首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 10 毫秒
1.
The high resolution infrared spectrum of the mono-isotopic species 123SbD3 has been studied in the regions of the first and second Sb–D stretching overtones, from 2600 to 2800 cm−1 and from 3900 to 4100 cm−1, respectively. In both regions only two almost degenerate bands of similar intensity have been observed, one parallel and the other perpendicular, corresponding to the low-lying states in the manifolds of the excited vibrational states. These bands have been identified as 2ν1(A1)/ν1 + ν3(E) in the first overtone and 3ν1(A1)/2ν1 + ν3(E) in the second overtone band system. About 1700 transitions with have been assigned to the 2ν1(A1)/ν1 + ν3(E) and about 700 with to the 3ν1(A1)/2ν1 + ν3(E) dyad. The transitions assigned to each dyad have been fitted simultaneously since the A1/E excited states are affected by strong Coriolis and k-type perturbations treated explicitly in the model. Eventually, the extent to which the parameters resulting from the analyses fulfill the local mode theory requirements has been evaluated. Differently from SbH3, the deuterated species does not reach true local mode behavior, even in the second overtone.  相似文献   

2.
《Molecular physics》2012,110(17):2063-2069
The high resolution infrared absorption spectrum of CH2D81Br has been recorded by Fourier transform spectroscopy in the range 550–1075?cm?1, with an unapodized resolution of 0.0025?cm?1, employing a synchrotron radiation source. This spectral region is characterized by the ν6 (593.872?cm?1), ν5 (768.710?cm?1) and ν9 (930.295?cm?1) fundamental bands. The ground state constants up to sextic centrifugal distortion terms have been obtained for the first time by ground-state combination differences from the three bands and subsequently employed for the evaluation of the excited state parameters. Watson's A-reduced Hamiltonian in the Ir representation has been used in the calculations. The ν 6?=?1 level is essentially free from perturbation whereas the ν 5?=?1 and ν 9?=?1 states are mutually interacting through a-type Coriolis coupling. Accurate spectroscopic parameters of the three excited vibrational states and a high-order coupling constant which takes into account the interaction between ν5 and ν9 have been determined.  相似文献   

3.
The spectrum of the symmetric top, hydrogen-bonded heterodimer H3N?HCN has been recorded between 2900 and 3200cm?1 using a high resolution FTIR spectrometer. The more intense bands are associated with the ν2 (H?CN stretch) vibration and include hot bands associated with the low frequency modes ν5, ν2 and ν10. Weaker difference bands of the type ν2+(n?1) ν5?nν5 are also observed. Analysis of the bands yields values for the band origins: ν2/0=3110·5±0·2cm?1 and ν5/0=140±5cm?1 and the anharmonicity constants: x 2,10=12·7±0·5cm?1, x 2,9x 2,5=23±3cm?1 and x 5,10=?5±2cm?1. The lifetime in ν2 with respect to vibrational predissociation, estimated from the width of the sharpest observed feature, is 100?200 ps but there is some indication that this lifetime may decrease at high J.  相似文献   

4.
The infrared spectra of CH2=CHF have been investigated in the ν5 and ν6 band regions between 1280 and 1400?cm?1, at a resolution of about 0.002?cm?1, using a tunable diode laser spectrometer. These vibrations of symmetry species A′ give rise to a/b-hybrid bands with different contributions from both the components. Spectral analysis resulted in the identification of 1565 (J≤46, K a ≤11) and 1651 (J≤48, K a ≤15) transitions of the ν5 and ν6 fundamentals, respectively. Both bands are perturbed by the nearby states ν8?+?ν9 and ν9?+?ν11 through different Coriolis resonances and an anharmonic interaction. Using Watson's A-reduction Hamiltonian in the Ir representation and perturbation operators almost all the transitions have been fitted simultaneously to a model including six resonances within the tetrad ν568?+?ν99?+?ν11. A set of spectroscopic constants for the ν5 and ν6 bands, as well as parameters for the dark states ν8?+?ν9 and ν9?+?ν11 and coupling constants, have been determined. From spectral simulations the dipole moment ratio |Δμ a /Δμ b | was estimated to be 0.6?±?0.1 and 2.0±0.3 for the ν5 and ν6 bands, respectively.  相似文献   

