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1.
The 2,3-13C2 isotopomer of butadiene was synthesized, and its fundamental vibrational fundamentals were assigned from a study of its infrared and Raman spectra aided with quantum chemical predictions of frequencies, intensities, and Raman depolarization ratios. For two C-type bands in the high-resolution (0.002 cm−1) infrared spectrum, the rotational structure was analyzed. These bands are for ν11 (au) at 907.17 cm−1 and for ν12 (au) at 523.37 cm−1. Ground state and upper state rotational constants were fitted to Watson-type Hamiltonians with a full quartic set of centrifugal distortion constants and two sextic ones. For the ground state, A0 = 1.3545088(7) cm−1, B0 = 0.1469404(1) cm−1, and C0 = 0.1325838(2)  cm−1. The small inertial defects of butadiene and two 13C2 isotopomers, as well as for five deuterium isotopomers as previously reported, confirm the planarity of the s-trans rotamer of butadiene.  相似文献   

2.
The emission spectra of CaH and CaD have been recorded at high resolution using a Fourier transform spectrometer and bands belonging to the E2Π-X2Σ+ transition have been measured in the 20 100-20 700 cm−1 region. A rotational analysis of 0-0 and 1-1 bands of both the isotopologues has been carried out. The present measurements have been combined with the previously available pure rotation and vibration-rotation data to provide improved spectroscopic constants for the E2Π state. The constants ΔG(½) = 1199.8867(34) cm−1, Be = 4.345032(49) cm−1, αe = 0.122115(92) cm−1, re = 1.986633(11) Å for CaH, and ΔG(½)=868.7438(46) cm−1, Be = 2.212496(51) cm−1, αe = 0.036509(97) cm−1, re = 1.993396(23) Å for CaD have been determined.  相似文献   

3.
The B2Σ+ → X2Σ+ (0-1, 2, 3, 4 progression) electronic transition of 12C17O+ was first observed and analyzed by Szajna and Ke¸pa [Spectrochim. Acta A 65 (2006) 1014-1020]. We have now extended our previous studies. The use of high resolution conventional spectroscopic techniques has allowed first rotational analysis of the 1-2, 1-3, 1-4 and 1-5 bands of the first negative system in the 37,000-43,000 cm−1 spectral region. Approximately 500 transition wavenumbers were measured with an estimated accuracy of 0.005 cm−1. The present data were combined with the previous measurements to yield an improved set of molecular constants for the B2Σ+(v′ = 0, 1) and X2Σ+(v″ = 1, 2, 3, 4, 5). The v′ = 1 and v″ = 5 vibrational levels were observed for the first time and the main molecular constants are (in cm−1, one standard deviation in parentheses)
B2Σ+X2Σ+
B1 = 1.710792(20)B5 = 1.825694(23)
D1 = 7.799(15) × 10−6D5 = 6.085(21) × 10−6
γ1 = 1.9491(37) × 10−2γ5 = [8.381] × 10−3
Full-size table
  相似文献   

4.
A combined analysis of the A2Πi → X2Σ+ and B2Σ+ → X2Σ+ band systems of AlO, involving 21,500 line assignments, has been performed. The analysis indicates that the previously reported γ values of the B2Σ+ state are questionable. The present analysis shows that γ(B2Σ+) ≈ 0.014 cm−1, essentially independent of the vibrational level. The positive sign is consistent with second order interaction with the higher-lying C2Πr and lower-lying A2Πi states. It also appears that many of the previously reported γ and γD values of X2Σ+ (v > 0) are doubtful. In fact, γ(X2Σ+) is observed to become increasingly negative for v″ > 1, due to second order interaction with the low-lying A2Πi state. The present results are based on models where the hyperfine structure of the 2Σ+ states has been taken into account explicitly. Intensity patterns of the branches of the B2Σ+ → X2Σ+ system have been shown to be influenced by the case S coupling in the ground state v = 0,1 levels. This gives rise to intensity differences of around 10 percent in the R1/R2 and P1/P2 doublet components. The synthesized intensity patterns are fully in accord with the F1/F2 assignments of the present work.  相似文献   

