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1

Taylor, L. J. Sulfur dioxide adsorption on cobalt complexes. Manchester: UMIST, 1997.

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2

Riley, Sarah. Exploring enantioselective recognition using chiral cobalt complexes. [Derby: University of Derby], 1996.

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3

Grigg, Julian. Hydroxyoxime complexes of vanadium, manganese and cobalt. Manchester: University of Manchester, 1994.

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4

Nicholls, Julian Charles. Carbon-carbon bond cleavage in agostic Cobalt complexes. Salford: University of Salford, 1989.

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5

Jendrusch-Borkowski, Barbara. Starbust-(PAMAM)-Dendrimerkomplexe von Cobalt(III) und Chrom(III). [s.l.]: [s.n.], 1998.

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6

Khan, Tasneem A. Chemistry of organogold (I) & (III) complexes. Manchester: UMIST, 1997.

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7

W, Buchler J., red. Metal complexes with Tetrapyrrole Ligands III. Berlin: Springer, 1995.

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8

Harris, J. Robin, i Jon Marles-Wright, red. Macromolecular Protein Complexes III: Structure and Function. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-58971-4.

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9

Waterson, Jennifer Louise. The synthesis and use of cobalt complexes in catalytic chain transfer polymerisation. [s.l.]: typescript, 2000.

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10

Darmstadt, Technische Universität, red. Synthesen und Reaktionen Trimethylphosphan-gestützter Acyl-Enolato-Cobalt(III)-Verbindungen. [s.l.]: [s.n.], 1999.

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11

Cañadillas-Delgado, Laura. Magnetic interactions in oxo-carboxylate bridged gadolinium (III) complexes. Hauppauge, N.Y: Nova Science Publishers, 2010.

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12

Ellis, Robert. Investigation of cobalt complexes of Schiff's bases and dioximes: Radical precursors and molecular recognition. [Derby]: Derbyshire College of Higher Education, 1992.

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13

Wright, J. P. The synthesis of organogold(III) complexes with potential medicinal interest. Manchester: UMIST, 1995.

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14

Zemnuhova, L., R. Davidovich, A. Udovenko, A. Panasenko, E. Kovaleva, N. Makarenko, G. Fedorischeva i V. Logvinova. FLUORIDE COMPLEXES OF ANTIMONY(III). SYNTHESIS, STRUCTURE, PROPERTIES, AND APPLICATION. ru: Publishing Center RIOR, 2023. http://dx.doi.org/10.29039/978-5-6050261-1-2.

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In the monograph the synthesized and studied at the Institute of Chemistry, FEB RAS, and described in the literature fluoride and complex fluoride compounds, including multiligand fluoroacidocomplex antimony(III) compounds obtained from aqueous hydrofluoric acid solution, their crystal structures, properties and applications are analyzed, discussed and systematized. The monograph consists of an introduction, 5 chapters, and a conclusion. The regularities of the synthesis of complex compounds based on antimony(III) fluoride are described in chapter 1. The crystal structures of fluoride and halogen containing antimony(III) complex compounds and their comparative analysis are presented in chapter 2. The results of NQR-spectroscopic investigations and conclusions about the main regularities of 121,123Sb NQR parameter changes are presented in chapters 3 and 4. Ecotoxicological properties of fluoride and complex fluoride compounds of antimony(III) are considered in Chapter 5. The present monograph can be interest for crystallography researchers and chemists working in the field of metal fluoride complexes as well as for Ph.D. and graduate students.
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15

M, Khenkin G., red. Several complex variables III: Geometric function theory. Berlin: Springer-Verlag, 1988.

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16

Davidson, Tony. Studies in the cobalt catalyzed [2+2+2+2] cycloaddition and deprotonation of dicobalt hexacarbonyl-acetylene complexes. Ottawa: National Library of Canada, 1990.

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17

Ferraz de Paiva, Raphael Enoque. Gold(I,III) Complexes Designed for Selective Targeting and Inhibition of Zinc Finger Proteins. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-030-00853-6.

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18

Zou, Taotao. Anti-Cancer N-Heterocyclic Carbene Complexes of Gold(III), Gold(I) and Platinum(II). Singapore: Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-0657-9.

