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1.
The infrared spectrum of isotopically pure CH279BrCl has been recorded at a resolution of 0.0023 cm−1 (FWHM) in the range 550-800 cm−1 with a Bruker IFS 120 HR Fourier transform spectrometer in Wuppertal. Here we report the full rotational analysis of the ν4 and ν5 fundamentals and of the hot-bands ν4+ν6ν6 and ν5+ν6ν6. Ground state combination differences were constructed for all bands, yielding improved ground state constants, up to quartic terms, as well as reliable rotational constants for the ν4, ν5, and ν6 states.  相似文献   

2.
The ν18 fundamental band (∼158 cm−1) of acrolein is studied at high resolution (0.0015 cm−1) using synchrotron radiation from the Canadian Light Source facility and a Bruker IFS 125HR Fourier transform spectrometer. By fitting this band, together with some pure rotational transitions, molecular parameters are obtained to accurately determine the energies of the ν18 = 1 state levels for values of (JKa) up to at least (45, 24). These parameters should be useful for future high resolution studies of acrolein hot bands. This is demonstrated here by a detailed analysis of the (ν17 + ν18) − ν18 hot band at ∼589 cm−1. The upper state (ν17 + ν18) of this band is found to be perturbed by Coriolis interactions analogous to those affecting the ν17 state.  相似文献   

3.
The spectrum of the ν7 band of cis-ethylene-d2 (cis-C2H2D2) has been recorded with an unapodized resolution of 0.0063 cm−1 in the 740-950 cm−1 region using a Bruker IFS 125 HR Fourier transform infrared spectrometer. By fitting 2186 infrared transitions of ν7 with a standard deviation of 0.00060 cm−1 using a Watson’s A-reduced Hamiltonian in the Ir representation, accurate rovibrational constants for ν7 = 1 state have been derived. The band center of ν7 has been found to be 842.20957 ± 0.00004 cm−1. In a simultaneous fit of 1331 infrared ground state combination differences from the present ν7 transitions, together with 22 microwave frequencies, ground state constants have been improved. The rms deviation of the ground state fit was 0.00027 cm−1.  相似文献   

4.
A high-resolution (0.002 cm−1) infrared absorption spectrum of methylene fluoride-d2 (CD2F2) of the lowest fundamental mode ν4 in the region from 460 to 610 cm−1 has been measured on a Bruker IFS 120-HR Fourier transform infrared spectrometer. More than 3500 transitions have been assigned in this B-type band centered at 521.9 cm−1. The data have been combined with upper state pure rotational measurements in a weighted least-squares fit to obtain molecular constants for the upper state resulting in an overall standard deviation of 0.00018 cm−1. Accurate value for the band origin (521.9578036 cm−1) has been obtained and inclusion of transitions with very high J (?60) and Ka (?34) values has resulted in improved precision for sextic centrifugal distortion constants, in particular DK, HKJ, and HK.  相似文献   

5.
This study provides the first direct experimental measurements of the off-diagonal relaxation matrix element coefficients for line mixing in air-broadened methane spectra for any vibrational band and the first off diagonal relaxation matrix elements associated with line mixing for pure methane in the ν2 + ν3 band of 12CH4. The speed-dependent Voigt profile with line mixing is used with a multispectrum nonlinear least squares curve fitting technique to retrieve the various line parameters from 11 self-broadened and 10 air-broadened spectra simultaneously. The room temperature spectra analyzed in this work are recorded at 0.011 cm−1 resolution with the McMath-Pierce Fourier transform spectrometer located at the National Solar Observatory, Kitt Peak, Arizona. The off-diagonal relaxation matrix element coefficients of ν2 + ν3 transitions between 4410 and 4629 cm−1 are reported for eighteen pairs with upper state J values between 2 and 11. The observed line mixing coefficients for self broadening vary from 0.0019 to 0.0390 cm−1 atm−1 at 296 K. The measured line mixing coefficients for air broadening vary from 0.0005 to 0.0205 cm−1 atm−1 at 296 K.  相似文献   

6.
High-resolution Fourier transform spectrum of phosphine (PH3) at room temperature has been recorded in the region of the 3ν2 band (2730-3100 cm−1) at an apodized resolution of 0.005 cm−1. About 200 vibration-rotation transitions have been least squares fitted with an rms of 0.00039 cm−1 after taking into account the ΔK = ±3 interaction.  相似文献   