5.
The ESR spectrum of Mn2+ doped potassium hydrogen sulphate at liquid nitrogen temperature (77 K) has been analyzed and site of entered Mn2+ in the lattice has been discussed. The values of the zero field parameters that give good fit to the observed ESR spectra have been obtained. The obtained g, A, B, D, E and a values are 2.0002, 66×10−4 cm−1, 26×10−4 cm−1, 59×10−4 cm−1, 32×10−4 cm−1 and −8×10−4 cm−1, respectively. The percentage of covalency of the metal-ligand bond has also been estimated. From the optical absorption study at room temperature, the distortion has been suggested. The observed bands are assigned as transitions from the 6A1g(S) ground state to various excited quartet levels of Mn2+ ion in a cubic crystalline field. The electron repulsion and crystal field parameters B, C, Dq and α providing good fit to the observed optical spectra have been evaluated and the values obtained for the parameters are B=627 cm−1, C=2580 cm−1 , Dq=790 cm−1 and α=76 cm−1.  相似文献   

6.
The microwave spectra of cyclohexanone oxime and d1 (=NOD) and d4(2,2,6,6-d4) derivatives were observed in the frequency range from 8 to 40 GHz in the ground and excited vibrational states. The rotational constants were determined to be A = 3799.844(48), B = 1513.7912(23), and C = 1189.6118(29) MHz for normal species, A = 3791.835(88), B = 1461.0324(47), and C = 1157.5653(53) MHz for d1 species, and A = 3364.141(49), B = 1487.9551(34), and C = 1154.0965(44) MHz for d4 species in the ground vibrational state. The planar moments, Pbb (Pbb = (Ic + Ia − Ib)/2) of normal, d1, and d4 species were determined to be 111.9885(26), 111.9817(46), and 124.2394(49) uÅ2, respectively. The almost same values of Pbb of normal and d1 species suggest that the hydroxyl hydrogen atom is very close to the a-c plane. From the rs coordinates of the hydroxyl hydrogen atom, the OH bond was found to be at the trans position with respect to the CN double bond. The conformation of cyclohexanone oxime was determined to be chair form by comparing the observed and calculated rotational constants, ΔI, and planar moments, and taking account of the calculated the relative energy difference, ΔE. The structural parameters, the three bond lengths, three bond angles, and three dihedral angles, were adjusted to the nine rotational constants observed. The bond angle of ∠C2C1N is much wider than that of ∠C6C1N by about 10°. The dihedral angles of ∠C1C2C3C4, ∠C2C3C4C5, and ∠C3C4C5C6 were determined to be 53.3(5), −57.2(5), and 57.2(5)°. Two vibrational modes were assigned to the ring-bending and ring-twisting ones, which are almost harmonic up to v = 3.  相似文献   

7.
The kinetics for the reactions of C6H5 with phenylacetylene and styrene have been measured by CRDS in the temperature range 297-409 K under an Ar pressure of 3.6 Torr. The total rate constants can be given by the following Arrhenius expressions (in units of cm3 mol−1 s−1): k1(C6H5 + C6H5C2H) = 1013.0±0.1exp [−(2430 ± 150)/RT] and k2(C6H5 + C6H5C2H3) = 1013.3±0.1 exp [−(2570 ± 180)/T]. Additional DFT and MP2 calculations have been carried out to assist our interpretation of the measured kinetic data. The addition of C6H5 to the terminal CHx (x = 1 or 2) sites is predicted to be the dominant channel for both reactions. The calculated bimolecular rate constants are in reasonable agreement with experimental values for the temperature range studied.  相似文献   

8.
The millimeter wave spectrum of the isotopically substituted CO dimer, (13C16O)2, has been studied for the first time, confirming and extending a recent infrared study. Eighty-seven transitions in the 77-180 GHz region have been assigned and analyzed in terms of a model-independent term value scheme involving 57 rotational levels with J=0-8. The levels can be classified into 7 “stacks” which have symmetry classifications of either A/B+ or A+/B and K-values of either 0 or 1. For the normal isotope, symmetry and nuclear spin statistics cause alternate rotational levels to be missing, but for (13C16O)2 all levels are present with an intensity alternation of 1:3 between A and B symmetries. The four A/B+ stacks have not previously been observed, and the lowest of them establishes the tunneling splitting of (13C16O)2 to be 3.769 cm−1, slightly larger than the (12C16O)2 value of 3.731 cm−1. A large amount of precise experimental data is now available for the CO dimer, which should lead to greater theoretical insight into its structure and tunneling dynamics.  相似文献   

