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1.
EPR results of V4+, with S = 12, in SrTiO3 are reported. The tetragonal local symmetry of the impurity ion is related to strong T2g × ?g coupling as evidenced by intensity variations in the presence of stress. At 4.2 K the V4+ EPR behaviour is related to the intrinsic local strain in SrTiO3.  相似文献   

2.
The diffusion constants for C and O adsorbates on Pt(111) surfaces have been calculated with Monte-Carlo/Molecular Dynamics techniques. The diffusion constants are determined to be DC(T)=(3.4 × 10?3e?13156T)cm2s?1 for carbon and DO(T) = (1.5×10?3 e?9089T) cm2 s?1 for oxygen. Using a recently developed diffusion model for surface recombination kinetics an approximate upper bound to the recombination rate constant of C and O on Pt(111) to produce CO(g) is found to be (9.4×10?3 e?9089T) cm2 s?1.  相似文献   

3.
The effect of γ irradiation at 300 K on the concentrations of vanadium ions V3+, V4+ and V2+ in Al2O3 has been studied quantitatively, using three techniques: optical absorption (V3+), low temperature thermal conductivity measurements (V4+) and EPR (V2+). Several single crystals of Al2O3 doped with vanadium in a large range of concentration (2.8 × 1018? 1.3 × 1020at.cm3) have been measured. The evolution of the respective concentrations by γ irradiation as a function of the total vanadium content C is quite different in the two regions C< 1.2 × 1019at.cm3 and C larger than this value. A consistent analysis of the results has nevertheless been achieved, leading to the determination of the absolute concentrations of the three ions in the as-received and γ irradiated states for all samples with C<4.2 × 1019at.cm3 (room temperature annealing is observed above this value). The concentrations of V4+ and V2+ ions are always small, but V4+ ions are more stable: they are present in the as-received state at a level of 1% of the total concentration and a maximum value of /?2.3 × 1018at.cm3 is observed in the γ irradiated state; on the other hand there are less than 4.7 × 1015V2+ ions per cm3 in the as-received state and the maximum value is only 4.2 × 1017at.cm3. Charge transfer between V ions only is not sufficient to explain the experimental results and other defects must be involved in the γ irradiation effect.  相似文献   

4.
Upon oxidation of 5.10-dihydro-5.10-diethylphenazine (E2P) with iodine golden-green lustrous crystals of a compound with stoichiometry E2P.I1.6 were isolated. The compound crystallizes in the tetragonal space group D42 with a = 12.321(2) A? and c = 5.330(2) A?. The E2P and I form interpenetrating incommensurate sublattices along c, with an iodine repeat distance of 9.7 Å. Static susceptibility measurements at room temperature give χg = + 0.994 × 10?6g?1 × cm3. This corresponds to one unpaired electron spin per two formular units. Single-crystal EPR indicates that the paramagnetism is associated with weakly interacting E2P+ cation radicals. The 300K-d.c. conductivity of 3×10?2Ω?1cm?1 and activation energy of 0.17±0.02eV for single crystals is consequently associated with the polyiodide chains, and not with the E2P+ cation radicals.  相似文献   

5.
The resistivity, thermoelectric power and Hall constant in the temperature range of 78–830 K were determined for polycrystalline Th3As4 samples obtained by annealing thin thorium slabs in arsenic vapour. The samples examined were n-type semiconductors with a carrier concentration ranging from 1.0 × 1018cm?3 to 2.8 × 1018 cm?3 for which the effective mass was found to be equal to 0.55–0.76m0. The Hall mobility, about 450cm2V?1s?1 at room temperature, obeys a T?32 law at high temperatures. On the basis of the electrical measurements the forbidden gap of Th3As4 was found to be equal to 0.43 eV.  相似文献   

