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1.
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   

2.
Water vapor infrared spectra have been recorded at room temperature in the range 4200-6250 cm−1 at resolutions (FWHM) between 0.0053 and 0.0080 cm−1. The use of a White-type multireflection cell made large pressure × pathlength products possible up to 31.27 mbar×288.5 m. The high signal-to-noise ratio allowed us to observe lines with intensities as small as 10−26 cm−1/molecule cm−2 at T=296 K. Among about 5100 recorded water lines, about half of which are reported for the first time, 2351 lines have been assigned to the second triad of H216O (bands ν12, ν23, and 3ν2). This has allowed the determination of line positions and corresponding upper rovibrational states with considerably improved accuracy. The assignments of certain highly excited states have been confirmed by the analysis of flame spectra and hot emission spectra. New values of effective Hamiltonian parameters for the upper states {(110), (030), (011)} have been determined. The generating function model was used in the data reduction to account for the anomalously strong centrifugal distortion of the rovibrational levels and resonance interactions. The RMS standard deviation of the least-squares fit of the assigned H2O data was 5×10−3 cm−1 for line positions and 7×10−3 cm−1 for energy levels up to Jmax=20 and Ka(max)=13. Particular attention was paid to water lines in the transparency window 4200-5000 cm−1, in which existing databases are not sufficient. In this region, 1395 lines of four isotopic species of water have been recorded and over 900 accurate line positions of nine bands of H216O (ν1, ν3, 2ν2, ν12, ν23, 3ν2, 4ν2−ν2, 2ν23−ν2, ν1+2ν2−ν2) are reported in this range. A comparison of laboratory spectra with long path atmospheric spectra (20 km slant path in the mountains) in this region shows that many lines missing from available spectroscopic compilations (or considerably shifted compared to observations) are important for a proper interpretation of atmospheric observations. A comparison of the observed data with the best available predictions from the molecular electronic potential energy surface is discussed.  相似文献   

3.
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   

4.
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   

5.
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   

6.
The absorption spectrum of 18O enriched water has been recorded by continuous wave cavity ring down spectroscopy between 5905.7 and 6725.7 cm−1 using a series of fibred DFB lasers. The investigated spectral region corresponds to the important 1.55 μm transparency window of the atmosphere where water absorption is very weak. The typical CRDS sensitivity (noise equivalent absorption of 5×10−10 cm−1) allowed for the detection of lines with intensity as low as 10−28 cm/molecule while the minimum intensity value provided by HITRAN in the considered spectral region is 1.7×10−24 cm/molecule. The line parameters were retrieved with the help of an interactive least squares multi-lines fitting program assuming a Voigt function as line profile. Overall, 4510 absorption lines belonging to the H218O, H216O, HD18O, HD16O and H217O water isotopologues were measured. Their intensities range between 3×10−29 and 5×10−23 cm/molecule at 296 K and the typical accuracy on the line positions is 1×10−3 cm−1. 2074 of the observed lines attributed to H218O, HD18O and H217O are reported for the first time. The transitions were assigned on the basis of variational calculations resulting in 288, 135 and 38 newly determined rovibrational energy levels for the H218O, HD18O and H217O isotopologues, respectively. The new data set includes the band origin of the 4ν2 bending overtone of H218O at 6110.4239 cm−1 and rovibrational levels corresponding to J and Ka values up to 18 and 12, respectively, for the strongest bands of H218O: 4ν2, ν1+2ν2, 2ν2+ν3, 2ν1, ν1+ν3, and ν2+ν3. The obtained experimental results have been compared to the spectroscopic parameters provided by the HITRAN database and to the recent IUPAC critical review of the rovibrational spectrum of H218O and H217O as well as to variational calculations. Large discrepancies between the 4ν2 variationally predicted and experimental intensities have been evidenced for the H218O and H216O molecules.  相似文献   

7.
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   

8.
Fourier transform spectra recorded using (a) natural abundance water vapor, (b) H218O-enriched water vapor, and (c) H217O-enriched water vapor are analyzed. The ratio of intensities in three spectra is used to identify 927 lines due to absorption by H218O. Intensities and self-broadening parameters are derived for these lines. Using theoretical linelists, comparisons with previously assigned H216O spectra, and automatic searches for combination differences, 747 lines are assigned. These lines belong to 14 vibrational states in the 3ν+δ and 4ν polyads. Newly determined H218O vibrational band origins include 4ν1 at 13 793.09 cm−1, 3ν13 at 13 795.40 cm−1, 2ν1+2ν3 at 14 188.82 cm−1, ν1+3ν3 at 14 276.34 cm−1, and 2ν2+2ν23 at 13 612.71 cm−1. These results are compared with data in HITRAN.  相似文献   