9.
The pure rotational transitions of HN2+ and DN2+ in the first excited vibrational states for all the fundamental vibrational modes have been observed in the range of 300-750 GHz. The molecular constants determined are much more accurate compared with those obtained from the infrared spectroscopy. The equilibrium rotational constants, Be = 46832.45 (71) MHz for HN2+ and Be = 38708.38 (58) MHz for DN2+, have been determined by correcting for the higher-order vibration-rotation interaction effects, γij, obtained by an infrared investigation. The equilibrium bond lengths are derived from these equilibrium rotational constants: re(H-N) = 1.03460 (14) Å and re (N-N) = 1.092698 (26) Å.  相似文献   

10.
11.
Rotationally resolved pulsed-field-ionization zero-kinetic-energy photoelectron spectra of the 00, 61 and 41 vibrational levels of the ground electronic state of the formaldehyde cation were recorded using a resonant three-color three-photon excitation scheme. The first adiabatic ionization energy of CH2O (87793.33(1.30) cm−1) and the rigid-rotor rotational constants (A+ = 8.874(8) cm−1, B+ = 1.342(15) cm−1, C+ = 1.148(18) cm−1) of the vibronic ground state of CH2O+ were derived. A strong a-type Coriolis interaction between the 61 and 41 vibrational levels was observed. The Coriolis coupling parameter and the deperturbed fundamental vibrational frequencies of the in-plane-rocking mode ν6 and the out-of-plane bending mode ν4 were determined to be 8.70(10) cm−1, 823.67(30) cm−1 and 1036.50(30) cm−1, respectively. The intensity distribution of the photoelectron spectra was analyzed in the realm of a simple photoionization model.  相似文献   

12.
Infrared spectra of bicyclo[1.1.1]pentane (C5H8) have been recorded at a resolution (0.0015 cm−1) sufficient to resolve for the first time individual rovibrational lines. This initial report presents the ground state constants for this molecule determined from the detailed analysis of three of the ten infrared-allowed bands, ν14(e′) at 540 cm−1, ν17 (a2″) at 1220 cm−1, ν18(a2″) at 832 cm−1, and a partial analysis of the ν11(e′) band at 1237 cm−1. The upper states of transitions involving the lowest frequency mode, ν14(e′), show no evidence of rovibrational perturbations but those for the ν17 and ν18 (a2″) modes give clear indication of Coriolis coupling to nearby e′ levels. Accordingly, ground state constants were determined by use of the combination-difference method for all three bands. The assigned frequencies provided over 3300 consistent ground state difference values, yielding the following constants for the ground state (in units of cm−1): B0 = 0.2399412(2), DJ = 6.024(6) × 10−8, DJK = −1.930(21) × 10−8. For the unperturbed ν14(e′) fundamental, more than 3500 transitions were analyzed and the band origin was found to be at 540.34225(2) cm−1. The numbers in parentheses are the uncertainties (two standard deviations) in the values of the constants. The results are compared with those obtained previously for [1.1.1]propellane and with those computed at the ab initio anharmonic level using the B3LYP density functional method with a cc-pVTZ basis set.  相似文献   

13.
The Fourier transform gas-phase infrared spectrum of pyrrole, C4H5N, has been recorded with a resolution of ca. 0.003 cm−1 in the 900-1500 cm−1 spectral region. Four fundamental bands, ν8(A1; 1016.9 cm−1), ν23(B2; 1049.1 cm−1), ν7(A1; 1074.6 cm−1), ν20(B2; 1424.4 cm−1) and the overtone band 2ν16(A1; 962.7 cm−1) have been analysed using the Watson model. The ν8 and 2ν16 bands are unperturbed; the ν7 and ν23 bands are locally perturbed, while the ν20 band is globally perturbed by weak c-Coriolis resonance. Upper state vibrational term values, and rotational and centrifugal distortion constants, have been obtained from fits using S-reduction and Ir-representation as well as A-reduction and IIIr-representation. A set of ground state rotational and centrifugal distortion constants using A-reduction was obtained from a simultaneous fit of ground state combination differences from all five bands and previous microwave and millimetre-wave data.  相似文献   