6.
The multiplet splitting patterns of microwave transitions in the ground state and the first two torsional excited states of CH3OCH3, CD3OCD3, and CD3OCH3 were analyzed in terms of the semirigid rotor models C2vF-C3vT-C3vT and C3F-C3vT-C3vT?. The following nonzero potential coefficients were obtained for CH3OCH3: V30 = V03 = 909.05 ± 0.49 cm?1, V33 = 5.06 ± 1.60 cm?1; for CD3OCH3: V30(CD3) = 897.18 ± 2.41 cm?1, V03(CH3) = 910.45 ± 0.33 cm?1; for CD3OCD3: V30 = V03 = 897.00 cm?1. These results are compared to earlier microwave studies of these molecules.  相似文献   

7.
Fluorescence quantum yields and lifetimes of the above given cations in selected levels within their lowest excited electronic states have been measured by a photoelectron—photon coincidence technique. These data, obtained under collision-free conditions, lead to the radiative and non-radiative rate constants as a function of the internal energy. The symmetry of the A$?state is 2A1 (X = CH3, CD3), 2Σ+ (X = Cl), but 2Π (X = Br, I) and the corresponding kr values for these two groups, 1–2 × 106s?1 and 2 × 107s?1 respectively, reflect the different nature of the transitions. Other essential features of the results are discussed.  相似文献   

8.
The ν4 infrared and Raman bands of CH3Cl were analyzed simultaneously. A direct fit yielded a complete set of constants for CH335Cl, including A0 = 5.20530 ± 0.00010 cm?1 and DK = (8.85 ± 0.13) × 10?5cm?1. For CH337Cl an incomplete set of constants was obtained from the infrared band, and A0 = 5.2182 ± 0.0010 cm?1 was estimated by curve fitting of the Raman spectrum. The resulting equilibrium structure is r(CH) = 1.0854 ± 0.0005 A?, r(CCl) = 1.7760 ± 0.0003 A?, and <(HCH) = 110°.35 ± 0°.05.  相似文献   

9.
LiFeCl4 and AgFeCl4 are obtained by direct reaction between LiCl or AgCl and FeCl3 at 300°C and 400°C respectively. Both compounds are monoclinic with a = 7.02 (1) A?, b = 6.33 (1) A?, c = 12.72 (4) A?, β = 92° (30') for LiFeCl4 and a = 10.60 (5) A?, b = 6.30 (5) A?, c = 12.34 (10) A?, β = 106° (1) for AgFeCl4.LiFeCl4 is clearly isotypic of LiAlCl4. Magnetic measurements characterize in both cases Fe3+ ions in a high spin tetrahedral situation. LiFeCl4 becomes antiferromagnetic at low temperature (TN?10 K). AgFeCl4 reveals a more complex situation. On contrary to the silver derivative, LiFeCl4 is a good ionic conductor with activation energy of 0.78 eV in the solid state below 105°C, and a sharp increase in the lithium mobility at this temperature.  相似文献   

10.
ESR spectra of V2O5?MO2 (M = Ge, Se, Te) glasses are investigated in the range 298–498 K. The spectra at 298 K are characteristic of V4+ with the 3d1 electron localized on a single 51V (I = 72) in the glass network. At higher temperature, the hyperfine structure progressively broadens, leading eventually to a broad, single ESR peak. These results are consistent with thermally-induced electron hopping from V4+ to V5+. Photoacoustic spectra of the glass at 298 K are characteristic of V4+ in a distorted octa environment. A correlation of ESR and PAS data suggests that covalency increased as M is charged from Ge through Te to Se.  相似文献   

11.
Thermoelectric power using reversible silver electrodes and electrical conductivity on the compressed pellets of (Me4N)2Ag13I15, and (Et4N)2Ag13I15 have been measured between room temperature and below 160°C. The results of θ can be expressed by the equations:?θ = 0.115 (103/T)+0.2905VK?1 and ?θ = 0.150 (103/T) + 0.305mV K?1; and those of conductivity by the equations; σ = 28.7 exp (?0.17eV/kT) ohm?1cm?1 and σ = 216.6 exp (?0.24eVkT) ohm?1cm?1; respectively for Me- and Et-electrolytes. The results are discussed and compared with those of previous authors.  相似文献   

