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dc.contributor.authorKowalski, Konrad
dc.contributor.authorKarpowicz, Rafał
dc.contributor.authorMloston, Grzegorz
dc.contributor.authorMiesel, Dominique
dc.contributor.authorHildebrandt, Alexander
dc.contributor.authorLang, Heinrich
dc.contributor.authorCzerwieniec, Rafał
dc.contributor.authorTherrien, Bruno
dc.date.accessioned2015-08-28T12:31:45Z
dc.date.available2015-08-28T12:31:45Z
dc.date.issued2015-02-20
dc.identifier.issn1477-9226
dc.identifier.urihttp://hdl.handle.net/11089/11589
dc.description.abstractThree novel diferrocenyl complexes were prepared and characterised. 2,2-Diferrocenyl-4,5-dimethyl- 3,6-dihydro-2H-thiopyran (1, sulphide) was accessible by the hetero-Diels–Alder reaction of diferrocenyl thioketone with 2,3-dimethyl-1,3-butadiene. Stepwise oxidation of 1 gave the respective oxides 2,2- diferrocenyl-4,5-dimethyl-3,6-dihydro-2H-thiopyran-1-oxide (2, sulfoxide) and 2,2-diferrocenyl-4,5- dimethyl-3,6-dihydro-2H-thiopyran-1,1-dioxide (3, sulfone), respectively. The molecular structures of 1 and 3 in the solid state were determined by single crystal X-ray crystallography. The oxidation of sulphide 1 to sulfone 3, plays only a minor role on the overall structure of the two compounds. Electrochemical (cyclic voltammetry (= CV), square wave voltammetry (= SWV)) and spectroelectrochemical (in situ UV-Vis/NIR spectroscopy) studies were carried out. The CV and SWV measurements showed that an increase of the sulphur atom oxidation from −2 in 1 to +2 in 3 causes an anodic shift of the ferrocenylbased oxidation potentials of about 100 mV. The electrochemical oxidation of 1–3 generates mixedvalent cations 1+–3+. These monooxidised species display low-energy electronic absorption bands between 1000 and 3000 nm assigned to IVCT (= Inter-Valence Charge Transfer) electronic transitions. Accordingly, the mixed-valent cations 1+–3+ are classified as weakly coupled class II systems according to Robin and Day.pl_PL
dc.description.sponsorshipAuthors (K. K. and G. M.) thank the National Science Centre (Poland) for financial support (Project Maestro-3; Dec-2012/06/ A/ST5/00219) and R. C. thanks the German Federal Ministry of Education and Research (BMBF) for support. The support from the German Academic Exchange Service (DAAD) in the framework of the exchange program “Ostpartnerschaften” is highly appreciated.pl_PL
dc.language.isoenpl_PL
dc.publisherRoyal Society of Chemistrypl_PL
dc.relation.ispartofseriesDalton Transactions;2015
dc.rightsUznanie autorstwa 3.0 Polska*
dc.rights.urihttp://creativecommons.org/licenses/by/3.0/pl/*
dc.titleSynthesis and (spectro)electrochemistry of mixedvalent diferrocenyl–dihydrothiopyran derivativespl_PL
dc.typeArticlepl_PL
dc.page.number6268-6276pl_PL