14.
The Fourier transform gas-phase IR spectrum of 1,2,5-thiadiazole, C2H2N2S, has been recorded with a resolution of ca. 0.003 cm−1 in the wavenumber region 750-1250 cm−1. Five fundamental bands in this region, ν4 (A1), ν5 (A1), ν11 (B1), ν13 (B1), and ν14 (B2), have been analysed by the Watson Hamiltonian model to yield ground-state rotational and quartic centrifugal distortion constants as well as upper-state spectroscopic constants. A global perturbation of the ν4 level is explained by Fermi resonance with the 2ν15 level which has been located from its resonance effect. Rotational constants, harmonic and anharmonic frequencies have been calculated using a cc-pVTZ basis, at the MP2 and B3LYP methodology levels, and compared with the experimental data.  相似文献   

15.
Fourier transform spectra of mono-13C ethylene have been recorded in the 8.4-14.3-μm spectral region (700-1190 cm−1) using a Bruker 120 HR interferometer at a resolution of 0.0017 cm−1 allowing the extensive study of the set of resonating states {101, 81, 71, 41, 61}. Due to the high resolution available as well as the extended spectral range involved in this study, a much larger set of line assignments are now available. The present analysis has lead to the determination of more accurate spectroscopic constants, including interaction constants, than were obtained in earlier studies. In particular, the following band centers were derived: ν0(ν10) = 825.40602(30) cm−1, ν0(ν8) = 932.19572(15) cm−1, ν0(ν7) = 937.44452(10) cm−1, ν0(ν4) = 1025.6976(14) cm−1. Finally a synthetic spectrum was generated leading to the assignment of a number of 13C12CH4 lines observed in an earlier heterodyne spectroscopic study.  相似文献   

16.
Emission spectra of the b1Σ+(b0+) → X3Σ(X10+,X21) and a1Δ(a2) → X21 transitions of AsBr have been measured in the near-infrared spectral region with a Fourier-transform spectrometer. The arsenic bromide radicals were generated in fast-flow systems by reaction of arsenic vapor (Asx) with bromine and were excited by microwave-discharged oxygen. The most prominent features in the spectrum are the Δv = +1,0,−1, and −2 band sequences of the b1Σ+(b0+) → X3Σ(X10+) transition in the range 11 700-12 700 cm−1. With lower intensities, the Δv = 0 and −1 sequences of the b1Σ+(b0+) → X3Σ(X21) sub-system show up in the same range. Further to the red, between 6000 and 6700 cm−1, the Δv = 0, +1, and −1 sequences of the hitherto unknown a1Δ(a2) → X21 transition are observed. Analyses of medium- and high-resolution spectra have yielded improved molecular constants for the X10+, X21, and b0+ states and first values of the electronic energy and the vibrational constants of the a2 state.  相似文献   

17.
EPR study of the Cr3+ ion doped l-histidine hydrochloride monohydrate single crystal is done at room temperature. Two magnetically inequivalent interstitial sites are observed. The hyperfine structure for Cr53 isotope is also obtained. The zero field and spin Hamiltonian parameters are evaluated from the resonance lines obtained at different angular rotations and the parameters are: D=(300±2)×10−4 cm−1, E=(96±2)×10−4 cm−1, gx=1.9108±0.0002, gy=1.9791±0.0002, gz=2.0389±0.0002, Ax=(252±2)×10−4 cm−1, Ay=(254±2)×10−4 cm−1, Az=(304±2)×10−4 cm−1 for site I and D=(300±2)×10−4 cm−1, E=(96±2)×10−4 cm−1, gx=1.8543±0.0002, gy=1.9897±0.0002, gz=2.0793±0.0002, Ax=(251±2)×10−4 cm−1, Ay=(257±2)×10−4 cm−1, Az=(309±2)×10−4 cm−1 for site II, respectively. The optical absorption studies of single crystals are also carried out at room temperature in the wavelength range 195-925 nm. Using EPR and optical data, different bonding parameters are calculated and the nature of bonding in the crystal is discussed. The values of Racah parameters (B and C), crystal field parameter (Dq) and nephelauxetic parameters (h and k) are: B=636, C=3123, Dq=2039 cm−1, h=1.46 and k=0.21, respectively.  相似文献   