12.
The sound velocities in GeS2 glass have been measured by means of ultrasonic interferometry as a function of temperature or pressure up to 1.8 kbar. The bulk modulus Ks = 117.6 kbar and shear modulus G = 60.60 kbar were obtained for GeS2 glass at 15°C and 1 atm. The temperature derivatives of both sound velocities and elastic moduli are negative :
(1?T)
p =
?1.54 × 10?4 kmsec
°C,
(1?T)
p =
?1.27× 10?4 kmsec
°C and
(?Ks?T)
p =
?1.27 × 10?2kbar°C
,
(?G?T)
p = ?1.23 × 10?2 kbar/°C,
(?Y?T)
p = ?2.93 × 10?2 their pressure derivatives are positive:
(1?P)
T = 4.43× 10?2km/kbar,
(1?P)
T =
0.633 × 10?2kmkbar
and (?Ks?P0)T=6.81,
(?G?P)T
= 1.03, (?Y?TT= 3.57. The Grüneisen parameter, γth= 0.298, and the second Grüneisen parameter, δs = 3.27, have also been calculated from these data. The elastic behavior of GeS2 glass has proved to be normal despite the structural similarity among the tetrahedrally coordinated SiO2, GeO2 and GeS2 glasses.  相似文献   

13.
An EPR study of tetravalent vanadium centers created by room temperature X-irradiation in CaF2 and SrF2 is presented. The production efficiency of these centers is enhanced by previous annealing of the samples at 1000 K in air. The symmetry of V4+ ions is tetragonal and its EPR spectrum can be described by an axial spin Hamiltonian including a Zeeman and hyperfine term with S = 12 and I = 72 (corresponding to 51V nuclei). The following values for the spin Hamiltonian parameters are obtained g = 1.947 ± 0.002, g = 1.935 ± 0.005, A = 500 ± 5 MHz, A = 150 ± 10 MHz in the case of SrF2 and g = 1.945 ± 0.002, A = 505 ± 5 MHz and A < 200 MHz, in the case of CaF2. A model for the center including an interstitial O2? ion is tentatively proposed.  相似文献   

14.
The bending vibration bands ν4 and ν5 of HCCI were studied. From the observed rotational structure the rotational constant B0 and the centrifugal distortion constant D0 were obtained. The results were B0 = 0.105968(7) cm?1 and D0 = 1.96(7) × 10?8 cm?1 from ν4 and B0 = 0.105948(8) cm?1 and D0 = 1.96(11) × 10?8 cm?1 from ν5. The structure of the hot bands 2ν5(Δ) ← ν5(Π) and 3ν5(φ) ← 2ν5(Δ) was also resolved and hence the values α5 = ?3.033(8) × 10?4 cm?1 and q5 = 9.3(3) × 10?5 cm?1 could be derived. The other most intense hot bands following ν5 could be explained in terms of the Fermi diads ν350 and ν3 + ν5±15±1. Of the numerous hot bands accompanying ν4, only those between different excited states of ν4 could be assigned. Then estimates for α4 and q4 were also obtained. In addition, several vibrational constants were derived.  相似文献   

15.
The E-B (0g+-0u+) band system of Br2 has been investigated at Doppler-limited resolution using polarization labeling spectroscopy. Merged E state data for the three naturally occurring isotopes in the range vE = 0–16, expressed in terms of the constants for 79Br2, are (in cm?1) Y0,0 = 49 777.962(54), Y1,0 = 150.834(22), Y2,0 = ?0.4182(28), Y3,0 = 6.6(11) × 10?4, Y0,1 = 4.1876(28) × 10?2, Y1,1 = ?1.607(16) × 10?4, and Y0,2 = 1.39(39) × 10?8. The bond distance is re = 3.194 A?, and the diabatic dissociation energy to Br+(3P2) + Br?(1S0) is 34 700 cm?1.  相似文献   