5.
The high-resolution infrared spectrum of CHD2 79Br has been investigated by Fourier transform spectroscopy in the range 540–615?cm?1 at an unapodised resolution of 0.0035?cm?1. This spectral region is characterised by the ν6 fundamental (584.8510?cm?1), corresponding to C–Br stretching mode, and its hot band 2ν66 (578.4333?cm?1). The spectral analysis resulted in the identification of 3430 transitions (J’?≤?73 and K'a ?≤?18) for the ν6 fundamental and 1212 transitions (J’?≤?49 and K'a ?≤?11) for the hot band 2ν66. The assigned data have been fitted using the Watson’s S-reduced Hamiltonian in the Ir representation and new constants for the ground state from about 24,600 combination differences and sets of parameters for the v 6?=?1 and 2 vibrational states have been obtained. From spectral simulations the intensity ratio between 2ν66 and ν6 has been estimated to be 0.15?±?0.02. High-quality ab initio calculations have also been performed at the CCSD(T) level of theory in order to support the experimental investigation through the calculation of molecular parameters relevant to ro-vibrational spectroscopy.  相似文献   

6.
The IR absorption spectra of solutions of SF6 in liquid argon are studied at a temperature of 93 K in the concentration interval 10?5–10?7 mole fractions. A sample with a natural abundance of isotopes and a monoisotope 34SF6 sample are studied. The frequencies, half-widths, and relative intensities of bands in the vibrational spectrum of all isotopomers of the molecule are determined. For the 34SF6 molecule, the ratio of integral absorption coefficients of fundamental bands A4)/A3)=0.07(6) is larger than 32SF6:A4)/A3)=0.66(4) for the 32SF6 molecule, which corresponds to the same signs of P3 and P4. The change in the intensity of the ν26 and ν56 bands upon isotopic substitution is explained by the change in the resonance contributions of due to the isotope shift of the ν3 band.  相似文献   

7.
We have measured and interpreted the IR spectra of liquid ozone films at 78–85 K and ozone dissolved in liquid argon at 91–95 K. A less hindered rotation of ozone molecules in argon manifests itself as an intensity redistribution, caused by the Coriolis interaction, from the states ν3(B 1) and ν1 + ν3(B 1) to the states ν1(A 1) and 2ν1(A 1), respectively. The occurrence of wings in the contours of the bands ν1(A 1), 2ν1(A 1), and 2ν3(A 1) in liquid Ar and their absence in the spectrum of O3 also confirms the conclusion that the rotational motion of ozone molecules in an inert solvent at low temperatures is relatively less hindered. Maxima of ozone bands in Ar solution are shifted toward lower frequencies compared to those in the gas phase by 1–30 cm?1, which corresponds to the following shifts of harmonic frequencies of the molecule: Δω1 = ?1.85(5) cm?1, Δω2 = ?0.67(7) cm?1, Δω3=?7.20(5) cm?1. It was found that the absorption band of the ν3 mode in the spectrum of O3 in the liquid phase has a complicated asymmetric contour because of the resonance dipole-dipole interaction. The first and second spectral moments of this band have been determined to be M 1 = 1030.6 cm?1 and M 2 = 240.0 cm?2.  相似文献   

8.
The infrared spectrum of isotopically pure CH2 79BrCl has been recorded at a resolution of 0.0025?cm?1 and 0.0023?cm?1 (FWHM) in the range 600–1600?cm?1 with a Bruker IFS 120 HR Fourier transform spectrometer in Wuppertal. Here we report the full rotational analysis of the ν3 and ν9 fundamentals of the most abundant species CH2 79Br35Cl . Improved ground state constants, up to quartic terms, have been obtained from ground state combination differences (GSCD) involving transitions of the fundamentals ν3, ν4, ν5 and ν9. Both ν3 and ν9 transitions were fitted to a Watson-type Hamiltonian in the S-reduction, yielding accurate molecular constants for the ν3 and ν9 excited states. Small local perturbations were observed in both bands. Prominent features in the spectra were assigned to the ν3 and ν9 fundamentals of the CH2 79Br37Cl isotopic species and the hot-bands ν36???ν6 and ν96???ν6 of CH2 79Br35Cl.  相似文献   

9.
The Fourier transform infrared spectrum of H3SiI has been recorded in the ν14region from 2075 to 2315 cm−1at an optical resolution of 2.3 × 10−3cm−1. The ν14fundamental bands and the (ν1+ ν3) − ν3/(ν4+ ν3) − ν3hot bands have been rotationally investigated. Numerous local perturbations have been observed in the ν1and ν4bands and in the hot bands. Without the lines involved in perturbations, more than 2900 transitions of the ν14bands were used to determine the band origins and the vibration–rotation parameters of the ν1= 1 and νv4= 1 states. A least-squares fit of 766 apparently unperturbed transitions of the hot bands gave the parameters of the ν1= ν3= 1 and ν4= ν3= 1 states. Thel(2, 2) resonance in ν4and theA1–E Coriolis coupling between ν1and ν4have been investigated. Most of the local perturbations have been studied individually using a simple model by which the main perturber for each resonance was identified.  相似文献   

