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1,1'-Dilithioferrocene

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1,1'-Dilithioferrocene
Names
IUPAC name 1,1'-Dilithioferrocene
Identifiers
CAS Number
3D model (JSmol)
ChemSpider
PubChem CID
InChI
  • InChI=1S/2C5H4.Fe.2Li/c2*1-2-4-5-3-1;;;/h2*1-4H;;;/q2*-1;;2*+1Key: CWUATGTYNYDRDF-UHFFFAOYSA-N
SMILES
  • ..11.11.
Properties
Chemical formula C10H8FeLi2
Molar mass 197.90 g·mol
Appearance orange solid
Hazards
Occupational safety and health (OHS/OSH):
Main hazards pyrophoric
Except where otherwise noted, data are given for materials in their standard state (at 25 °C , 100 kPa). Infobox references
Chemical compound

1,1'-Dilithioferrocene is the organoiron compound with the formula Fe(C5H4Li)2. It is exclusively generated and isolated as a solvate, using either ether or tertiary amine ligands bound to the lithium centers. Regardless of the solvate, dilithioferrocene is used commonly to prepare derivatives of ferrocene.

Synthesis and reactions

Treatment of ferrocene with butyl lithium gives 1,1'-dilithioferrocene, regardless of the stoichiometry (monolithioferrocene requires special conditions for its preparation). Typically the lithiation reaction is conducted in the presence of tetramethylethylenediamine (tmeda). The adduct 3(tmeda)2 has been crystallized from such solutions. Recrystallization of this adduct from thf gives 3(thf)6.

1,1'-Dilithioferrocene reacts with a variety of electrophiles to afford disubstituted derivatives of ferrocene. These electrophiles include S8 (to give 1,1'-ferrocenetrisulfide), chlorophosphines, and chlorosilanes.

Some transformations of dilithioferrocene.

The diphosphine ligand 1,1'-bis(diphenylphosphino)ferrocene (dppf) is prepared by treating dilithioferrocene with chlorodiphenylphosphine.

Monolithioferrocene

The reaction of ferrocene with one equivalent of butyllithium mainly affords dilithioferrocene. Monolithioferrocene can be obtained using tert-butyllithium.

References

  1. ^ Butler, Ian R.; Cullen, William R.; Ni, Jijin; Rettig, Stephen J. (1985). "The Structure of the 3:2 Adduct of 1,1'-Dilithioferrocene with Tetramethylethylenediamine". Organometallics. 4 (12): 2196–2201. doi:10.1021/om00131a023.
  2. Perucha, Alejandro Sánchez; Heilmann-Brohl, Julia; Bolte, Michael; Lerner, Hans-Wolfram; Wagner, Matthias (2008). "Comparison of Doubly Lithiated, Magnesiated, and Zincated Ferrocenes: 2Zn2(tmeda)2, the First Example of a Ferrocenophane with Bridging First-Row Transition Metal Atoms". Organometallics. 27 (23): 6170–6177. doi:10.1021/om800765a.
  3. Herbert, David E.; Mayer, Ulrich F. J.; Manners, Ian (2007). "Strained Metallocenophanes and Related Organometallic Rings Containing pi-Hydrocarbon Ligands and Transition-Metal Centers". Angew. Chem. Int. Ed. 46 (27): 5060–5081. doi:10.1002/anie.200604409. PMID 17587203.
  4. Rautz, Hermann; Stüger, Harald; Kickelbick, Guido; Pietzsch, Claus (2001). "Synthesis, Structural Characterization and Fe-Mössbauer Spectra of Ferrocenylhexasilanes". Journal of Organometallic Chemistry. 627 (2): 167–178. doi:10.1016/S0022-328X(01)00743-4.
Salts and covalent derivatives of the cyclopentadienide ion
CpH He
LiCp Be B CpMe N C5H4O F Ne
NaCp MgCp2

MgCpBr

Al Si P S Cl Ar
K CaCp2 ScCp3 TiCp2Cl2

(TiCp2Cl)2
TiCpCl3
TiCp2S5
TiCp2(CO)2
TiCp2Me2

VCp2

VCpCh
VCp2Cl2
VCp(CO)4

CrCp2

(CrCp(CO)3)2

MnCp2 FeCp2

Fe(η-C5H4Li)2
((C5H5)Fe(C5H4))2
(C5H4-C5H4)2Fe2
FeCp2PF6
FeCp(CO)2I

CoCp2

CoCp(CO)2

NiCp2

NiCpNO

Cu Zn Ga Ge As Se Br Kr
Rb Sr Y(C5H5)3 ZrCp2Cl2

ZrCp2ClH

NbCp2Cl2 MoCp2H2

MoCp2Cl2
(MoCp(CO)3)2

Tc RuCp2

RuCp(PPh3)2Cl
RuCp(MeCN)3PF6

RhCp2 PdCp(C3H5) Ag Cd InCp SnCp2 Sb Te I Xe
Cs Ba * LuCp3 HfCp2Cl2 Ta (WCp(CO)3)2 ReCp2H OsCp2 IrCp2 Pt Au Hg TlCp PbCp2 Bi Po At Rn
Fr Ra ** Lr Rf Db Sg Bh HsCp2 Mt Ds Rg Cn Nh Fl Mc Lv Ts Og
 
* LaCp3 CeCp3 PrCp3 NdCp3 PmCp3 SmCp3 Eu Gd Tb DyCp3 Ho ErCp3 TmCp3 YbCp3
** Ac ThCp3
ThCp4
Pa UCp4 Np Pu Am Cm Bk Cf Es Fm Md No
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