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1.
A comprehensive high resolution spectroscopic analysis has been made on the XeO green bands photographed in emission from an RF discharge source. Rotation-vibration constants derived from the analysis of the spectrum of the isotopically enriched species 129Xe16O and 129Xe18O were used to give RKR potential curves for the d1Σ+ and b1Π states. The bond distances and dissociation energies of the d1Σ+ and b1Π states were respectively found to be re = 2.852 ± 0.002 A?, De = 693 ± 10 cm?1 and re = 2.548 ± 0.002 A?, De = 461 ± 10 cm?1. For the a1Σ+ state it was not possible to establish a unique vibrational numbering or to construct an RKR potential curve, since observed bands of the d1Σ+a1Σ+ system involve only high vibrational levels of the a1Σ+ state, which are severely predissociated. The observations are consistent with a fairly deep well, in agreement with the latest ab initio calculations which give a well depth of 0.7 eV.  相似文献   

2.
Magnetic dipole transitions between the 2Π12 and 2Π32 components of the ground electronic state of BrO have been detected using the technique of laser magnetic resonance on three CO2 laser lines between 964 and 970 cm?1. This is the first direct observation of the 2Π12 state in BrO. The spin-orbit splitting parameter, A, is determined to be ?967.9831(2) cm?1 for 79Br16O and ?967.9981(2) cm?1 for 81Br16O. Accurate values for the rotational constant Beff(2Π12), the hyperfine parameters (bF + 2c3) and d, the Λ-doubling parameter p, and the Zeeman parameter g| are also determined from an analysis of the measured spectra.  相似文献   

3.
A diode laser spectrometer (resolution 0.0013 cm?1) was used to record, in the 12-μm region, high-quality spectra of the ν2 band of NO2. Using these spectra, it was possible to obtain the N2-broadening coefficients and an average self-broadening coefficient from measurements made for seven lines of this band. In addition, 30 single spin-component line intensities were measured. From them, through a least-squares fit, the purely vibrational transition moment of the ν2 band, as well as two correcting rotational terms involved in the expansion of the transition moment operator, were obtained. These results led to the determination of the dipole moment derivative x?q2 = ?0.06041 ± 0.0037 D. It was also demonstrated that there is good consistency between the correcting terms deduced from the observed intensities and their theoretical estimates. Finally, a complete spectrum of the ν2 band of NO2 was computed, providing a total band intensity Sv(ν2) = 0.542 × 10?18cm?1/molecule cm?2 at 296 K.  相似文献   

4.
(Dimethyldiphenylphosphonium)+(7,7,8,8-tetracyanoquinodimethanide)?2 is monoclinic, space group Cc, with a = 32.01(2), b = 6.56(1), c = 15.72(2)A?, β = 107.4(8)°. The TCNQ's stack plane-to-plane in columns parallel to b with (i) a mean interplanar spacing of 3.28 Å along the conducting chains and (ii) an exocyclic bond to quinonoid ring overlap of adjacent molecules. The conductivity along b, the needle axis, varies as σ = σ0exp (?EakT) where σ300 K = 0.05 S cm?1 and Ea = 0.20 eV (Diethyldiphenylphosphonium)+(7,7,8,8-tetracyanoquinodimethanide)?2 is similarly monoclinic, space group Cc, with a = 31.48(2), b = 6.51(1), c = 15.48(2) A?, β = 104.2(8)°. The conductivity at 300 K and activation energy, both determined along b, are 1–10 S cm?1 and 0.05 eV respectively. There is evidence of a lattice distortion in the dimethyl analogue only.  相似文献   

5.
The ν1 bands of HO35Cl and HO37Cl have been recorded. Both the A- and B-type rotational transitions of these hybrid bands have been completely assigned, and spectroscopic constants have been obtained for both the ground and upper state. The ratio of the electric dipole moment derivatives (a?Q1)(b?Q1 has been found to be 0.985 ± 0.05 for ν1.  相似文献   

6.
Pulsed field experiments up to 450 kOe have been performed on FeSiF6.6H2O. We interpret the data: (i) in terms of spin hamiltonian constants: D = 12.3± 0.2 cm-1 (E = 0.54cm-1 being known from EPR data); (ii) in terms of axial-crystal-field parameters: δλ = orbital trigonal splitting/spin-orbit coupling = 15 ± 2; λ = -100 ± 7cm?1. The magnetic axis is found to deviate from the cristallographie c axis by an angle 1° < θ < 2°. The adiabatic cooling obtained during the pulse is discussed.Similar experiments on Fe0.15Zn0.85SiF6.6H2O and Fe0.30Zn0.70SiF6.6H2O single crystals are reported; in both cases we measure Dg = 6.0 ± 0.1cm-1. Using EPR data, we obtain D = 14.3cm-1, λ ~ ?75cm-1, δ ~ 195cm-1; using Mössbauer data, we obtain D = 15.3cm-1, λ ~ ?88cm-1, δ ~ 185cm-1.  相似文献   