10.
The absorption spectrum of water vapor is studied in the region of 9375–9460 cm?1 and at temperatures within 300–1200 K using an intracavity laser spectrometer based on a Nd laser having a threshold absorption sensitivity of 10?8 cm?1. More than 270 absorption lines are detected in the high-temperature spectrum of water vapor, 70% of which are assigned to ten vibrational bands: 3ν2 + ν3, 2ν1 + ν2, ν1 + ν2 + ν3, ν2 + 2ν3, ν1 + 3ν2, 3ν3 ? ν2, 2ν2 + 2ν3 ? ν2, ν1 + 2ν2 + ν3 ? ν2, 2ν1 + ν3 ? ν2, and ν2 + 3ν3 ? 2ν2. The vibrational-rotational energy levels are determined.  相似文献   

11.
ABSTRACT

The high-resolution infrared spectrum of CHD279Br has been investigated by Fourier transform spectroscopy in the range 700–900?cm?1 at an unapodized resolution of 0.0035?cm?1. This spectral region is characterised by the absorptions of the ν5 (814.5185?cm?1) and ν9 (716.9649?cm?1) fundamental bands, corresponding to H–C–Br deformation and CD2 rocking modes, respectively. The ν5 vibration of symmetry species A gives rise to an a-/c-hybrid band with a predominant a-type component, while the ν9 mode of A′′ symmetry produces a b-type envelope. The spectral analysis resulted in the identification of 5290 (J?≤?63 and Ka?≤?13) and 1657 (J?≤?53 and Ka?≤?12) transitions for ν5 and ν9 bands, respectively. The assigned data were fitted using the Watson’s S-reduced Hamiltonian in the Ir representation and the v5?=?1 and v9?=?1 state parameters up to the quartic centrifugal distortion terms have been obtained. From spectral simulations the dipole moment ratio |Δμa/Δμc| of the ν5 band has been determined to be 1.4?±?0.1 while the intensity ratio between ν5 and ν9 fundamentals has been estimated to have a value of 4.3?±?0.5.  相似文献   

12.
The spectral characteristics of the SiF4 molecule in the range 3100–700 cm?1, including the absorption range of the band ν3, are studied in the gas phase at P = 0.4–7 bar and in solutions in liquefied Ar and Kr. In the cryogenic solutions, the relative intensities of the vibrational bands, including the bands of the isotopically substituted molecules, are determined. The absorption coefficients of the combination bands 2ν3, ν3 + ν1, ν3 + ν4, and 3ν4 are measured in the solution in Kr. In the gas phase of the one-component system at an elevated pressure of SiF4, the integrated absorption coefficient of the absorption band ν3 of the 28SiF4 molecule was measured to be A3) = 700 ± 30 km/mol. Within the limits of experimental error, this absorption coefficient is consistent with estimates obtained from independent measurements and virtually coincides with the coefficient A3) = 691 km/mol calculated in this study by the quantum-chemical method MP2(full) with the basis set cc-pVQZ.  相似文献   

13.
The FTIR spectrum of CH2ClF (natural isotopic mixture) was investigated in the ν4, ν9 and ν56 band region between 950 and 1160 cm?1 at the resolution of 0.004 cm?1. The ν4 and ν56 vibrations of A′ symmetry give rise to a/b hybrid bands with a predominant a-type component. The ν9 vibration of A symmetry, expected with a c-type band contour, shows an intense Coriolis-induced parallel component (ΔKa = 0, ΔKc = 0) derived from mixing with the v4 = 1 vibrational state. The high-resolution spectra of ν9 and ν56 have been analyzed for the first time, while the assignments of the ν4 band, previously investigated, have been extended to higher J and Ka values in the b-type component. The spectral analysis resulted in the identification of 1508, 809 and 349 transitions for the ν4, ν9 and ν56 bands of CH235ClF, respectively. Besides the strong first-order a- and b-type Coriolis resonances between ν4 and ν9, the ν56 vibration was found to interact through a c-type Coriolis with the ν4 and 3ν6. High-order anharmonic resonance (ΔKa = ±2) between ν4 and ν56 was also established. All the assigned data were simultaneously fitted using the Watson's A-reduction Hamiltonian in the Ir representation and the relevant perturbation operators. The model employed includes five types of resonances within the tetrad ν4956/3ν6. Α set of spectroscopic constants for ν4, ν9 and ν56 bands as well as parameters for the dark state 3ν6 and seven coupling terms have been determined. The simulations performed in different spectral regions satisfactorily reproduce the experimental data.  相似文献   

