Syntheses of Organolithium Compounds:有机锂化合物的合成.doc
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1、Organolithium CompoundsUmbreen MirCHM 331SProf. M. DenkApril 12th, 2000HistoryOver the years, organolithium compounds have gained an increasing value in chemical synthesis due to their high reactivity, relatively easy preparation and solubility in inert solvents.4The first attempt to synthesize an o
2、rganolithium compound was with the reaction of lithium with diethyl mercury.10 Methyl-lithium was first prepared by Schlenk and Holtz in 1917.16 In 1930, the first successful synthesis of alkyllithiums was obtained from lithium metal and alkyl halides.10This fundamental method is still widely employ
3、ed for the “direct” synthesis of organolithium compounds. However, this method has not been well understood in the past. New insights have unfolded over the years on the by-products, such as hydrocarbons (from coupling), alkanes, and alkenes, corresponding to the alkyl halides, which suggest that ra
4、dicals may be involved.10 Figure 1: Mechanism of possible stereochemical pathways.10Metal-halogen exchange and transmetallation, as well as new procedures have been introduced to avoid producing racemic species.10 Structures of simple organolithium compoundsEfforts have been made in characterizing t
5、he structure of important reagents, both in solution and in the solid state. Several different forms of these reagents have been determined, because the degree of association is strongly dependent on the nature of the solvent used.3Table 1: Aggregation of Typical Organolithium Compounds 3,7SolventAg
6、gregationMethyl-lithiumX-ray crystallographyTHF, Et2OHydrocarbonsTMEDATetramericHexamericMonomericn-butyl-lithiumIR and NMRHydrocarbonsEtherHexamericTetramerics-butyl-lithium-To date, no crystal structures have been determined13t-butyl-lithiumMass spectroscopyHydrocarbonsPredominantly tetrameric, bu
7、t some hexameric particles presentPhenyl-lithiumX-ray powder diffractionTHF, Et2ODimericIn 1964, Weiss and Lucken deduced that the structure of methyl-lithium, exists as a tetramer from its X-ray powder diffraction pattern.16 Today, X-ray crystallographic methods still confirm methyl-lithium to be a
8、 tetramer, but more specifically resembling a cubane, salt-like structure in the solid state.4, 10Figure 2: Tetrameric structure of methyl-lithium in the solid state.4, 10Early infrared studies up until 1957, indicated that methyl-lithium does not exist as a monomer, even in the gas phase.16 Recentl
9、y, in 1997, the first unambiguous structural characterization of monomeric methyl-lithium was discovered. The structure was determined by millimeter/submillimeter spectroscopy.18 Figure 3: Monomeric structure of methyl-lithium18Ethyl-lithium also exists as tetrameric units of crystals in the solid p
10、hase (see Figure 4)Figure 4: Crystal structure of ethyl-lithium4, 10Infra-red and Raman spectra suggest that n-butyl-lithium is hexameric in benzene solution. Figure 5 proposes a structure, which involves carbon bridges, where hydrogen bridges would be expected.Figure 5: Suggested structure of n-but
11、yl-lithium hexamer.4, 10The solid state structure of Lewis-base free phenyl-lithium has recently been confirmed through synchrotron X-ray powder diffraction.5 Figure 6 illustrates phenyl-lithium as consisting of dimeric Li2Ph2 molecules. These molecules interact with adjacent Li2Ph2 molecules, formi
12、ng a polymeric ladder structure.Figure 6: Dimeric structure of unsolvated, Lewis-base free phenyl-lithium in the solid state.5Physical propertiesMany organolithium compounds are soluble in hydrocarbons, with a few exceptions, methyl-lithium and phenyl-lithium, which are associated in these solvents.
13、7 Table 2: Comparison of Physical Properties of Typical Organolithium Compounds.4, 6, 7, 10, 14CompoundMW (g/mol)BP (C)MP (C)Density(g/ml)AppearanceSolubilityn-butyl-lithium64.0560-80 760mm Hg-950.68Solid/liquid mixture; clear yellowSoluble in ether, benzene and paraffinic hydrocarbonss-butyl-lithiu
14、m64.05-0.75Solid/liquid mixture; clear light yellow-yellowish orangeSoluble in hydrocarbonst-butyl-lithium64.0536-40-0.66Colourless, crystallineSoluble in hydrocarbonsMethyl-lithium21.9734.600.70Clear liquid; crystal salt-like structure in solid stateSoluble in diethyl ether; insoluble in aliphatic
15、hydrocarbonsPhenyl-lithium84.04-0.73Reddish brown liquidSoluble in diethyl ether; insoluble in hydrocarbonsSpectroscopic PropertiesNuclear magnetic resonance spectroscopy is an extremely useful tool in elucidating the structures of organolithium compounds in solution.4Table 3: Comparison of 13C-NMR
16、Spectra of Alkyl-lithium Compounds and the Corresponding Hydrocarbons 4CompoundSolventd (13C) (ppm)J (13C-H) (Hz)n-C4H9LiHexane+182100(CH3)3CliCyclohexane+182-PhCH2LiBenzene+174.5116Ph2CLi-n-C5H11Benzene+115-In Figure 7, 7Li signals for more covalently organolithium compounds appear at the lower mag
17、netic field and species with a large ionic character are shifted to the higher field. Figure 7: Li-NMR of organolithium compounds in cyclopentane solution.8Table 4: IR Spectroscopy of Methyl- and Ethyl-lithium in Benzene Solution 4CompoundBand Frequency (cm-1)CH3Li (mull)2840-2780aCHD3Li (mull)2150-
18、2027a(But 6Li) and (But 7Li)2805 and 2725Ethyl-lithium2940,2840,2760a,ba unaffected by substitution of 6Li for 7Lib both in solution and in vapourSyntheses of Organolithium CompoundsSeveral organolithium compounds are industrially synthesized, but only some are produced on a considerable scale. For
19、example, n- and s-butyl-lithium in hydrocarbons are produced in tonnage quantities.11 The cost is relatively low, and the unlimited storage period (under room temperature in a well-closed bottle) makes it is desirable to purchase cylinders of n-butyl-lithium in large quantities (25 litres or more),
20、for laboratory purposes.2Some costs of the commercially available organolithium compounds are listed in Table 5.Table 5: Costs of Commercially Available Organolithium Compounds16CompoundConcentrationMSize(L)Cost(CDN $)Butyl-lithium1.62.010.00.18.018.00.10.80.10.88.034.70505.00928.6026.80129.8063.803
21、78.501735.40sec-Butyl-lithium1.30.10.857.20101.00tert-Butyl-lithium1.70.10.88.040.40132.90939.60Iso-butyl-lithium1.60.1490.30Methyl-lithium1.01.40.10.10.88.053.8037.20162.701235.80(Trimethylsilyl)methyl-lithium1.00.10.2553.60199.80The fundamental process of synthesizing an organolithium compound is
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