7.
Ethylene (ethene, H2C=CH2) is a naturally occurring compound in ambient air that affects atmospheric chemistry and global climate. The C2H4 spectrum is available in databases only for the 1000 and 3000 cm−1 ranges.In this work, the ethylene absorption spectrum was measured in the 6030-6250 cm−1 range with the use of a high resolution Bruker IFS 125HR Fourier-spectrometer and a two-channel opto-acoustic spectrometer with a diode laser. As a secondary standard of wavelengths, the methane absorption spectrum was used in both cases.A preliminary analysis was realized thanks to the tensorial formalism developed by the Dijon group that is implemented in the XTDS software package [39]. We considered the two combination bands ν5+ν9 and ν5+ν11 as an interacting dyad. Parameters for the ν9/ν11 dyad were fitted simultaneously from a re-analysis of previously recorded supersonic expansion jet FTIR data, while parameters for the v5=1 Raman level were taken from literature. More than 600 lines could be assigned in the 6030-6250 cm−1 region (and also 682 in the 2950-3150 cm−1 region) and effective Hamiltonian parameters were fitted, including Coriolis interaction parameters. The dyad features are globally quite well reproduced, even if there are still problems at high J values.  相似文献   

8.
A high-resolution (0.003 cm−1) infrared absorption spectrum of the first overtone of the fundamental mode ν8 of methylene fluoride (CH2F2) has been measured on a Bruker IFS 120-HR Fourier transform infrared spectrometer. More than 2000 ro-vibration transitions in the range of 2770-2900 cm−1 with J ? 45 and Ka ? 20 have been assigned in this B-type band centered at 2838.5 cm−1. Precise value for the band origin (2838.579799 cm−1) and centrifugal distortion constants up to third order (ΦJK, ΦKJ, and ΦK) have been obtained by fitting a total of 1474 unblended ro-vibration transitions (J ? 45 and Ka ? 13) of the 2ν8 band with a standard deviation of 0.00029 cm−1 using a Watson’s A-reduced Hamiltonian in the Ir representation. Signature of perturbations with nearby states has been seen.  相似文献   

9.
High-resolution infrared measurements of the OH-stretching mode of oxadisulfane, HSOH, at 3625 cm−1 have been recorded using a Bruker IFS 120 HR Fourier transform spectrometer. More than 1300 lines have been assigned to the ν(OH) fundamental vibration mode, which is a hybrid band showing a c-type perpendicular band and an a-type parallel band spectrum of an asymmetric rotor molecule. The splitting due to the torsional-tunneling has not been observed in this band. The band center position at 3625.59260(20) cm−1 as well as rotational and centrifugal distortion constants for the ν(OH) vibrational excited state have been obtained from a least-squares fit analysis of a semirigid rotor. In addition the αOH experimental vibration-rotation correction terms of the OH-stretching mode have been derived and compared to values used in an earlier semi-empirical calculation of the HSOH structure. All data are in very good agreement with high level ab initio calculations and confirm the assignment of an earlier matrix isolation spectrum at 3608 cm−1 to the ν(OH) fundamental mode.  相似文献   

10.
The five lowest doubly excited deformational vibrational bands ν4 + ν6, 2ν6, ν3 + ν4, ν3 + ν6, and 2ν3 of PH2D have been recorded for the first time using a Bruker 120 HR interferometer with a resolution 0.0033 cm−1 and analysed. Some transitions belonging to a very weak band 2ν4 have been also assigned. From the fit 24 and 86, respectively, diagonal and resonance interaction parameters were obtained which reproduce 1089 upper energy levels obtained from more than 4600 assigned transitions with the rms deviation of 0.00059 cm−1.  相似文献   

11.
The four fundamental bands of 70GeD4 have been analyzed using the STDS software developed in Dijon (http://www.u-bourgogne.fr/LPUB/sTDS.html). Both infrared and Raman spectra were used to observe all fundamental bands. Infrared spectra of monoisotopic 70GeD4 were recorded in the regions 600 and 1500 cm−1 using the Bruker 120HR interferometer at Wuppertal. The resolution (1/maximum optical path difference) was between 2.3 and 3.3×10−3 cm−1 for the ν3 and ν4 infrared-active fundamental bands as well as for the interacting ν2 band. A high-resolution stimulated Raman spectrum of the ν1 band has been recorded in Madrid. The instrumental resolution of the Raman spectrum was 3.3×10−3 cm−1. We have performed a global fit of the ground state, ν24 bending dyad, and ν13 stretching dyad. We have used 1146, 139, and 676 assigned lines for ν24, ν1, and ν3, respectively. The standard deviation is 2.2×10−3 cm−1 for the bending dyad, 1.6×10−3 cm−1 for the ν3 infrared lines, and 1.7×10−3 cm−1 for the ν1 Raman lines. These results enabled us to perform the first experimental determination of the equilibrium bond length of germane as re=1.5173(1) Å.  相似文献   