18.
The Fourier transform gas-phase IR spectrum of 1,2,3-thiadiazole, C2H2N2S, has been recorded with a resolution of ca. 0.003 cm−1 in the 700-1100 cm−1 spectral region. Four fundamental bands ν6(A/; 1101.8 cm−1), ν7(A/; 1038.8 cm−1), ν9(A/, 858.9 cm−1), and ν13(A//; 746.2 cm−1) have been analyzed using the Watson model in A-reduction. Two additional bands, ν8 (A/; 894.6 cm−1) and ν12(A//; 881.2 cm−1) were assigned by their weak Q-branches. Ground state rotational and quartic centrifugal distortion constants as well as upper state spectroscopic constants have been obtained from fits. A number of weak global and local interactions are present in the bands. The resonances identified were qualitatively explained by Coriolis type perturbations with neighboring levels. Ground state rotational and quartic centrifugal distortion constants, anharmonic frequencies, and vibration-rotational α-constants predicted by quantum chemical calculations using a cc-pVTZ basis and B3LYP methodology, have been compared with the present experimental data, where there is generally good agreement.  相似文献   

19.
The Fourier transform gas-phase IR spectrum of 1,3,4-thiadiazole, C2H2N2S, has been recorded with a resolution of ca. 0.003 cm−1 in the 800-1500 cm−1 spectral region. Five fundamental bands ν2(A1; 1391.9 cm−1), ν4(A1; 964.4 cm−1), ν5(A1; 894.6 cm−1), ν9(B1; 821.5 cm−1), and ν14(B2; 898.4 cm−1) have been analysed using the Watson model. Ground state rotational and quartic centrifugal distortion constants as well as upper state spectroscopic constants have been obtained from fits. The ν4 and ν9 bands are unperturbed while a strong c-Coriolis resonance perturbs the close-lying ν5 and ν14 bands. This dyad system has been analysed by a model including first and second order c-Coriolis resonance using the theoretically predicted Coriolis coupling constant . The ν2 band is strongly perturbed by a local resonance, and we obtain a set of spectroscopic parameters using a model including second order a-Coriolis resonance with the inactive ν10 + ν14 band. Ground state rotational and quartic centrifugal distortion constants, anharmonic frequencies, and vibration-rotational α-constants predicted by quantum chemical calculations using a cc-pVTZ basis and B3LYP methodology, have been compared with the present experimental data, where there is generally good agreement.  相似文献   

20.
The Fourier transform gas-phase IR spectrum of natural isotopic 1,2,5-selenadiazole, C2H2N2Se, has been recorded with a resolution of ca. 0.0025 cm−1 in the wavenumber region 600-1400 cm−1. The three a-type bands, ν2 (A1), ν4 (A1), ν5 (A1), the two b-type bands ν11 (B1), ν12 (B1), and the c-type band ν14 (B2) for each of the isotopologues C2H2N280Se and C2H2N278Se have been analyzed using the Watson model. Ground state rotational and quartic centrifugal distortion constants as well as upper state spectroscopic constants have been obtained from the fits. The rotational constants, harmonic and anharmonic frequencies, and vibration-rotation constants (alphas, ) have been predicted by quantum chemical calculations using a cc-pVTZ basis at the MP2 and B3LYP methodology levels, and compared with the present experimental data. Although the rotation constants are marginally closer to experiment from the MP2 calculations, in general the B3LYP frequencies and alphas are closer to experiment.  相似文献   

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