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19

Karia, Rajesh. Trimethylamine complexes of In (III), Cd (II), Hg (II), Zr (IV), and Hf (IV). [s.l.]: typescript, 1986.

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20

Banik, Bob. The synthesis characterisation and reactivity of Iron (III) complexes with N-(2-Pyridylmethyl)iminodiacetate. Manchester: University of Manchester, 1995.

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21

Maters, Michiel. Stereo- and regioselective nucleophilic and electrophilic additions to [CpFe([eta]⁶-Cot)]PF₆ as a tool to prepare heterodinuclear Cot bridget complexes of iron and cobalt. [s.l.]: [s.n.], 1995.

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22

Pohjola, Pekka. The electron paramagnetic resonance method for characterization of Finnish peat types and iron (III) complexes in the process of peat decomposition. Jyväskylä: University of Jyväskylä, 1991.

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23

Tolʹi︠a︡tti, Russia) International Scientific-Technical Conference "Ecology and Life Protection of Industrial-Transport Complexes" (3rd 2011. ELPIT 2011: Proceedings III International Environmental Congress (V International Scientific-Technical Conference) "Ecology and Life Protection of Industrial-Transport Complexes" : Tolʹi︠a︡tti--Samara, Russia, 21-25 September 2011 = sbornik trudov III Mezhdunarodnogo ėkologicheskogo kongressa (V Mezhdunarodnoĭ nauchno-tekhnicheskoĭ konferent︠s︡ii) "Ėkologii︠a︡ i bezopasnostʹ zhiznedei︠a︡telʹnosti promyshlenno-transportnykh kompleksov", Rossii︠a︡, Samarskai︠a︡ oblastʹ, Tolʹi︠a︡tti--Samara, Samarskiĭ nauchnyĭ t︠s︡entr RAN, Tolʹi︠a︡ttinskiĭ gosudarstvennyĭ universitet, 21-25 senti︠a︡bri︠a︡ 2011 goda. Tolʹi︠a︡ti: Tolʹi︠a︡ttinskiĭ gosudarstvennyĭ universitet, 2011.

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24

Shibata, M. Modern Syntheses of Cobalt (III) Complexes. de Gruyter GmbH, Walter, 2022.

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25

Shibata, M. Modern Syntheses of Cobalt Complexes. Springer, 2013.

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26

Reimer, Steven. Synthesis and characterization of some cobalt complexes of tetramethylcyclam. 1991.

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27

Metal Complexes with Tetrapyrrole Ligands III. Berlin, Heidelberg: Springer Berlin Heidelberg, 1995. http://dx.doi.org/10.1007/bfb0111329.

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28

Buchler, J. W. Metal Complexes with Tetrapyrrole Ligands Iii. Buchler J W, 2013.

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29

Khaleel, Ali Ibrahem. Cobalt and iodine complexes in groundwater and sodium humate solution. 1989.

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30

Habbadi, Nouzha. Activation des petites molecules par les complexes du cobalt: Réaction des complexes monovalents du cobalt et de la trimethylphosphine avec les alcynes vrais. 1986.

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31

Harris, J. Robin, i Jon Marles-Wright. Macromolecular Protein Complexes III: Structure and Function. Springer International Publishing AG, 2021.

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32

Macromolecular Protein Complexes III: Structure and Function. Springer International Publishing AG, 2020.

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33

Summers, Stephen P. Synthesis and properties of some bismuth (III), manganese (II), yttrium (III), europium (III), and gadolinium (III) complexes. 1994.

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34

Summers, Stephen P. Synthesis and properties of some bismuth (III), manganese (II), yttrium (III), europium (III), and gadolinium (III) complexes. 1994.

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35

Schneider, Jens Stefan. Kinetische Untersuchung der Wassersubstitution an "Halbsandwich"-Aquakomplexen des Cobalt(III), Rhodium(III), Iridium(III) und Ruthenium(II). 1993.

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36

Campbell, Michael Glenn. Synthesis, Structure, and Reactivity of New Palladium(III) Complexes. 2014.

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37

Broderick, William E. Synthetic utility of Chromium (II)/(III) and Cobalt (II)/(III) redox chemistry mediated by coordinated ligands. 1986.

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38

Collins, S. L. Quenching of excited triplet states by Cr (III) and Co (III) B-diketonate complexes. 1987.