12.
The infrared spectrum of CH3D from 3250 to 3700 cm−1 was studied for the first time to assign transitions involving the ν2 + ν3, ν2 + ν5, ν2 + ν6, ν3 + 2ν6 and 3ν6 vibrational states. Line positions and intensities were measured at 0.011 cm−1 resolution using Fourier transform spectra recorded at Kitt Peak with isotopically enriched samples. Some 2852 line positions (involving over 900 upper state levels) and 874 line intensities were reproduced with RMS values of 0.0009 cm−1 and 4.6%, respectively. The strongest bands were found to be ν2 + ν3 at 3499.7 cm−1 and ν2 + ν6 at 3342.5 cm−1 with integrated strengths, respectively, of 8.17 × 10−20 and 2.44 × 10−20 (cm−1/molecule · cm−2) at 296 K (for 100% CH3D). The effective Hamiltonian was expressed in terms of irreducible tensor operators and adapted to symmetric top molecules. Its present configuration in the MIRS package permitted simultaneous consideration of the four lowest polyads of CH3D: the Ground State (G.S.), the Triad from 6.3 to 9.5 μm, the Nonad from 3.1 to 4.8 μm and now the Enneadecad (19 bands) from 2.2 to 3.1 μm. The CH3D line parameters for this interval were calculated to create a new database for the 3 μm region.  相似文献   

13.
The main aim of the work is to transfer the high accuracy of the CO2 laser bands around 10 μm to far infrared regions around 400 and 250 cm−1 for secondary standards. The bands ν1 + ν2 and 3ν2 of CS2 were measured on the Bruker IFS 120 HR Fourier spectrometer in Oulu with special care and calibrated against CO2. In the second stage the ν2 region around 400 cm−1 was measured at a resolution of 0.001 cm−1. This spectrum was calibrated against 3ν2 internally with the CS2 band system using ladders formed with rotational lines in the bands ν2, 2ν2 − ν2 and 3ν2 − 2ν2. Further, the difference band ν1 − ν2 at 263 cm−1 together with accompanying hot bands was measured on a similar spectrometer in Lund, Sweden, but with a synchrotron radiation source. Using corresponding chains of lines as above this region was calibrated with ν1 + ν2. In this way, problems with conventional calibration could be avoided. Without the effect of the pressure shifts the absolute accuracy of 2.0 × 10−6 and 8.4 × 10−6 cm−1 has been achieved at 400 and 250 cm−1, respectively. Simultaneously the same calibration accuracy is also transferred to residual water lines around the CS2 far infrared bands and the best H2O lines will be given with literature comparisons. In addition to the calibration new results from the observed hot bands of CS2 in the region of the bands ν1 + ν2 and 3ν2 will be given.  相似文献   

14.
We record double resonance spectra of the 4ν1 band of jet-cooled 13C-methanol using single rotational state selection in the ν1 fundamental and subsequent promotion of the selected molecules to the fourth vibrational level. We then detect transitions to the final excited states by infrared laser assisted photofragment spectroscopy (IRLAPS). The assigned A symmetry transitions reach upper states with K=0 and 1, and J from 0 to 5. For E symmetry, the transitions reach levels with K in the range −3 to 2 and J from 1 to 7. The rotation-torsional analysis determines a value for the torsional tunneling splitting of 2.8±0.4 cm−1 at v1=4. In a previous paper (J. Chem. Phys.110, 11 359-11 367 (1999)), we reported a trend of monotonically decreasing tunneling splittings in 12CH3OH for v1=0, 3, and 6 that we explained by a model that incorporates a linear increase in the torsional barrier height with OH stretch excitation. The 13CH3OH tunneling splitting for the 4ν1 band is in quantitative agreement with the trend found for 12CH3OH.  相似文献   

15.
The absorption spectrum of HD16 O was recorded at a resolution of 0.02 cm-1 with a Bruker IFS 120HR Fourier Transform Spectrometer in the region of 9600-10200 cm-1. As far as we know it is the first time to record and analyze the HDO spectrum in this region which was assigned as the ν1+2ν3 and 2ν2+2ν3 bands. With the strong resonance interactions between these two bands considered, the spectroscopic parameters were optimized by the nonlinear least squares method.  相似文献   

16.
As part of the simultaneous analysis of line positions and intensities of the first two polyads of monodeuterated methane, the results achieved for the region 3-5 μm are reported. It involves the three highest fundamentals, (ν1, ν2, ν4), overlapped by overtone (2ν3, 2ν5, 2ν6) and combination (ν36, ν35, ν56) bands. The theoretical model was based on the global tensorial model implemented in the MIRS package. Some 10 000 line positions and 2400 line intensities have been modeled to ±0.000 88 cm−1 and ±3.6% respectively, using measurements obtained at 0.0056 and 0.011 cm−1 resolution with the Fourier transform spectrometer at National Solar Observatory located at Kitt Peak. The strongest band in this polyad is ν4(E) at 3016.7 cm−1 with a strength of 6.3×10−18 cm−1/(molecule cm−2) at 296 K; the weakest band is 2ν3(E) at 2597.7 cm−1 with a strength of 1.9×10−20 cm−1/(molecule cm−2) at 296 K. The total calculated absorption arising from the CH3D nonad is 8.95×10−18 cm−1/(molecule cm−2) at 296 K.  相似文献   