dc.contributor.authorAffiliationKowalski Konrad, Faculty of Chemistry, Department of Organic Chemistry, University of Łódźpl_PL
dc.contributor.authorAffiliationKarpowicz Rafał, Faculty of Chemistry, Department of Organic Chemistry, University of Łódźpl_PL
dc.contributor.authorAffiliationMlostoń Grzegorz, Faculty of Chemistry, Department of Organic and Applied Chemistry, University of Łódźpl_PL
dc.contributor.authorAffiliationMiesel Dominique, Technische Universität Chemnitz, Faculty of Natural Sciences, Institute of Chemistry, Department of Inorganic Chemistrpl_PL
dc.contributor.authorAffiliationHildebrandt Alexander, Technische Universität Chemnitz, Faculty of Natural Sciences, Institute of Chemistry, Department of Inorganic Chemistrpl_PL
dc.contributor.authorAffiliationLang Heinrich, Technische Universität Chemnitz, Faculty of Natural Sciences, Institute of Chemistry, Department of Inorganic Chemistrpl_PL
dc.contributor.authorAffiliationCzerwieniec Rafał, Universität Regensburg, Institut für Physikalische und Theoretische Chemie,pl_PL
dc.contributor.authorAffiliationTherrien Bruno, Institute of Chemistry, University of Neuchatelpl_PL
dc.referencesS. D. Glover, J. C. Goeltz, B. J. Lear and C. P. Kubiak, Eur. J. Inorg. Chem., 2009, 5, 585–594pl_PL
dc.referencesD. M. D’Alessandro and F. R. Keene, Chem. Rev., 2006, 106, 2270–2298.pl_PL
dc.referencesC. Lapinte, J. Organomet. Chem., 2008, 693, 793–801pl_PL
dc.referencesA. K. Diallo, C. Absalon, J. Ruiz and D. Astruc, J. Am. Chem. Soc., 2011, 133, 629–641.pl_PL
dc.referencesA. Ceccon, S. Santi, L. Orian and A. Bisello, Coord. Chem. Rev., 2004, 248, 683–724.pl_PL
dc.referencesP. Aguirre-Etcheverry and D. O’Hare, Chem. Rev., 2010, 110, 4839–4864pl_PL
dc.referencesR. F. Winter, Organometallics, 2014, 33, 4517–4536pl_PL
dc.referencesA. Hildebrandt and H. Lang, Organometallics, 2013, 32, 5640–5653.pl_PL
dc.referencesK. Costuas and S. Rigaut, Dalton Trans., 2011, 40, 5643– 5658.pl_PL
dc.referencesT. Kienz, C. Förster and K. Heinze, Organometallics, 2014, 33, 4803–4812.pl_PL
dc.referencesK. Kowalski, M. Linseis, R. F. Winter, M. Zabel, S. Záliš, H. Kelm, H.-J. Krüger, B. Sarkar and W. Kaim, Organometallics, 2009, 28, 4196–4209.pl_PL
dc.referencesM. Linseis, S. Záliš, M. Zabel and R. F. Winter, J. Am. Chem. Soc., 2012, 134, 16671–16692.pl_PL
dc.referencesF. Paul and C. Lapinte, Coord. Chem. Rev., 1998, 178–180, 431–509.pl_PL
dc.referencesM. D. Ward, Chem. Soc. Rev., 1995, 121–134.pl_PL
dc.referencesM. Ratner and J. Jortner, Molecular Electronics, Malden, MA, 1997.pl_PL
dc.referencesElectron Transfer in Chemistry and Biology, ed. V. Balzani, Wiley-VCH, Weinheim, 2001.pl_PL
dc.referencesElectron and Proton Transfer in Chemistry and Biology, ed. A. Müller, H. Ratajczak, W. Junge and E. Dieman, Elsevier, New York, 1992.pl_PL
