Evidence of quasi-intramolecular redox reactions during thermal decomposition of ammonium hydroxodisulfitoferriate(III), (NH4)2[Fe(OH)(SO3)2]·H2O

Author:

Kocsis Tünde,Magyari József,Sajó István E.,Pasinszki Tibor,Homonnay Zoltán,Szilágyi Imre M.,Farkas Attila,May Zoltán,Effenberger Herta,Szakáll Sándor,Pawar Rajendra P.,Kótai László

Funder

Ministry Of Education (SRB)

NRDI

OTKA

Hungarian Government

Magyar Tudományos Akadémia

Publisher

Springer Science and Business Media LLC

Reference29 articles.

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2. Kotai L, Banerji KK, Sajo I, Kristof J, Sreedhar B, Holly S, Keresztury G, Rockenbauer A. An unprecedented-type intramolecular redox reaction of solid tetraamminecopper(2+) bis(permanganate) ([Cu(NH3)4](MnO4)2)—a low-temperature synthesis of copper dimanganese tetraoxide-type (CuMn2O4) nanocrystalline catalyst precursors. Helv Chim Acta. 2002;85(8):2316–27. https://doi.org/10.1002/1522-2675(200208)85:8<2316:AID-HLCA2316>3.0.CO;2-A .

3. Kotai L, Fodor J, Jakab E, Sajo I, Szabo P, Lonyi F, Valyon J, Gacs I, Argay G, Banerji KK. A thermally induced low-temperature intramolecular redox reaction of bis(pyridine)silver(I) permanganate and its hemipyridine solvate. Trans Metal Chem. 2006;31(1):30–4. https://doi.org/10.1007/s11243-005-6322-2 .

4. Sajo IE, Kotai L, Keresztury G, Gacs I, Pokol Gy, Kristof J, Soptrayanov B, Petrusevski VM, Timpu D, Sharma PK. Studies on the chemistry of tetraamminezinc(II) dipermanganate ([Zn(NH3)4](MnO4)2): low-temperature synthesis of the manganese zinc oxide (ZnMn2O4) catalyst precursor. Helv Chim Acta. 2008;91(9):1646–58. https://doi.org/10.1002/hlca.200890180 .

5. Kótai L, Sajó IE, Keresztury G, Németh CS, Gács I, Menyhárd A, Kristóf J, Hajba L, Petrusevski VM, Ivanovski V, Timpu D, Sharma PK. Studies on the chemistry of [Cd(NH3)4](MnO4)2. A low-temperature synthesis route of the CdMn2O4+x Type NOx and CH3SH sensor precursors. Z Anorg Allgem Chem. 2012;638(1):177–86. https://doi.org/10.1002/zaac.201100467 .

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