16.
The X-ray structure (293 K) of UO2(H2PO4)2·3H2O has been refined (R = 0.062): Mr = 518g, space group: P21/c (Z = 4); a = 10.816(1) A?, b = 13.896(2) A?, c = 7.481(1) A?, β = 105.65(1)°, V = 1082.7(2) A?3; Dc = 3.17 Mg m?3. The structure consists of infinite chains along the (101) axis with U atoms bridged by two H2PO4 groups. The U atom is surrounded by a pentagonal bipyramid of oxygen atoms, one of them being an equatorial water molecule. The cohesion between the chains is ensured by hydrogen bonds involving the two last water molecules. An assignment of IR and Raman bands with isotopic substitution spectra is proposed. A phase transition at 128 K was made evident by DSC and spectroscopy. The room-temperature phase is characterized by a high disorder of the OH bond orientation while in the low-temperature phase H2O and POH species appear well oriented. The conductivity seems to occur by proton transfer and protonic-species rotation at the POH-water molecular interface between the chains. ac conductivity has been determined by means of the complex-impedance method (σRT ~ (3?12) × 10?5 Ω?1cm?1; E ~ 0.20 eV).  相似文献   

17.
The X-band EPR spectrum of SrCl2:V has been measured at liquid nitrogen temperature. A signal associated with V2+ in a site of trigonal symmetry is observed. The EPR data have been explained using the spin hamiltonian = μβHg?S + D[S2z ? 13S(SH)] + SA?I, with D ? hv, g = 1.957 ± 0.004, g6 = 1.954 ± 0.004, A = 230 ± 5 MHz, A6 = 235 ± 5 MHz. This V2+ defect is similar to those previously reported in fluoride crystals with the fluorite structure.  相似文献   

18.
The gas phase infrared spectra of monoisotopic H3Si35Cl and H3Si37Cl have been studied in the ν1ν4 region near 2200 cm?1 with a resolution of 0.012 and 0.04 cm?1, respectively, and rotational fine structure for ΔJ = ±1 branches has been resolved. In addition, some information on ν3 + ν4 of H3Si35Cl near 2750 cm?1 has been obtained. ν1 and ν4 are weakly coupled by Coriolis x, y resonance, BΩ14ζ14 ~ 2 × 10?3cm?1, only the upper states K′ = 2, l = 0 and K′ = 1, l = ?1 being substantially affected. Local perturbation due to rotational l(±1, ±1)-type resonance with ν3 + ν5+1 + ν6+1 and ν3 + ν5+1 + ν6?1 is revealed in the ΔK = +1 and ?1 branches, respectively. From a fit of the experimental line positions, standard deviations of 1.4 and 3.8 × 10?3 cm?1, respectively, to a model with five interacting levels conventional excited state parameters and interaction constants have been obtained. In H3Si35ClH3Si37Cl the fundamentals are ν1, 2201.94380(15)2201.9345(7) and ν4, 2209.63862(8)2209.6254(2) cm?1, respectively. Q branches of the “hot” band (ν3 + ν4) ? ν3 and of ν4 of the 29Si and 30Si species have been detected.  相似文献   

19.
Single phase of Li3AlN2 was prepared from the mixture of Li3N/AlN = 1.2 to 1.5 in molar ratio at 700°C and at 900°C. It crystalizes in the cubic system derived from antifluorite-type structure having the lattice parameter a = 9.470 A?. It is a pure ionic conductor having conductivity of 5 × 10?8ω?1cm?1 at room temperature and an activation energy of 52 kJ/ mol. Its decomposition voltage was 0.85 V at 104°C. The TiS2/Li3AlN2/Li cell could be discharged at a constant current of 45 μA/cm2 at 104°C.  相似文献   

20.
The parallel magnetic susceptibility χ of a uniaxial ferromagnet ErCl3·6H2O has been measured between 0.3 and 4.2K and specially near Tc = 0.353 K. The predominant contribution to the Curie-Weiss temperature is due to the dipolar interactions. χ is proportional to ? with ? =TTc?1 in the range 10?3 < ? < 5 × 10?2. The γ value, γ = 1.01 ±0.03 is consistent with the theoretical prediction for a uniaxial dipolar ferromagnet.  相似文献   

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