dc.referencesH. B. Gray and J. R. Winkler, Annu. Rev. Biochem., 1996, 65, 537–561.pl_PL
dc.referencesA. K. Diallo, C. Absalon, J. Ruiz and D. Astruc, J. Am. Chem. Soc., 2011, 133, 629–641.pl_PL
dc.referencesM. Pichlmaier, R. F. Winter, M. Zabel and S. Záliš, J. Am. Chem. Soc., 2009, 131, 4892–4903.pl_PL
dc.referencesW. E. Geiger, Organometallics, 2007, 26, 5738–5765.pl_PL
dc.referencesA. Hildebrandt, D. Schaarschmidt, R. Claus and H. Lang, Inorg. Chem., 2011, 50, 10623–10632.pl_PL
dc.referencesJ. M. Speck, M. Korb, T. Rüffer, A. Hildebrandt and H. Lang, Organometallics, 2014, 33, 4813–4823.pl_PL
dc.referencesS. W. Lehrich, A. Hildebrandt, T. Rüffer, M. Korb, P. J. Low and H. Lang, Organometallics, 2014, 33, 4836–4845.pl_PL
dc.referencesD. Miesel, A. Hildebrandt, M. Korb, P. J. Low and H. Lang, Organometallics, 2013, 32, 2993–3002.pl_PL
dc.referencesU. Pfaff, A. Hildebrandt, M. Korb and H. Lang, Polyhedron, 2015, 86, 2–9.pl_PL
dc.referencesJ. M. Speck, R. Claus, A. Hildebrandt, T. Rüffer, E. Erasmus, L. van As, J. C. Swarts and H. Lang, Organometallics, 2012, 31, 6373–6380.pl_PL
dc.referencesK. Kaleta, F. Strehler, A. Hildebrandt, T. Beweries, P. Arndt, T. Rüffer, A. Spannenberg, H. Lang and U. Rosenthal, Chem. – Eur. J., 2012, 18, 12672–12680.pl_PL
dc.referencesA. Hildebrandt, U. Pfaff and H. Lang, Rev. Inorg. Chem., 2011, 31, 111–141.pl_PL
dc.referencesA. Hildebrandt and H. Lang, Dalton Trans., 2011, 40, 11831–11837.pl_PL
dc.referencesK. Kaleta, A. Hildebrandt, F. Strehler, P. Arndt, H. Jiao, A. Spannenberg, H. Lang and U. Rosenthal, Angew. Chem., Int. Ed., 2011, 50, 11248–11252.pl_PL
dc.referencesA. Hildebrandt, D. Schaarschmidt and H. Lang, Organometallics, 2011, 30, 556–563.pl_PL
dc.referencesC. G. Allen and S. N. Hush, Prog. Inorg. Chem., 1967, 8, 357–339pl_PL
dc.referencesP. Mücke, M. Zabel, R. Edge, D. Collison, S. Clément, S. Záliš and R. F. Winter, J. Organomet. Chem., 2011, 696, 3186–3197pl_PL
dc.referencesM. B. Robin and P. Day, Adv. Inorg. Chem. Radiochem., 1967, 10, 247–422.pl_PL
dc.referencesT.-Y. Dong, C.-H. Huang, C.-K. Chang, H.-C. Hsieh, S.-M. Peng and G.-H. Lee, Organometallics, 1995, 14, 1776– 1785.pl_PL
dc.referencesS. C. Jones, S. Barlow and D. O’Hare, Chem. – Eur. J., 2005, 11, 4473–4481.pl_PL
dc.referencesJ. C. Kotz, C. L. Nivert, J. M. Lieber and R. C. Reed, J. Organomet. Chem., 1975, 91, 87–95.pl_PL
dc.referencesD. C. O’Connor Salazar and D. O. Cowan, J. Organomet. Chem., 1991, 408, 227–231.pl_PL
dc.referencesA.-C. Ribou, J.-P. Launay, M. L. Sachtleben, H. Li and C. W. Spangler, Inorg. Chem., 1996, 35, 3735–3740pl_PL
dc.referencesT.-Y. Dong, T.-Y. Lee, S.-H. Lee, G.-H. Lee and S.-M. Peng, Organometallics, 1994, 13, 2337–2348.pl_PL
dc.referencesR. J. Weeb, S. J. Geib, D. L. Staley, A. L. Rheingold and D. N. Hendrickson, J. Am. Chem. Soc., 1990, 112, 5031.pl_PL
