E. Herdtweck et al., STRUCTURAL FEATURES AND ELECTROCHEMICAL PROPERTIES OF ANSA-FERROCENESWITH PYRAZABOLE BRIDGES, Organometallics, 15(26), 1996, pp. 5524-5535
The stability of ferrocenophanes ansa-1,1'-Fc[B(R)(mu-pzR(#))](2) (2)
with pyrazabole bridges depends to a large extent on the substitution
pattern of boron (R) and pyrazole (R(#)). Cyclic voltammetry measurmen
ts on 17 derivatives of 2, with R and R(#) covering a wide spectrum of
electronic features, revealed a pronounced influence of these substit
uents on the E(0/+)(o)' values of the Fe(II)/Fe(III) redox couple, The
electronic effects of R and R(#) thus appear to be transmitted to a g
reat degree along the pyrazabole framework. pi donors R and electron a
ccepters R(#) lead to a gradual ansa-bridge weakening and finally open
ing, if R=pyrrolidinyl and R(#)=3,5-CF3 or 3,4,5-COOEt (NMR spectrosco
py; X-ray crystal structure analyses of 2c (R=Me; R(#)=3,4,5-H), 2d (R
=Me; pzR(#)=indazolyl), 2n (R=pyrrolidinyl; R(#)=3,4,5-H), 2p (R=pyrro
lidinyl; pzR(#)=triazolyl)). Cyclic voltammetry indicates ansa-bridge
opening to occur without major alterations of the charge density at bo
ron. In the case of R=pyrrolidinyl there is evidence for negative hype
rconjugation into the highly polar B-N(pyrazole) bonds. Oxidation of t
he central iron atom results in a contraction of the pyrazabole dimer
(X-ray crystal structure analysis of 2c(+)).