9.
Two hot bands in the infrared spectrum of formaldehyde (H2CO) have been identified by means of tunable infrared laser spectroscopy using a jet-cooled sample. One band falls in the region 2760-2800 cm−1; it follows a-type selection rules and it has been assigned as the ν1 + ν4 − ν4 hot band. The other band falls in the region 2800-2860 cm−1; it follows b-type selection rules and it has been assigned as the ν5 + ν4 − ν4 hot band. The observations are restricted to low J and Ka levels. It has consequently been possible to ignore the effects of the extensive Coriolis couplings involving these levels in the analysis of the spectra and to model the rotational structure as that of a simple asymmetric top. Least-squares fits of the data have provided values for the band origins: 2774.2706(11) cm−1 for the ν1 + ν4 − ν4 and 2829.2621(8) cm−1 for the ν5 + ν4 − ν4 band. Term values for the upper vibrational levels involved in the transitions have been determined by use of the previously reported term values for the v4 = 1 level.  相似文献   

10.
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   

11.
The Fourier transform gas-phase IR spectrum of isoxazole, C3H3NO, between 550 and 1700 cm−1 was measured with a resolution of ca. 0.003 cm−1. Ten fundamental bands in the region 800-1700 cm−1 have been analyzed by the Watson Hamiltonian model to yield upper state spectroscopic constants. A number of local resonances have been identified in the bands and explained qualitatively, and the unobserved ν14(A″) fundamental band has been located at 897.5(5) cm−1 from its perturbation effects on the neighboring fundamentals.  相似文献   

12.
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   

13.
The high-resolution infrared spectrum of the polar N2O dimer has been observed in the region of the N2O ν3 fundamental (∼1280 cm−1) using a tunable diode laser to probe a pulsed supersonic slit jet. About 120 rotational transitions were assigned in terms of an a/b hybrid band of a planar asymmetric top molecule with a slipped parallel structure. The vibrational origin was determined to be 1290.21 cm−1, showing a blue shift of 5.31 cm−1 with respect to the monomer band origin. In addition, the spectrum of the nonpolar isomer at 1279.71 cm−1 has been remeasured and analyzed in improved detail. Small but widespread perturbations are noted in this band, which appear somewhat similar to larger effects observed previously in the ν1 + ν3 region for nonpolar (N2O)2.  相似文献   

14.
The lowest fundamental vibration rotation bands ν2 of nitrous oxide (N2O) and carbon dioxide (CO2) have been measured with a Fourier transform spectrometer at the resolution of 0.001 cm−1. The spectra have been calibrated with the high accurate peak positions of the carbonyl sulfide (OCS) ν2 band, which has been recently produced as a candidate for a secondary standard by calibrating first the 2ν2 band with the CO2 laser bands around 10 μm and then transferring the calibration to ν2 with the internal energy levels of OCS. In the present work the OCS ν2 and ν1 bands were measured together with the spectra of N2O and CO2. Then the OCS ν1 band was measured by calibrating it with the 2ν2 band of OCS. The linearity of the wavenumber scale was checked by comparing the corresponding line positions in the OCS ν1 band in these two separate measurements. The absolute accuracy of the ν2 band centers of N2O and CO2 were evaluated to be 6.8 × 10−6 and 8.4 × 10−6 cm−1, respectively.  相似文献   

15.
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   

16.
The jet-cooled spectrum of pentafluoroethane (C2HF5) has been recorded between 1100 and 1325 cm−1 at a resolution of 0.0022 cm−1. A rotational temperature of approximately 10 K was achieved by expanding 50 Torr of C2HF5 in 500 Torr of helium. Transitions belonging to five different fundamental vibrations have been assigned and fit to a Watson Hamiltonian: the ν3 band at 1309.880494(189) cm−1, ν4 at 1200.734645(67) cm−1, ν5 at 1142.78147(33) cm−1, ν13 at 1223.334098(115) cm−1, and ν14 at 1147.394185(163) cm−1. The fit of the ν4 band has an rms deviation of 0.000436 cm−1 compared to the uncertainty in the experimental line position of 0.0002 cm−1. Satisfactory fits were achieved for the other four bands (ν3, ν5, ν13, ν14) at this cold temperature, with most of the centrifugal distortion constants fixed at the ground state values. Joint fits with previous work were attempted for the ν4 and ν13, successfully in the former case and unsuccessfully in the latter.  相似文献   

