyk, Yu.L. Zub, Ag(I) cations sorption by thiolcontaining bridged polysilsesquioxane xerogels, Proceedings of X International Conference on “Theoretical problems of surface chemistry, adorption and chromatography” (Klyaz’ma, Moscow, 2006), pp. 236-241.

    Google Scholar 

  103. K.H. Nam, S. Gomez-Salazar, L.L. Tavlarides, Mercury(II) adsorption from wastewaters using a thiol functional adsorbent, Ind. Eng. Chem. Res. 42, 1955-1964 (2003).

    Article  Google Scholar 

  104. F. Caprasse, D. Leroy, L. Martinot, J.P. Pirard, J. Guillaume, C. Jerome, R. Jerome, New silica based polymeric systems designed for the solid-liquid extraction of uranyl ions, J. Mater. Chem. 12, 137-142 (2002).

    Article  Google Scholar 

  105. S. Bourg, J.-C. Broudic, O. Conocar, J.J.E. Moreau, D. Meyer, M.W.C. Man, Tailoring of organically modified silicas for the solid-liquid extraction of actinides, Chem. Mater. 13, 491-499 (2001).

    Article  Google Scholar 

  106. S. Dai, Hierarchically imprinted sorbents, Chem. Eur. J. 7, 763-768 (2001).

    Article  Google Scholar 

  107. M.M. Collinson, Analytical applications of organically modified silicates, Mikrochim. Acta 129, 149-165 (1998).

    Google Scholar 

  108. D. Avnir, L.C. Klein, D. Levy, U. Schubert, A.B. Wojcik, in: The Chemistry of Organic Silicon Compounds, edited by Z. Rappoport and Y. Apeloig (Wiley, Chichester, Vol. 2, 1998), pp. 2317-2362.

    Chapter  Google Scholar 

  109. Yu.N. Pozhidaev, Carbofunctional polyalkylsilsesquioxanes with ion-exchange and com- plexing properties, Synopsis of Thesis for a Doctor’s Degree (IrIC, SB of RAN, Irkutsk, 2004). (in Russian).

    Google Scholar 

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Zub, Y.L. (2008). Design of Functionalized Polysiloxane Adsorbents and Their Environmental Applications. In: Innocenzi, P., Zub, Y.L., Kessler, V.G. (eds) Sol-Gel Methods for Materials Processing. NATO Science for Peace and Security Series C: Environmental Security. Springer, Dordrecht. https://doi.org/10.1007/978-1-4020-8514-7_1

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