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Published on: December 29, 2016
Unraveling the General Trend of the Reaction of Nitrite with Diiron(II)-polychalcogenides
Kamal Hossain1, Arindam Basak1, Angshuman Roy Choudhury2
1School of Chemical Sciences, Indian Association for the Cultivation of Science, 2A & 2B Raja S. C. Mullick Road, Jadavpur, Kolkata 700032, West Bengal, India.
Abstract:
Detailed structural and spectroscopic investigation of the reactivity of nitrite (NO2-) with three binuclear Fe(II)-polychalcogenido complexes, [Fe2(BPMP)(En)]1+ (E = S, n = 5; E = Se, n = 4) and [Fe2(BPMP)(S6)(NCS)], in comparison with a Zn(II) analogue, [Zn2(BPMP)(S5)]1+ (BPMP1- is the anion of 2,6-bis[[bis(2-pyridylmethyl)amino]methyl]-4-methylphenol), establishes, for the first time, a general trend for the product formation and the reaction mechanism. While all the reactions generated nitric oxide (NO) involving the generation of perthionitrite (SSNO-) or its selenium analogue, the reactions involving Fe(II) always produced the dinitrosyl iron complexes (DNICs), [Fe(E5)(NO)2]1- (E = S, Se), and binuclear Fe(II)-chalcogenido/-hydrochalcogenido complexes, which is in sharp contrast to the formation of binuclear Zn(II) complexes featuring the coordinated SnO2- ligand (n = 3, 4). The present study shows that the reaction of diiron(II)-polychalcogenido complexes with NO2- follows a very different path than that followed by the Zn(II) analogues and is not affected by the presence of an additional redox-silent ligand, such as SCN-. Furthermore, the isolation of a unique diiron(II)-trihydrosulfido complex as an analytically pure complex in the reaction of a diiron(II)-pentasulfido complex and NO2- indicated the hitherto unknown prospects of the reactivity of NO2- with coordinated polychalcogenides for new chemical transformations.
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