7.
The absorption spectra of Na2[Fe(CN)5NO] · 2H2O were measured in the visible region in the range of 3400–7000 Å. In the metastable state, an additional absorption band in the long wavelength range is observed and the transition 2b2(dxy)→7e(π1?NO) becomes weaker in the excited state indicating a population of the π1(NO)-orbital. The laser excited emission spectrum shows a broad luminescence beginning at the excitation line λ = 5145A? (19,436 cm-1) with a maximum at about 6250 Å (16,000 cm-1). A strong sharp luminescence at about 7836 Å is registered and may be assigned to a transition 3b1(dx2?y2) or 5a1(dz2) to the antibonding π1(NO)- orbital. Further the broad luminescence is superimposed by a series of sharp spikes. These sharp spikes can also be observed for several days, when the laser is switched off, and are depending on the crystal orientation.  相似文献   

8.
The Raman active fundamentals ν1(A1g), ν2(Eg), ν5(F2g), and the overtone 2ν6 of SF6 have been investigated with a higher resolution and the band origins were estimated to be: ν1 = 774.53 cm?1, ν2 = 643.35 cm?1, ν5 = 523.5 cm?1, and 2ν6 = 693.8 cm?1. Raman and infrared data have been combined for estimation of several anharmonicity constants. The ν6 fundamental frequency is calculated as 347.0 cm?1. From the analysis of the ν2 Raman band, the following rotational constants of both the ground and upper states have been calculated:
B0 = 0.09111 ± 0.00005cm?1; D0 = (0.16±0.08)10?7cm?1
;
B2 = 0.09116 ± 0.00005cm?1; D2 = (0.18±0.04)10?7cm?1
.  相似文献   

9.
The wavenumbers of the vibration rotation band lines of 14N16O are reported for the 2Π12-2Π12, 2Π12-2Π12 and 2Π12-2Π12 subbands of the 1-0 transition in the infrared. The full set of spectroscopic constants for this band has been determined by direct approach using the analysis of Zare, Schmeltekopf, Harrop, and Albritton. In addition to the band origin ν0 and the B, D, H constants for the lower and upper vibrational levels, the following spin-orbit coupling constants have been derived: A?0 = 123.02772 ± 0.00011 and A?1 = 122.78248 ± 0.00011 (in cm?1). Apparent centrifugal corrections to these constants have been determined and the values obtained for them are A?D0 = (0.347573 ± 0.00051) × 10?3 and A?D1 = (0.337135 ± 0.00050) × 10?3cm?1. Λ-Type doubling constants evaluated by using both grating and tunable laser data are also reported.  相似文献   

10.
The polarized low-temperature crystal absorption spectra of tetramethyl-1,3-cyclobutanedithione-h12 and -d12 have been measured in the visible region, and 1 excited states identified as follows: 3Au with origin (h12d12) at 16 82916 836cm?1; 1Au and 1B10 with nearly degenerate origins near 18 000 cm?1; and probably 1Au and 1B1g near 19 500 cm?1. The singlet excited states lie close together and perturb each other strongly. As in the corresponding dione, CHCD stretching vibrations of the substituent methyl groups are active in intensity borrowing, and the effects of excitation are delocalized over the entire molecule.  相似文献   

11.
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   

12.
Laser-induced fluorescence excitation has been used to measure Stark splittings of selected lines in the A?1A2-X?1A1 and a?3A2-X?1A2 band systems of H2CS in electric fields up to 13 kV/cm. The derived excited state a-axis dipole moments are 0.820 ± 0.007 D for the 41 level of the 1A2 state; 0.838 ± 0.008 D for the zeroth vibrational level of 1A2; and 0.534 ± 0.015 D for the zeroth vibrational level of the 3A2 state. These results are compared with the corresponding values of H2CO, and interpreted in terms of the changing localization of the π and π1 orbitals accompanying electronic excitation.  相似文献   

