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Jahn—Teller distortional

Copper(II) salts (blue in aqueous solution) are typical M(II) salts but generally have a distorted co-ordination (Jahn-Teller distortion, 4 near plus 2 far neighbours). Extensive ranges of complexes are known, particularly with /V-ligands. [Pg.111]

The stoi7 begins with studies of the molecular Jahn-Teller effect in the late 1950s [1-3]. The Jahn-Teller theorems themselves [4,5] are 20 years older and static Jahn-Teller distortions of elecbonically degenerate species were well known and understood. Geomebic phase is, however, a dynamic phenomenon, associated with nuclear motions in the vicinity of a so-called conical intersection between potential energy surfaces. [Pg.2]

The electronic spectrum of the radical has been recorded long before a satisfactory theoretical explanation could be provided. It was realized early on that the system should be Jahn-Teller distorted from the perfect pentagon symmetry (D5/, point group). Recently, an extensive experimental study of the high-resolution UV spectrum was reported [76], and analyzed using Jahn-Teller formalism [73],... [Pg.359]

It was shown by several workers that in this case the first-order Jahn-Teller distortion is due to an ej vibration, and that the second-order distortion vanishes. Therefore, in terms of simple Jahn-Teller theoi, the moat around the symmetric point should be a Mexican hat type, without secondary minima. This expectation was borne out by high-level quantum chemical calculations, which showed that the energy difference between the two expected C2v structures ( A2 and Bi) were indeed very small [73]. [Pg.359]

J-aggregation Jahn-Teller distortion Jahn-Teller effect J ai Osh Jalaric acid Jameson cell Jams... [Pg.536]

Ab initio molecular orbital calculations for the model systems RCN3S2 (R = H, NH2) show that these dithiatriazines are predicted to be ground state singlets with low-lying triplet excited states (Section 4.4). The singlet state is stabilized by a Jahn-Teller distortion from C2v to Cj symmetry. In this context the observed dimerization of these antiaromatic (eight r-electron) systems is readily understood. [Pg.244]

If Li[Mn2]04 is heated above -780 °C, oxygen-deficient spinels LiMn204 (S <0.14) are produced [132, 144, 145]. The loss of oxygen lowers the manganese oxidation state below 3.5 and triggers a mild Jahn-Teller distortion the da ratio in the tetragonal LiMn204 (7 phase varies between 1.02 and 1.07. [Pg.313]

Jahn-Teller distortions 309 ff Japanese separators 264, 267 Joule effect, heat losses 13 jump frequency, solid electrolytes 532 Jungner nickel cadmium batteries 22... [Pg.611]

Complexes of the divalent metals [M(ttcn)2]2+ undergo electrochemical oxidation to paramagnetic [M(ttcn)2]3+. Red [Pd(ttcn)2]3+ has a tetragonally distorted octahedral structure (d7, Jahn-Teller distortion) with Pd—S 2.356-2.369 A (equatorial) and 2.545 A (axial) in keeping with the ESR spectrum (gj = 2.049, gy = 2.009) which also displays 105Pd hfs. Similarly, electrochemical oxidation of the palladium(II) tacn complex (at a rather lower... [Pg.248]

Stable compounds of silver(II) are found with N, O and F as donor atoms macrocycles are, as elsewhere, able to support the higher oxidation state. As a d9 system, Ag2+ imitates Cu2+ in displaying Jahn-Teller distortion. [Pg.290]

Jahn-Teller distortions cobalt and copper complexes, 2, 91 hydrates, 2, 308 Jahn-Teller effect, 5, 535 Jahn-Teller theorem, 1, 247 Jarosites... [Pg.152]

The driving force for Jahn-Teller distortions in transition-metal complexes is the open d shell. It is likely that explanations for them along the lines given above would have come about even if the theorem of Jahn and Teller had not been discovered. We make this remark not to denigrate that powerful piece of work, but as an attempt to defuse any mystery that might otherwise attach to OrgeTs application of that group-theoretical construction. [Pg.142]

The data for the 1,2-diaminoethane complexes now parallels the trends in ionic radius and LFSE rather closely, except for the iron case, to which we return shortly. What is happening Copper(ii) ions possess a configuration, and you will recall that we expect such a configuration to exhibit a Jahn-Teller distortion - the six metal-ligand bonds in octahedral copper(ii) complexes are not all of equal strength. The typical pattern of Jahn-Teller distortions observed in copper(ii) complexes involves the formation of four short and two long metal-ligand bonds. [Pg.163]