dc.referencesR. Rulkens, A. J. Lough, I. Manners, S. R. Lovelace, C. Grant and W. Geiger, J. Am. Chem. Soc., 1996, 118, 12683–12695.pl_PL
dc.referencesF. Delgado-Pena, D. R. Talham and D. O. Cowan, J. Organomet. Chem., 1983, 253, C43–C46.pl_PL
dc.referencesU. Pfaff, G. Filipczyk, A. Hildebrandt, M. Korb and H. Lang, Dalton Trans., 2014, 43, 16310–16321.pl_PL
dc.referencesG. Filipczyk, A. Hildebrandt, U. Pfaff, M. Korb, T. Rüffer and H. Lang, Eur. J. Inorg. Chem., 2014, 4258–4262.pl_PL
dc.referencesU. Pfaff, A. Hildebrandt, D. Schaarschmidt, T. Hahn, S. Liebing, J. Kortus and H. Lang, Organometallics, 2012, 31, 6761–6771pl_PL
dc.referencesM. Lohan, F. Justaud, H. Lang and C. Lapinte, Organometallics, 2012, 31, 3565–3574pl_PL
dc.referencesM. Lohan, F. Justaud, T. Roisnel, P. Ecorchard, H. Lang and C. Lapinte, Organometallics, 2010, 29, 4804–4817pl_PL
dc.referencesP. Denifl and B. Bildstein, J. Organomet. Chem., 1993, 453, 53–59.pl_PL
dc.referencesD. Enders, E. A. Jonas and T. Klumpen, Eur. J. Org. Chem., 2009, 2149–2162.pl_PL
dc.referencesS. D. Larsen, P. V. Fisher, B. E. Libby, R. M. Jensen, S. A. Mizsak and W. Watt, J. Org. Chem., 1996, 61, 4725– 4738.pl_PL
dc.referencesJ. Drabowicz and M. Mikołajczyk, Synthesis, 1978, 758–759pl_PL
dc.referencesV. A. Petrov, S. Lustig and W. Marshall, J. Fluorine Chem., 2007, 128, 1227–1234.pl_PL
dc.referencesV. A. Petrov and W. Marshall, J. Fluorine Chem., 2007, 128, 729–735pl_PL
dc.referencesR.-J. Xie, L.-M. Han, Q.-L. Suo, H.-L. Hong and M.-H. Luo, J. Coord. Chem., 2010, 63, 1700–1710.pl_PL
dc.referencesY. Yamaguchi, W. Ding, C. T. Sanderson, M. L. Borden, M. J. Morgan and C. Kutal, Coord. Chem. Rev., 2007, 251, 515–524.pl_PL
dc.referencesS. Barlow and D. O’Hare, Chem. Rev., 1997, 97, 637–670.pl_PL
dc.referencesD. M. Duggan and D. N. Hendrickson, Inorg. Chem., 1975, 14, 955–970.pl_PL
dc.referencesK. Kowalski, Ł. Szczupak, J. Skiba, O. S. Abdel-Rahman, R. F. Winter, R. Czerwieniec and B. Therrien, Organometallics, 2014, 33, 4697–4705.pl_PL
dc.referencesG. Gritzner and J. Kuta, Pure Appl. Chem., 1984, 56, 461– 466.pl_PL
dc.referencesN. Inamoto and S. Masuda, Chem. Lett., 1982, 11, 1003– 1006.pl_PL
dc.referencesH. J. Gericke, N. I. Barnard, E. Erasmus, J. C. Swarts, M. J. Cook and M. A. S. Aquino, Inorg. Chim. Acta, 2010, 363, 2222–2232.pl_PL
dc.referencesE. Fourie, J. C. Swarts, D. Lorcy and N. Bellec, Inorg. Chem., 2010, 49, 952–959.pl_PL
dc.referencesJ. C. Swarts, A. Nafady, J. H. Roudebush, S. Trupia and W. E. Geiger, Inorg. Chem., 2009, 48, 2156–2165.pl_PL
dc.referencesV. N. Nemykin, G. T. Rohde, C. D. Barrett, R. G. Hadt, J. R. Sabin, G. Reina, P. Galloni and B. Floris, Inorg. Chem., 2010, 49, 7497–7509.pl_PL