13.
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   

14.
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   

15.
A weak emission spectrum of I2 near 2770 Å is reanalyzed and found to to minate on the A(1u3Π) state. The assigned bands span v″ levels 5–19 and v′ levels 0–8. The new assignment is corroborated by isotope shifts, band profile simulations, and Franck-Condon calculations. The excited state is an ion-pair state, probably the 1g state which tends toward I?(1S) + I+(3P1). In combination with other results for the A state, the analysis yields the following spectroscopic constants: Te = 10 907 cm?1, De = 1640 cm?1, ωe = 95 cm?1, R″e = 3.06 A?; Te = 47 559.1 cm?1, ωe = 106.60 cm?1, R′e = 3.53 A?.  相似文献   

16.
Abnormally low frequencies observed for the out-of-plane vibration (b1) of the A?1A2 electronic state of formaldehyde (H2CO) and for the analogous carbonyl hydrogen vibration (a″) of A?1A″ propynal (HCCCHO) are modeled by means of two-state calculations of vibronic coupling with higher singlet states, 1B2 and 1A′, respectively. In each case, the active vibration is the out-of-plane hydrogen motion. The same vibronic calculations reproduce also the large positive anharmonicities of the active vibrations in the A?1, n) states; for H2CO the calculated vibrational spacing alternates as observed, consistent with the known nonplanar structure, while in propynal the calculated spacing increases regularly, thus predicting an effectively planar structure. The nonplanarity of H2CO is caused mainly by a vibronic coupling constant nearly twice that of propynal. The H2CO coupling constant is near the value estimated independently by means of the intensity “borrowed” by the S1-S0 transition from the much stronger S2-S0 transition. Brief consideration is given to analogous vibrational levels of the 1A2 state of H2CS and of the 3A2 state of D2CO in the vibronic context of this paper.  相似文献   

17.
Forty lines of the microwave spectra of D217O and D218O have been measured in the region from 8 to 400 GHz and analyzed according to Watson's centrifugal distortion theory. Comparison of the results obtained for D216O, D217O, and D218O demonstrates their internal consistency. The transferability of the parameters according to the isotopic substitution rules is evidence for the validity of the model chosen for the study of the ground state of heavy water.The effective rotational constants deduced from the observed spectra are very close to the values calculated using Oka's second order theory. The values obtained in MHz are:
A = 456766.9,B = 218041.0,C = 144701.5(D217O;)
A = 451891.9,B = 218045.2,C = 144201.7(D218O;).
The hyperfine structure of the D217O lines has been analyzed using as a reference the corresponding quadrupole coupling tensor of HD17O with the appropriate rotation. The values of χgg in MHz used for the analysis are:
xχχ = - 1.2104,xyy = 10.1068,xzz = - 8.8964.
  相似文献   

18.
The rotational structure of about 40 bands of 12C2HD observed in the region 6000?600 cm?1 has been measured and interpreted with the purpose of determining a comprehensive set of molecular constants for this isotopic variety of acetylene. Combining these data with the results for 12C2H2 and 12C2D2, a reevaluation of the equilibrium internuclear distances for the acetylene molecule has been made: re(CH) = 1.06215 ± 17 × 10?5A? and re(CC) = 1.20257 ± 9 × 10?5A? were obtained. This paper presents all the molecular constants derived in this study.  相似文献   

19.
The rotational motion of the OH? ion was studied in cubic NaOH at 575 K with quasielastic incoherent neutron scattering. The data are compared to two simple models yielding values for the radius of rotation R, the translational mean square displacement 〈u2H, the rotational jump rate τ?1 and the rotational diffusion coefficient DR. The following parameter values are obtained: (a) rotational jump model: R = 0.95 A?, 〈u2H = 0.052 A?2, τ?1 = 2 meV, (b) rotational diffusion model: R = 0.99 A?, 〈u2H = 0.046 A?2, DR = 0.72 meV.  相似文献   

20.
The disagreement of Danyluk and King's (Chem. Phys.25, 343 (1977)) rotational constants for levels lying near the dissociation limit of B-state I2 with the mechanical behavior predicted by near-dissociation theory is investigated. The discrepancies are shown to be much too large to be explained by either the neglect of centrifugal distortion effects in the original analysis or by rotational or spin-rotation coupling to a nearby repulsive 1u state. These differences are therefore attributed to experimental error, a conclusion which is confirmed by more recent experimental results. A reanalysis of the best available data for levels near the dissociation limit of B-state I2 then yields improved values for the B-state dissociation limit D = 20 043.16 (±0.02) cm?1 of the vibrational index at dissociation vD = 87.32 (±0.04) and of the long-range potential constant C5 = 2.88 (±0.03) × 105cm?1A?5. This in turn implies a slightly improved ground-state dissociation energy of D0 = 12 440.18 (±0.02) cm?1.  相似文献   

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