17.
The high-resolution spectrum of the ν1=5 stretching overtone of gaseous H70GeD3 has been recorded by an intracavity laser absorption spectrometer based on a vertical external cavity surface emitting laser (VECSEL). The rotational structure of the excited state at 9874.605 cm−1 was found weakly perturbed by unidentified interaction with dark states. Finally, of the 313 lines rotationally assigned, 239 lines were found unperturbed and could be reproduced with a root-mean-square (rms) deviation of 0.012 cm−1. The retrieved set of rotational parameters agrees with the values extrapolated from the previously studied ν1=6-8 stretching overtones. High-resolution FTIR spectra of the ν1 and 2ν1 bands have also been recorded and analyzed. The ν1=1 level, (νeff=2114.15 cm−1) is in anharmonic interaction with a further A1 symmetry level (νeff=2102.39 cm−1). The potential coupling term could be estimated (Wanh=5.6(3) cm−1) and the most probable assignment of the perturber is ν2+ν3. Moreover both levels are rotationally perturbed in an irregular fashion. Only a coarse analysis up to J=6 could be performed. The 2ν1 band reveals irregular perturbations of medium intensity by unknown dark states for almost all K values. Nevertheless the obtained leading rovibrational parameters of the 2ν1 band for J?6 are in agreement with those of the ν1=5-8 states.  相似文献   

18.
The infrared spectrum of DNO3 (deuterated nitric acid) was recorded at high resolution (0.0027 cm−1) in the 700-1400 cm−1 region on a Bruker IFS 120 HR Fourier transform spectrometer. The analysis of the ν5 band of DNO3 centred at 887.657 cm-1 which is mostly an A-type band, was performed making use of the ground state parameters achieved by Drouin et al. [Drouin BJ, Miller CE, Fry JL, Petkie DT, Helminger P, Medvedev IR. J Mol Spectrosc 2006;236:29-34]. The ν5 fundamental band is strongly perturbed because of the existence of the ν7+ν9 dark combination band at 882.21  cm-1. The 51 and 7191 energy levels of DNO3 are coupled through A and B type Coriolis resonances, and as a consequence, numerous lines from the ν7+ν9 dark combination band could be identified also. In this way about 1070 and 75 energy levels of the 51 and 7191 vibrational states, respectively, were satisfactorily reproduced by the energy levels calculation which account for the observed resonances. A reasonable estimation of the absolute line intensities for the ν5 band of DNO3 was performed using the ν5 transition operator from H14NO3. The spectrum also features the ν5+ν6ν6, ν5+ν7ν7 and ν5+ν9−ν9 hot bands located at 881.03, 882.61 and 884.45 cm−1, respectively.  相似文献   

19.
Using a Fourier transform spectrometer, we have recorded the spectra of ozone in the region of 4600 cm−1, with a resolution of 0.008 cm−1. The strongest absorption in this region is due to the ν1+ ν2+ 3ν3band which is in Coriolis interaction with the ν2+ 4ν3band. We have been able to assign more than 1700 transitions for these two bands. To correctly reproduce the calculation of energy levels, it has been necessary to introduce the (320) state which strongly perturbs the (113) and (014) states through Coriolis- and Fermi-type resonances. Seventy transitions of the 3ν1+ 2ν2band have also been observed. The final fit on 926 energy levels withJmax= 50 andKmax= 16 gives rms = 3.1 × 10−3cm−1and provides a satisfactory agreement of calculated and observed upper levels for most of the transitions. The following values for band centers are derived: ν01+ ν2+ 3ν3) = 4658.950 cm−1, ν0(3ν1+ 2ν2) = 4643.821 cm−1, and ν02+ 4ν3) = 4632.888 cm−1. Line intensities have been measured and fitted, leading to the determination of transition moment parameters for the two bands ν1+ ν2+ 3ν3and ν2+ 4ν3. Using these parameters we have obtained the following estimations for the integrated band intensities,SV1+ ν2+ 3ν3) = 8.84 × 10−22,SV2+ 4ν3) = 1.70 × 10−22, andSV(3ν1+ 2ν2) = 0.49 × 10−22cm−1/molecule cm−2at 296 K, which correspond to a cutoff of 10−26cm−1/molecule cm−2.  相似文献   

20.
High-resolution spectra of the ν1 stretching band of SiD3H were recorded and analyzed, yielding values for ground- and upper-state constants and the band center. For 28SiD3H, B0 = 1.777482(14) and ν1 = 2187.2070(17) cm?1. Similar analyses were performed on the less abundant species 29SiD3H and 30SiD3H.  相似文献   

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