dc.referencesV. N. Nemykin, G. T. Rohde, C. D. Barrett, R. G. Hadt, C. Bizzarri, P. Galloni, B. Floris, I. Nowik, R. H. Herber, A. G. Marrani, R. Zanoni and N. M. Loim, J. Am. Chem. Soc., 2009, 131, 14969–14978.pl_PL
dc.referencesE. A. Poppitz, A. Hildebrandt, M. Korb and H. Lang, J. Organomet. Chem., 2014, 752, 133–140.pl_PL
dc.referencesU. Pfaff, A. Hildebrandt, D. Schaarschmidt, T. Rüffer, P. J. Low and H. Lang, Organometallics, 2013, 32, 6106– 6117.pl_PL
dc.referencesW. E. Geiger and F. Barrière, Acc. Chem. Res., 2010, 43, 1030–1039.pl_PL
dc.referencesF. Barrière and W. E. Geiger, J. Am. Chem. Soc., 2006, 128, 3980–3989.pl_PL
dc.referencesF. Barrière, N. Camire, W. E. Geiger, U. T. MuellerWesterhoff and R. Sanders, J. Am. Chem. Soc., 2002, 124, 7262–7263.pl_PL
dc.referencesG. Ferguson, C. Glidewell, G. Opromolla, C. M. Zakaria and P. Zanello, J. Organomet. Chem., 1996, 517, 183–190.pl_PL
dc.referencesM. Krejcik, M. Danek and F. Hartl, J. Electroanal. Chem., 1991, 317, 179–187.pl_PL
dc.referencesL. R. Snyder, J. Chromatogr. Sci., 1978, 16, 223–234.pl_PL
dc.referencesN. S. Hush, Electrochim. Acta, 1968, 13, 1005–1023pl_PL
dc.referencesR.-J. Xie, L.-M. Han, N. Zhu, H.-L. Hong, Q.-L. Suo and C.-L. Ke, Asian J. Chem., 2013, 25, 197–201.pl_PL
dc.referencesA. D. Becke, J. Chem. Phys., 1993, 98, 5648–5652.pl_PL
dc.referencesC. Lee, W. Yang and R. G. Parr, Phys. Rev. B: Condens. Matter, 1988, 37, 785–789.pl_PL
dc.referencesM. J. Frisch, G. W. Trucks, H. B. Schlegel, G. E. Scuseria, M. A. Robb, J. R. Cheeseman, G. Scalmani, V. Barone, B. Mennucci, G. A. Petersson, H. Nakatsuji, M. Caricato, X. Li, H. P. Hratchian, A. F. Izmaylov, J. Bloino, G. Zheng, J. L. Sonnenberg, M. Hada, M. Ehara, K. Toyota, R. Fukuda, J. Hasegawa, M. Ishida, T. Nakajima, Y. Honda, O. Kitao, H. Nakai, T. Vreven, J. A. Montgomery, J. E. Peralta Jr., F. Ogliaro, M. Bearpark, J. J. Heyd, E. Brothers, K. N. Kudin, V. N. Staroverov, R. Kobayashi, J. Normand, K. Raghavachari, A. Rendell, J. C. Burant, S. S. Iyengar, J. Tomasi, M. Cossi, N. Rega, J. M. Millam, M. Klene, J. E. Knox, J. B. Cross, V. Bakken, C. Adamo, J. Jaramillo, R. Gomperts, R. E. Stratmann, O. Yazyev, A. J. Austin, R. Cammi, C. Pomelli, J. W. Ochterski, R. L. Martin, K. Morokuma, V. G. Zakrzewski, G. A. Voth, P. Salvador, J. J. Dannenberg, S. Dapprich, A. D. Daniels, Ö. Farkas, J. B. Foresman, J. V. Ortiz, J. Cioslowski and D. J. Fox, Gaussian 09W, Version 8.0, Gaussian Inc., Wallingford, CT, 2009.pl_PL
dc.referencesA. Nafady and W. E. Geiger, Organometallics, 2008, 27, 5624–5631.pl_PL
dc.referencesG. M. Sheldrick, Acta Crystallogr., Sect. A: Fundam. Crystallogr., 2008, 64, 112–122.pl_PL
dc.referencesL. J. Farrugia, J. Appl. Crystallogr., 1997, 30, 565.pl_PL
dc.contributor.authorEmailkondor15@wp.plpl_PL
dc.identifier.doiDOI: 10.1039/c5dt00246j
dc.relation.volume44pl_PL


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