V(CO)e generated by cocondensing presynthesized V(CO)6 with N2 at 10 K has been observed (44, 45). As suggested in a metal-atom study (125), the results indicated that a static, Jahn-Teller distortion is present. Matrix MCD also proved useful in confirming the predicted paramagnetism of Fe(CO)4 (45) (produced by photolysis of Fe(CO)5). In addition, matrix MCD was used to detect such paramagnetic species as MnOaCU in the presence of MnOsCl (45). [Pg.132]

The brass-colored PdTel consists of Jahn-Teller distorted PdTe2/2l4/4 octahedra, which are interconnected by common edges and corners to afford a loose, spatial network. The compound is considered to be ionic, containing Pd and Te , although the observed diamagnetism, electronic conduction, and color suggest some metallic character. [Pg.381]

In the present study, we focus on the effects of substituting one of the protons by a deuteron. While giving only one isomer of the unionized molecule, this produces two inequivalent isomers of the Jahn-Teller distorted ion one isomer where the deuteron occupies one of the two sites on the C2 symmetry axes (Hj or H4) and one where it occupies one of the four equivalent remaining sites (H2, H3, H5 or H6). The effects on the ESR spectrum will below be illuminated both theoretically and experimentally. [Pg.341]


See other pages where Jahn—Teller distortional is mentioned: [Pg.98]    [Pg.249]    [Pg.351]    [Pg.83]    [Pg.22]    [Pg.175]    [Pg.6]    [Pg.63]    [Pg.86]    [Pg.153]    [Pg.249]    [Pg.251]    [Pg.897]    [Pg.1021]    [Pg.1057]    [Pg.1133]    [Pg.1193]    [Pg.390]    [Pg.309]    [Pg.310]    [Pg.311]    [Pg.312]    [Pg.313]    [Pg.181]    [Pg.183]    [Pg.111]    [Pg.103]    [Pg.140]    [Pg.140]    [Pg.164]    [Pg.141]    [Pg.232]   
See also in sourсe #XX -- [ Pg.305 ]




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Amines Jahn-Teller distortion

Chromium Jahn-Teller distortion

Complexes Jahn-Teller distortions

Cooperative Jahn-Teller distortion

Coordination compounds Jahn-Teller distortion

Copper Jahn-Teller distortion

Cyclobutadiene Jahn-Teller distortion

Cyclopropane Jahn-Teller distortion

Fluorides Jahn-Teller distortion

Impurities Jahn-Teller distortion

Introduction Jahn-Teller distortion

Isomorphously Jahn-Teller distortion

Jahn distortion

Jahn-Teller

Jahn-Teller distorted cations

Jahn-Teller distortion

Jahn-Teller distortion

Jahn-Teller distortion 376 INDEX

Jahn-Teller distortion and other crystal fields

Jahn-Teller distortion determinations

Jahn-Teller distortion first order

Jahn-Teller distortion second-order

Jahn-Teller distortion square

Jahn-Teller distortion, divalent copper

Jahn-Teller distortion, spin-orbit

Jahn-Teller distortion, spin-orbit quenching

Jahn-Teller distortions and spectra

Jahn-Teller distortions in chromium compounds

Jahn-Teller distortions in crystal structures

Jahn-Teller distortions in gold compounds

Jahn-Teller distortions in manganese compounds

Jahn-Teller distortions synthesis

Jahn-Teller distortions theory

Jahn-Teller effect distortion

Jahn-Teller effect distortion origin

Jahn-Teller octahedral distortion

Jahn-Teller site distortions

Jahn-Teller structural distortions

Jahn-Teller-Peierls distortions

Jahn-Teller-type distortion

Ligand fields Jahn-Teller distortion

Manganite Jahn-Teller distortion

Matrix Jahn-Teller distortion

Molecular Jahn-Teller distortion

Molecular modelling Jahn-Teller distortions

Pseudo Jahn-Teller distortion

Structures Jahn-Teller distortion

The quest for Jahn-Teller distortion

Topological Representations of Jahn-Teller Distortions

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