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1.
The microwave spectra of tertiarybutylphosphine (CH3)3CPH2, (CH3)3CPHD, and (CH3)3CPD2 have been recorded in the region 26.5–40.3 GHz. Both a- and c-type transitions were observed and assigned for the “light” and “heavy” molecules and a-type transitions were observed and assigned for the d1 species. The rigid rotor rotational constants were determined to be A = 4397.63 ± 0.04, B = 2878.88 ± 0.02, and C = 2870.86 ± 0.02 MHz for (CH3)3CPH2 and A= 4261.98 ± 0.04, B = 2769.82 ± 0.02, and C = 2752.71 ± 0.02 MHz for (CH3)3CPD2 and A = 4330 ± 2, B = 2831.45 ± 0.02, and C = 2801.50 ± 0.02 MHz for (CH3)3CPHD. Dipole moment components of |μa| = 1.06 ± 0.02, |μc| = 0.49 ± 0.02 and |μt| = 1.17 ± 0.02D were determined from the Stark effect. By assuming reasonable structural parameters for the tertiarybutyl and phosphine groups, a least-squares fit of the rotational constants gave λP-C = 1.896 A? and ?CPH = 95.7°. No splitting was observed of the first excited state of the phosphine torsional mode.  相似文献   

2.
The microwave spectra of SiH3PD2 have been recorded in the range 26.5–40.0 GHz. Both a- and c-type transitions were observed and assigned. The rigid rotor rotational constants were determined to be A = 37589.06 ± 0.11, B = 5315.70 ± 0.02, and C = 5258.70 ± 0.02 MHz. The barrier to internal rotation has been calculated from the A-E splittings to be 1512 ± 26 cal/mole. The dipole moment components of |μa| = 0.22 ± 0.01, |μc| = 0.56 ± 0.01, and |μt| = 0.60 ± 0.01 D were determined from the Stark effect. By using previously determined microwave data for SiH3PH2, several structural parameters have been calculated and their values are compared to similar ones in other compounds. The Raman (0–2500 cm?1) spectra of gaseous, liquid, and solid SiH3PH2 and gaseous SiH3PD2 have been recorded and interpreted in detail on the basis of Cs molecular symmetry.  相似文献   

3.
The microwave spectrum of tetrahydropyran-4-one has been studied in the frequency region 18 to 40 GHz. The rotational constants for the ground state and nine vibrationally excited states have been derived by fitting a-type R-branch transitions. The rotational constants for the ground state are (in MHz) A = 4566.882 ± 0.033, B = 2538.316 ± 0.003, C = 1805.878 ± 0.004. From information obtained from the gas-phase far-infrared spectrum and relative intensity measurements, these excited states are estimated to be ~ 100 cm?1 above the ground state for the first excited state of the ring-bending and ~ 185 cm?1 for the first excited state of the ring-twisting mode. Stark displacement measurements were made for several transitions and the dipole moment components determined by least-squares fitting of the displacements: (in Debye) |μa| = 1.693 (0.001), |μb| = 0.0, |μc| = 0.300 (0.013) yielding a total dipole moment μtot = 1.720 (0.003). A model calculation to reproduce the rotational parameters indicates that the data are consistent with the chair conformation.  相似文献   

4.
The microwave spectrum of 3,4-epoxy-1-butene has been studied in the region 26.5–40 GHz. For the ground-state molecule, 170 lines have been assigned up to J = 34. From these the rotational constants and the centrifugal distortion constants were determined by least-squares fitting. The rotational constants are (in MHz): A = 17367.284 ± 0.011, B = 3138.186 ± 0.004, C = 3043.697 ± 0.004. The dipole moment has been determined from the Stark effect as (in Debye): μa = 0.72 ± 0.01, μb = 1.688 ± 0.003, μc = 0.39 ± 0.02, μ = 1.875 ± 0.005. The rotational constants and dipole moment components indicate that the assigned conformer is the s-trans form. A rotational assignment has also been made for the first excited state of the torsional mode. The fundamental frequency of the torsional mode has been estimated as 142 ± 20 cm?1 from relative intensity measurement.  相似文献   

5.
The rotational spectrum of 3-methylcyclopentanone has been observed in the frequency region from 18.0 to 26.5 GHz. Both a-type and b-type transitions in the ground vibrational state and a-type transitions in five excited states have been assigned. The ground state rotational constants are determined to be A = 5423.32 ± 0.18, B = 1949.51 ± 0.01, and C = 1529.59 ± 0.01 MHz. Analysis of the measured quadratic Stark effects gives the dipole moment components ∥μa∥ = 2.97 ± 0.02, ∥μb∥ = 1.00 ± 0.03, ∥μc∥ = 0.18 ± 0.06, and the total dipole moment ∥μt∥ = 3.14 ± 0.03 D. These data are consistent with a twisted-ring conformation with a methyl group in the equatorial position.  相似文献   

