AN EPR STUDY OF 2,3-BIS(DIPHENYLPHOSPHINO)MALEIC ANHYDRIDE (BMA) COMPLEXES AND THE BMA RADICAL-ANION

Citation
Nw. Duffy et al., AN EPR STUDY OF 2,3-BIS(DIPHENYLPHOSPHINO)MALEIC ANHYDRIDE (BMA) COMPLEXES AND THE BMA RADICAL-ANION, Inorganic chemistry, 37(19), 1998, pp. 4849-4856
Citations number
24
Categorie Soggetti
Chemistry Inorganic & Nuclear
Journal title
ISSN journal
00201669
Volume
37
Issue
19
Year of publication
1998
Pages
4849 - 4856
Database
ISI
SICI code
0020-1669(1998)37:19<4849:AESO2A>2.0.ZU;2-S
Abstract
EPR spectra are reported for four metal complexes of 2,3-bis(diphenylp hosphino)maleic anhydride (BMA), [Co-2(PhCCR)(CO)(4)(eta-BMA)](-), R = Ph, H, [Co-2(PhCCPh)(CO)(4)(mu-BMA)](-), and [PhCW(CO)(2)(BMA)Cl](-) as well as the radical anions, [BMA](-) and [BPCD](-), BPCD = 4,5-bis( diphenylphosphino)cyclopentene-1,3-dione. At room temperature, all spe ctra are 1:2:1 triplets due to hyperfine coupling to two equivalent P- 31 nuclei with coupling to two equivalent H-1 nuclei for [BPCD](-) and unresolved coupling to one or two Co-59 nuclei for the Co complexes w ith chelating or bridging BMA, respectively. The P-31 couplings are te mperature dependent, ca. -3 and -13 mG K-1 for the metal complexes and ligand radical anions, respectively. At low temperature, the spectrum of [BMA]- shows the presence of symmetric and asymmetric PPh2 rotatio nal conformers, related by the thermodynamic parameters Delta H degree s = -0.8 +/- 0.2 kJ mol(-1) and Delta S degrees = 4 +/- 1 J mol(-1) K- 1 and interconverted with activation parameters Delta H-double dagger = 18.2 +/- 0.4 kJ mol(-1), Delta S-double dagger = -30 +/- 2 J mol(-1) K-1. The temperature dependence of the P-31 couplings is explained by a negative spin-polarization contribution to < a(p)> and a positive c ontribution due to P 3s character; the latter increases with the asymm etry of the PPh2 conformations. The range of conformations accessible to the metal complexes is less than for the ligand radical anions, and accordingly the temperature dependence is significantly smaller.