14.
The infrared gaseous spectrum of CD3CD3 has been measured in the range of 530–670cm?1 to investigate vibration—torsion effects in the ν9 band. Three separate spectra all taken under different experimental conditions were recorded. The lines with (ΔK = ?1) and with high values of K show torsional splittings that are substantially larger than expected from the observed barrier height. These splittings are caused primarily by Coriolis-type interactions between the torsional stack of ν9 = 1 and the corresponding stack for the ground vibrational state. Because of a near-degeneracy that exists between the states (ν9 = 0, ν4 = 3) and (ν9 = 1, ν4 = 0), three subbands (K, σ) = (15,1), (16,2), (17,3) are resonantly perturbed. For these cases, perturbation-allowed 3ν4 torsional transitions have been identified. Here σ= 0, 1, 2 or 3 labels the torsional sublevels. Measurements from the ν9 and 3ν4 bands, frequencies from the far-infrared torsional spectra in the ground vibrational state, and lower state combination differences from the ν9 + ν4 ? ν4 band were fitted to within experimental uncertainty using an effective Hamiltonian which considered three torsional stacks; one for the ground vibrational state and two for ν9 = 1. In all, 22 parameters were determined using a total of 2001 lines. Of these, three parameters were the interstack couplings, eight are from the ground vibrational state and 11 are from the excited vibrational state. Two barrier-dependent torsion—rotation parameters, which were essential for obtaining a satisfactory fit, were calculated by ab initio methods.  相似文献   

15.
The vibrational relaxation of the A 2Σ state of OD has been studied in the low translational temperature environment of an argon free-jet (Ttrans near 5 K). Using laser induced fluorescence (LIF), the absolute vibrational relaxation rate coefficients were measured for OD A2Σ (ν′) to be 7.1 ± 2.6 × 10?11, 5.9 ± 1.4 × 10?11, and 2.7 ± 1.1 × 10?11 cm3 s?1 for the ν = 3, 2 and 1 states, respectively. State-to-state relaxation rate coefficients were also obtained for the ν= 1, ? = 1 level going to ν= 0, ? levels in the A2Σ manifold. The rotational relaxation rate coefficient for ν= 1, ?= 1 in the A state of OD was found to be 9.6 ± 1.0 × 10?11cm3s?1. These values are consistent with values measured for OH A2Σ, and the total loss rates are near the capture rate coefficient value. The vibrational relaxation rate coefficients kν appear to be governed by the vibrational energy of the molecule rather then by interaction with nearby dissociative states such as the a4Σ state. The relative Einstein A factors for the A2σ (ν = 3) state of OD were determined and compared with the available calculated value.  相似文献   

16.
The high-resolution Fourier transform infrared spectrum of CH2D79Br has been recorded and analysed in the region of the ν4 and ν8 fundamentals located in the range 1125?1360 cm?1. The strong ν4 band, centred at 1225 cm?1, shows an a/b-hybrid structure with predominant a-type character, whereas ν8, at 1253 cm?1, generates a c-type contour comparable in intensity to the b-type component of ν4. The upper states of these fundamentals are coupled through a- and b-type Coriolis resonances; further complications in this band system arise from perturbations due to the ν6 = 2 (1183 cm?1) and ν5 = ν6 = 1 (1359 cm?1) dark states. The former interacts with ν8 = 1 by b-type Coriolis coupling, whereas the latter perturbs the ν4 = 1 and ν8 = 1 levels by anharmonic and a-type Coriolis resonances, respectively. Accurate upper state parameters and interaction terms have been determined for the tetrad system ν48/2ν656 by also including in the dataset the assigned transitions of the 2ν66 and ν566 hot bands obtained from previous analysis.  相似文献   