6.
The microwave spectrum of HNO has been observed and analyzed. Both a-type and b-type transitions have been measured. The rotational constants obtained are A = 553903.0 ± 2.7 MHz, B = 42308.52 ± 0.10 MHz, and C = 39169.46 ± 0.10 MHz. In the analysis of the spectrum, centrifugal distortion corrections are tentatively taken into account by using the centrifugal distortion constants determined by Dalby. The quadrupole coupling constants for nitrogen in HNO are determined to be χaa = 0.36 ± 0.56 MHz, χbb = ? 5.46 ± 0.30 MHz, and χcc = 5.10 ± 0.26 MHz. The dipole moment and its components determined from the Stark effect measurement are μtotal = 1.67 ± 0.03 D, μa = 1.03 ± 0.01 D, and μb = 1.31 ± 0.02 D. The microwave spectrum of DNO has been reanalyzed by taking into account the centrifugal distortion effect. The inertia defects for HNO and DNO have been calculated. The results are limited in precision by the lack of reliable force constants.  相似文献   

7.
The microwave spectrum of normal trans-ethylamine CH3CH2NH2 and that of the -NHD and -ND2 species were measured and assigned. The obtained rotational constants for the ground state of the normal species are (in MHz): A = 31 758.33 ± 0.08, B = 8749.157 ± 0.025, and C = 7798.905 ± 0.025. The fitted dipole moment components are (in Debye): |μ|a = 1.057 ± 0.006, |μb| = 0.764 ± 0.009, and |μt| = 1.304 ± 0.011. The quadrupole coupling constants were fitted as (in MHz): χ+ = 1.62 ± 0.035 and χ? = ?1.89 ± 0.08. Analysis of the HFS of the deuterated species -ND2 allowed the experimental determination of the principal quadrupole tensor values (in MHz): χzz = ?4.68 ± 0.20, χyy = 1.75 ± 0.06, and χxx = 2.93 ± 0.20. The angle between the CN bond and the direction of the χzz quadrupole tensor component was fitted as 108.9° ± 0.6° and agreed with the expected general direction of the lone electron pair.  相似文献   

8.
The microwave spectra of 3-aminopropanol and three of its deuterium substituted isotopic species have been investigated in the 26.5 to 40 GHz frequency region. The rotational spectrum of only one conformer has been assigned in which presumably a hydrogen bond of the OH---N type exists. The rotational spectra of a number of excited vibrational states have been observed and assignments made for some of these excited states. The average intensity ratio for the rotational transitions between the ground and excited vibrational states indicates that the first excited state is about 120 cm?1 above the ground state.and the next higher state is roughly 200 cm?1 above the ground vibrational state. The dipole moment was determined from the Stark effect measurements to be 3.13 ± 0.04 D with its principal axes components as |μa| = 2.88 ± 0.03 D, |μb| = 1.23 ± 0.04 D and |μc| = 0.06 ± 0.01 D. The possibility of another conformer where the hydrogen bond could be of NH---O type was explored, but the spectra of such a conformer could not be identified.  相似文献   

9.
The microwave spectrum of 3-oxabicyclo(3.1.0.)hexane has been studied in the range 26.5–40 GHz (R-band) with a Hewlett Packard Model 8400 spectrometer. Both a and c-type R-branch transitions were used to derive the rotational constants for the ground state and first two excited states of the ring-puckering mode. The data are consistent with a single stable conformation, in agreement with a previous far-infrared study (1) and this is shown to be the boat conformation, as was the case with the similar molecules cyclopentene oxide (2, 3) (6-oxabicyclo(3.1.0.)hexane) and 3,6-dioxabicyclo(3.1.0.)hexane (1, 4). The rotational constants for the ground state are (in MHz) A = 6038.06; B = 4432.47; C = 3303.43 yielding κ = ? 0.174268. The electric dipole moment components of the ground state (in Debye units) are |μa| = 1.36 ± 0.02; |μc| = 1.03 ± 0.02 yielding a total dipole moment μ = 1.71 ± 0.03.  相似文献   

10.
The molecular rotational spectrum of 3-butynenitrile (3BN, propargyl cyanide), HCCCH2CN, has been investigated in the vibrational ground state. A total of 222 transitions up to J = 69 have been measured between 8 and 300 GHz. The Hamiltonian used for the spectral analysis was required to include all centrifugal terms of fourth and sixth orders and one term of eighth order in the angular momentum components in order to reproduce the transition frequencies within the experimental error. Significant values for the respective distortion coefficients could be determined. The molecular dipole moment components were calculated from measured Stark effect shifts as |μa| = (3.23 ± 0.05) D, |μb| = (2.34 ± 0.02) D; μtot = (3.99 ± 0.05) D.  相似文献   