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39

Feiler, William Adkins. Molecular Orbital Treatments of the Aquo and Ammine Complexes of Iron, Cobalt and Nickel. Creative Media Partners, LLC, 2018.

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40

Bryan, Samuel A. Thermal, photochemical and electrochemical reactions on dinuclear platinum(III) complexes. 1985.

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41

Davis, William Michael. 1. Synthesis, structure and properties of an imidazolate bridged CU(II)-Co(III) complex ; 2. Synthesis, structures and properties of nickel (II) and copper (II) tropocoronand complexes. 1985.

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42

Graves, Carolyn E. Effects of cobalt content on the mixed mode I/III toughness for WC-Co alloys. 1992.

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43

Taylor, Robert J. The heterogeneous binding of oxygen: The preparation and characterization of cobalt cyanide complexes inside zeolite Y. 1989.

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44

Bianchini, Robert J. Deuteron nuclear magnetic resonance spectroscopy as a stereochemical probe for chromium(III) complexes. 1985.

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45

Sun, Kenneth Cheung-Ping. Synthesis and low-temperature Mossbauer effect investigation of intermediate-spin halobis (N,N'-dialkyldithiocarbamato) iron (III) complexes. 1985.

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46

Sun, Kenneth Cheung-Ping. Synthesis and low-temperature Mossbauer effect investigation of intermediate-spin halobis (N,N'-dialkyldithiocarbamato) iron (III) complexes. 1985.

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47

Gillitt, Nicholas D. Kinetics and mechanism of the reactions of iron (III) porphyrin complexes with peracids in the presence of surfactants. 1994.

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48

Sanguanruang, Oravan. [Lambda hyperon]-((R)-cysteinesulfenamido-N,S) bis (ethylenediamine) cobalt(III) complex: Characterization of the complex and kinetics and mechanism of formation and base-catalyzed decomposition. 1988.

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49

Sanguanruang, Oravan. [Lambda hyperon]-((R)-cysteinesulfenamido-N,S) bis (ethylenediamine) cobalt(III) complex: Characterization of the complex and kinetics and mechanism of formation and base-catalyzed decomposition. 1988.

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50

Barsoum, Rashad S. Schistosomiasis. Redaktor Vivekanand Jha. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780199592548.003.0194_update_001.

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The urinary system is the primary target of Schistosoma haematobium infection, which leads to granuloma formation in the lower urinary tract that heals with fibrosis and calcification. While the early lesions may be associated with distressing acute or subacute symptoms, it is the late lesions that constitute the main clinical impact of schistosomiasis. The latter include chronic cystitis, ureteric fibrosis, ureterovesical obstruction or reflux which may lead to chronic pyelonephritis. Secondary bacterial infection and bladder cancer are the main secondary sequelae of urinary schistosomiasis.The kidneys are also a secondary target of S. mansoni infection, attributed to the systemic immune response to the parasite. Specific immune complexes are responsible for early, often asymptomatic, possibly reversible, mesangioproliferative lesions which are categorized as ‘class I’. Subsequent classes (II–VI) display different histopathology, more serious clinical disease, and confounding pathogenic factors. Class II lesions are encountered in patients with concomitant salmonellosis; they are typically exudative and associated with acute-onset nephrotic syndrome. Classes III (mesangiocapillary glomerulonephritis) and IV (focal segmental sclerosis) are progressive forms of glomerular disease associated with significant hepatic pathology. They are usually associated with immunoglobulin A deposits which seem to have a significant pathogenic role. Class V (amyloidosis) occurs with long-standing active infection with either S. haematobium or S. mansoni. Class VI is seen in patients with concomitant HCV infection, where the pathology is a mix of schistosomal and cryoglobulinaemic lesions, as well as amyloidosis which seems to be accelerated by the confounded pathogenesis.Early schistosomal lesions, particularly those of the lower urinary tract, respond to antiparasitic treatment. Late urological lesions may need surgery or endoscopic interventions. As a rule, glomerular lesions do not respond to treatment with the exception of class II where dual antiparasitic and antibiotic therapy is usually curative. Patients with end-stage kidney disease may constitute specific, yet not insurmountable technical and logistic problems in dialysis or transplantation. Recurrence after transplantation is rare.
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