17.
We report results from measurements of the high resolution FTIR spectrum for the fully deuterated benzene molecule C6D6 in the range 450–3500 cm?1. Accurate spectroscopic constants have been obtained for the fundamental vibration ν11 at 496.208 cm?1 and improved ground state constants have been deduced from a fit of ground state combination differences. The J structure of the combination parallel bands ν2 + ν11 (at 2798.1 cm?1), ν5 + ν12 (1802.5 cm?1) and ν7, + ν16 (2619.3 cm?1) of C6D6 has been analysed as well, from which improved values of the band origin and of the B and D j constants of the excited states have been obtained. The strongest hot bands accompanying these parallel transitions have been assigned by means of the anharmonic force field calculated by Maslen et al. [1992, J. chem. Phys., 97, 4233]. In particular (ν11 + ν16) ? ν16 is assigned to the band at 492.4 cm?1 even though its shape is typical of a perpendicular transition (PAPE). New values for the ν5, ν12 and ν16 band origins are determined from the band origins of combination bands and from calculated anharmonic constants. Numerous anharmonic constants are derived from the assignment of hot band and combination transitions.  相似文献   

18.
The lowest infrared active perpendicular fundamental ν9 of disilane has been analysed on a Fourier transform spectrum between 320 and 430?cm?1, at the spectral resolution of 0.0012?cm?1. The rotation–torsion structure of this band is affected by x,y Coriolis interactions with excited torsional levels of the vibrational ground state, correlating with components of 3ν4 and 4ν4 in the high barrier limit. The interaction of ν9 and 4ν4, forbidden in the D3d symmetry limit, is allowed between components of E torsional symmetry under the G36(EM) extended molecular group, because of the large amplitude of the internal rotation motion. We could determine the values of the main vibration–rotation–torsion parameters of ν9, interaction parameters, and the vibrational wavenumbers of the four torsional components of 3ν4 and of the E3d component of 4ν4. The intrinsic torsional splitting of ν9 is found to be smaller than in the ground vibrational state by 0.0066?cm?1, in good agreement with our theoretical predictions. The possibility of observing the effects of D3d-forbidden interactions in the spectra of ethane-like molecules is also discussed.  相似文献   

19.
The 3ν17, 3ν37, and 4ν07 hot bands of the ν4 fundamental of C3O2 in the 1580 cm?1 region were analyzed from tunable diode laser spectra and the ground state to ν4 + 2ν07 band at 1644 cm?1 from Fourier transform spectra (FTS). The molecular constants for all of the v4 1 ← 0 bands as well as the intensity of the ν0 + 2ν07 sum band relative to the ν4 fundamental were in agreement with the predictions of the model of Weber and Ford. FTS spectra at 0.05 cm?1 resolution were obtained of the sum and difference bands of ν2 with ν7 in the 750–900 cm?1 region. Sharp Q branches occur for each ν7 state in the sum bands, but only a number of R-branch bandheads and no recognizable Q branches in the difference bands. Assignments of the sum band Q branches through v7 = 6 were made and molecular constants were determined for the ν2 + ν17 ← 0 transition at 819.7 cm?1. The ν7 potential function in the v2 = 1 state was found to have a 1.2 cm?1 barrier with a minimum at α = 4.9°, where 2α is the angular deviation from linearity. The Q-branch positions predicted from the calculated energy levels fit those observed within several cm?1.  相似文献   

20.
The strong infrared absorption in the ν3 S–F stretching region of sulphur hexafluoride (SF6) near 948 cm?1 makes it a powerful greenhouse gas. Although its present concentration in the atmosphere is very low, it is increasing rapidly, due to industrial pollution. The ground state population of this heavy species is only 32% at room temperature and thus many hot bands are present. Consequently, a reliable remote-sensing spectroscopic detection and monitoring of this species require an accurate modelling of these hot bands. We used two experimental set-ups at the SOLEIL French synchrotron facility to record some difference and combination bands of SF6: (1) a new cryogenic multiple pass cell with 93 m optical path length and regulated at 163 ± 2 K temperature and (2) the Jet-AILES supersonic expansion set-up. With this, we could obtain high-resolution absorption spectra of the ν3 ? ν1, ν3 ? ν2, ν1 + ν3 and ν2 + ν3 bands at low temperature. These spectra could be assigned and analysed, thanks to the SPVIEW and XTDS computer programs developed in Dijon. We performed two global fits of effective Hamiltonian parameters. The first one is a global fit of the ground state, ν2, ν3, ν3 ? ν2, ν2 + ν3, 2ν3 and 2ν3 ? ν3 rovibrational parameters, using the present spectra and previous infrared, Raman and two-photon absorption data. This allows a consistent refinement of the effective Hamiltonian parameters for all the implied vibrational levels and a new simulation of the 2ν3 + ν2 ? ν2 hot band. The second global fit involves the present ν3 ? ν1 and ν1 + ν3 lines, together with previous ν1 Raman data, in order to obtain refined ν1 parameters and also ν1 + ν3 parameters in a consistent way. This allows to simulate the ν3 + ν1 ? ν1 hot band.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号