17.
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   

18.
The Fourier transform infrared gas-phase spectrum of thiazole, C3H3NS, has been recorded in the 600-1400 cm−1 wavenumber region with a resolution around 0.0030 cm−1. Nine fundamental bands (ν5(A′) to ν11(A′), ν15(A″), and ν16(A″)) are analysed employing the Watson model. Ground-state rotational and quartic centrifugal distortion constants as well as upper state spectroscopic constants have been obtained from the fits. A detailed analysis of perturbations identified in the ν11(A′) band at 866.5 cm−1 enables a definitive location of the very weak ν10(A′) and ν14(A″) bands at 879.3 and 888.7 cm−1, respectively. The three levels are analysed simultaneously by a model including Coriolis resonance using an ab initio predicted first order c-Coriolis coupling constant; second and higher order Coriolis parameters are determined. Qualitative explanations in terms of Coriolis resonances are given for a number of crossings observed in ν5(A′), ν6(A′), and ν7(A′) at 1383.7, 1325.8, and 1240.5 cm−1, respectively. The rotational constants, anharmonic frequencies, and vibration-rotation constants (alphas, ) calculated by quantum chemical calculations using a cc-pVTZ and TZ2P basis with B3LYP methodology, have been compared with the present experimental data. The rotation constant differences for each vibrational state, from the ground state values, are closer to experiment from the TZ2P calculations relative to those using cc-pVTZ. The values for ΔJ, ΔJK, ΔK, δJ, and δK are close to experiment with both basis sets.  相似文献   

19.
The 10 μm region of thioformaldehyde (H2CS) has been recorded at high resolution (0.005 cm−1) using a Fourier transform spectrometer. H2CS was produced by low-pressure pyrolysis of a gas flow of C3H5SCH3 in Ar at 560 °C or CH3SCl at 1150 °C, which was introduced into a multipass White cell with an optical path length of 32 m. Forty scans were recorded for the range 750-1400 cm−1 at a total pressure of 0.15 mbar. A thorough analysis of the three lowest wavenumber fundamental bands, ν3, ν4 and ν6, which fall in this region, has been carried out using a Hamiltonian model, which takes explicitly into account the numerous resonances affecting the ro-vibrational energy levels; especially the massive A-type Coriolis resonance between the out-of-plane wagging mode, ν4, and the in-plane rocking mode, ν6. These two modes are only separated by 0.83 cm−1, and they are thoroughly mixed. From the fittings, the following band centers were derived: νo (ν4)=990.18213(40) cm−1, νo (ν6)=991.02021(50) cm−1 and νo (ν3)=1059.20476 (30) cm−1 where the uncertainties are one standard deviation. In addition, a number of relative line intensities were measured permitting the determination of relative values of the first-order transition moments and therefore relative band intensities for all three bands. Finally, a comprehensive list of line wavenumbers and relative intensities has been generated.  相似文献   

20.
The IR spectra of OH-compensated point defects in MgO (and CaO) single crystals of various purity grades were reinvestigated. Three distinct groups of IR bands appear in the O-H stretching region: A, B and C around 3550 cm?1 (3650 cm?1), 3300 cm?1 (3450 cm?1) and 3700cm?1 (3750cm?1). They are assigned as follows: band A to the fully compensated, band B to the half compensated and band C to the overcompensated cation vacancies, [O?V”catH?]×, [O?V”cat], and [O?O?V”catH?]?, respectively.Upon cooling to 80 K the band A shows a complex behavior partly due to the formation of Ha molecules by charge transfer and concommittant O? formation: [? (H2)”cat?]×. The O? represent defect electrons or positive holes in the O2? matrix.Bands A and B show a characteristic multiplet splitting which is caused by local lattice strains coming from carbon atoms on near-by interstitial position. The intensity ratios between the multiplet components remain constant regardless of temperature pretreatments up to 1470 K, but strong variations of the integral intensities are observed. These are caused by the highly mobile C atoms entering and leaving reversibly the cation vacancy sites as a function of temperature and of the quenching speed. When the C atoms push the H2 molecules onto interstitial sites, an H-H stretching signal appears around 4150cm?1.  相似文献   

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