INFRARED, CONDUCTANCE, AND KINETIC EVIDENCE FOR ALKALI-METAL ION INTERACTIONS WITH DERIVATIVES OF MANGANESE CARBONYLATES
INFRARED, CONDUCTANCE, AND KINETIC EVIDENCE FOR ALKALI-METAL ION INTERACTIONS WITH DERIVATIVES OF MANGANESE CARBONYLATES
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DOI:
10.1021/ja00427a011
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发表时间:
1976-01-01
影响因子:
15
通讯作者:
DREW, DA
中科院分区:
文献类型:
--
作者:
DARENSBOURG, MY;DARENSBOURG, DJ;DREW, DA
A combination of ir, kinetic, and conductivity data has been used to define the nature and importance of ion-pairing phenomena in alkali metalmanganese carbonylates. Infrared analysis indicates the contact ion interactions observed for-NaMn (CO)* L (L= PMe2Ph, PPh3, P (OPh) 3, and CO) tobe that of Na+ interacting with the oxygen of an equatorial CO group. Conductometric titrations indicate specific interaction of two to four HMPA moleculesper Na+ or Li+ and one 15-crown-5-macrocyclic polyether per Na+ or Li+ in the formation of solvent-separatedion pairs and free ions of M+ Mn (CO) s-. The importanceof these complexed cations is manifest in the activation parameters for reactions of alkyl halides with M+ Mn (CO) 4L_ (L= CO and P (OPh) 3) in THF. In the presence of a cation-complexing agent such as HMPA, the rate of ad-dition of RX to form m-RMn (CO) 4L is drastically lowered as a result of a larger negative entropy of activation. Center-to-center distance parameters and dissociation constants for ion pairs as derived from conductance dependence on concentration are discussed in terms of the electronic nature of the anion and the solvation sphere of the cation. Aparticularly interesting ob-servation on distance parameters as related to asymmetric anions is noted.The role of ion pairing in reactions of carbanions has re-ceived an enormous amount of attention from organic and physical chemists. 2" 4 Similar ion-pairing effects on chemical reactivity of transition metal organic anions have not been well-defined although the physical phenomenon of group la and 2a metal ion interactions with the carbonyl oxygen in transition metal carbonylates is well documented. The crystal structure of [5-C5H5Mo (CO) 3] 2Mg (C5H5N) 4 is known to contain a planar py4Mg+ 2 with the two remaining octahedral sites occupied by one carbonyl oxygen of two adjacent^-CsHsMoCCO))-. 5 Identification of interaction in solution has been based principally on the analysis of infrared spectra either in the r (CO) region or in the far infrared where cat-ion-solvent cage rattling motions may be observed. Thus NaCo (CO) 4 was shown by Edgell et al. toconsist of an equilibrium of solvent separated and contact ion pairs,(CO) 3CoCO_—Na+, in tetrahydrofuran. 6 Other more recent solution studies of interactions include compoundssuch as LiMn (CO) 5, 7 NaMn (CO) 5, 7 NaRFe (CO) 4, 8 and Li-[Ph3PFe (C0) 3C (0) Ph]. 9