Kinetics and mechanism of the formation of nitroprusside from aquapentacyanoferrate(III) and NO: Complex formation controlled by outer-sphere electron transfer

被引:29
作者
Roncaroli, F
Olabe, JA
van Eldik, R
机构
[1] Univ Erlangen Nurnberg, Inst Inorgan Chem, D-91058 Erlangen, Germany
[2] Univ Buenos Aires, Fac Exact & Nat Sci, Dept Inorgan Analyt & Phys Chem Inquimae, Buenos Aires, DF, Argentina
关键词
D O I
10.1021/ic020288o
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
The kinetics and mechanism of the reaction between nitric oxide and aquapentacyanoferrate(III) were studied in detail. Pentacyanonitrosylferrate (nitroprusside, NP) was produced quantitatively in a pseudo-first-order process. The complex-formation rate constant was found to be 0.252 +/- 0.004 M-1 s(-1) at 25.5 degreesC, pH 3.0 (HClO4), and / = 0.1 M (NaClO4), for which the activation parameters are DeltaH(+) = 52 +/- 1 kJ mol(-1), DeltaS(+) = -82 +/- 4 J K-1 mol(-1), and DeltaV(+) = -13.9 + 0.5 cm(3) mol(-1). These data disagree with earlier studies on complex-formation reactions of aquapentacyanoferrate(ill), for which a dissociative interchange (I-d) mechanism was suggested. The aquapentacyanoferrate(II) ion was detected as a reactive intermediate in the reaction of aquapentacyanoferrate(III) with NO, by using pyrazine and thiocyanate as scavengers for this intermediate. In addition, the reactions of other [Fe-III(CN)(5)L](n-) complexes (L = NCS-, py, NO2, and CN-) with NO were studied. These experiments also pointed to the formation of Fe(II) species as intermediates. It is proposed that aquapentacyanoferrate(III) is reduced by NO to the corresponding Fe(II) complex through a rate-determining outer-sphere electron-transfer reaction controlling the overall processes. The Fe(II) complex rapidly reacts with nitrite producing [Fe-II(CN)(5)NO2](4-), followed by the fast and irreversible conversion to NP.
引用
收藏
页码:5417 / 5425
页数:9
相关论文
共 53 条
[31]   VIBRATIONAL SPECTRUM OF SODIUM NITROPRUSSIDE - NORMAL COORDINATE ANALYSIS FOR FE(CN)5NO2- ION [J].
PALIANI, G ;
POLETTI, A ;
SANTUCCI, A .
JOURNAL OF MOLECULAR STRUCTURE, 1971, 8 (1-2) :63-&
[32]   KINETICS AND MECHANISM FOR PRODUCTION OF A DINITROGEN COMPLEX [J].
PELL, SD ;
ARMOR, JN .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1973, 95 (23) :7625-7633
[33]  
Richter-Addo G.B., 1992, Metal nitrosyls
[34]  
Ridd JH., 1978, ADV PHYS ORG CHEM, V16, P1
[35]  
SCHEPPENSIEPER T, 2001, EUR J INORG CHEM, P2317
[36]  
Schneppensieper T, 2001, ANGEW CHEM INT EDIT, V40, P1678
[37]  
Sharpe A.G., 1976, CHEM CYANO COMPLEXES
[38]   Electronic structure of cyano-bridged dinuclear iron complexes [J].
Souto, MF ;
Cukiernik, FD ;
Forlano, P ;
Olabe, JA .
JOURNAL OF COORDINATION CHEMISTRY, 2001, 54 (3-4) :343-353
[39]   Blood flow regulation by S-nitrosohemoglobin in the physiological oxygen gradient [J].
Stamler, JS ;
Jia, L ;
Eu, JP ;
McMahon, TJ ;
Demchenko, IT ;
Bonaventura, J ;
Gernert, K ;
Piantadosi, CA .
SCIENCE, 1997, 276 (5321) :2034-2037
[40]   BIOCHEMISTRY OF NITRIC-OXIDE AND ITS REDOX-ACTIVATED FORMS [J].
STAMLER, JS ;
SINGEL, DJ ;
LOSCALZO, J .
SCIENCE, 1992, 258 (5090) :1898-1902