11.
The microwave spectrum of 3,6-dioxabicyclo[3.1.0.]hexane has been obtained. The rotational lines of one ring conformation only have been observed and assigned. Ground state rotational constants are A0 = 6287.302 ± 0.011 MHa, B0 = 4683.546 ± 0.008 MHz, and C0 = 3358.517 ± 0.089 MHz. The diploe moment components obtained from Stark effect measurements are μa = 0.276 ± 0.010 D and μc = 2.47 ± 0.04 giving μ = 2.485 ±0.040 for the dipole moment of the molecule. The rotational constants and dipole moment components obtained experimentally can be satisfactorily explained only if the boat form is the most stable ring conformation.  相似文献   

12.
The microwave spectra of the skew-3-iodopropene in its torsionally excited state were studied in the region 15 to 23 GHz. From the analyses of the a-type R-branch and b-type Q-branch transitions, the rotational constants and the elements of the χ-tensor were obtained: A1 = 17 783.84 ± 0.77, B1 = 1591.26 ± 0.02, C1 = 1540.24 ± 0.02, χaa = ?1333 ± 8, χbb = 386 ± 4, χcc = 947 ± 6, and |χab| = 1086 ± 2, each in MHz for the first torsionally excited state, and A2 = 17 915.85 ± 1.38, B2 = 1594.49 ± 0.03, C2 = 1541.85 ± 0.03, χaa = ?1319 ± 10, χbb = 383 ± 5, χcc = 936 ± 8, and |χab| = 1073 ± 3, each in MHz for the second torsionally excited state, respectively. From the observed line intensity, the torsional frequencies of the CH2I group between the ground and the first excited states and also between the first and second excited states were obtained to be 114 ± 34 and 80 ± 24 cm?1, respectively.  相似文献   

13.
The microwave spectrum of 2-cycloheptene-1-one, an unsaturated cyclic ketone, has been studied in the regions 26.5–40 and 7.0–12.4 GHz. An analysis of the ground-state “a”-type transitions yielded the rotational constants (in MHz): A = 2997.27, B = 2049.24, C = 1399.76. The “a”-type transitions of an excited vibrational state were also assigned, giving A = 3000.51, B = 2046.65, C = 1398.88. The centrifugal distortion constants, DJ and DJK, were needed to fit the data adequately. A study of the Stark effect yielded the dipole moment components (in debye) μa = 3.63 ± 0.023 and μc = 0.882 ± 0.040. The μb component could not be determined from the Stark effect data. These data are used to discuss the molecular conformation of cycloheptene-1-one.  相似文献   

14.
Microwave spectra were observed and analyzed for 2-aminoethanethiol and 2-chloroethanethiol. The amino compound exists in two gauche rotameric conformations, one exhibiting an intramolecular SH?N hydrogen bond. The hydrogen-bonded conformer lies higher in energy by 274 ± 90 cal mole?1 and has the following rotational constants (in MHz): A = 12 040.1 ± 11.3, B = 3352.24 ± 0.03, and C = 2881.99 ± 0.03. For the non-hydrogen-bonded conformer the rotational constants (in MHz) are A = 11 929.9 ± 10.2, B = 3395.01 ± 0.03, and C = 2877.82 ± 0.03. Dipole moment measurements for the H-bond conformer led to μa = 2.68 D, μb = 0.88 D, and μc = 0.37 D, while for the non-H-bond form the values are μa = 1.51 D, μb = 0.0 D, and μc = 0.62 D. In the case of chloroethanethiol, the only assigned spectral lines were the unresolved JJ + 1 a-type bands of a trans conformation. For this molecule the combination rotational constant B + C has the value 2955.17 ± 0.02 MHz for the 35Cl species and 2879.73 ± 0.02 MHz for the 37Cl species.  相似文献   

15.
The microwave spectra of two isotopic species of thioacetic acid, CH3COSH and CH3COSD, have been studied. Using the principal axis method (PAM), including terms through n = 6 in the perturbation series and the denominator correction, the spectra were analyzed and 45 lines for CH3COSH and 40 lines for CH3COSD were assigned. The parameters obtained by the least-squares analysis are A = 9913.29 ± 0.56 MHz, B = 4923.11 ± 0.23 MHz, C = 3354.60 ± 0.24 MHz, θ = 57.080 ± 0.030°, s = 6.2980 ± 0.0012, and Iα = 3.198 ± 0.020 amuA?2 for CH3COSH, and A = 9662.80 ± 0.78 MHz, B = 4810.74 ± 0.26 MHz, C = 3273.92 ± 0.18 MHz, θ = 55.097 ± 0.024°, s = 5.9742 ± 0.0016, and Iα = 3.171 ± 0.020 amuA?2 for CH3COSD. The barrier to internal rotation of the methyl group is V3 = 222.6 ± 1.4 cal/mole for CH3COSH and V3 = 212.9 ± 1.4 cal/mole for CH3COSD. The Stark effect measurements of A species transitions for CH3COSH led to the dipole moment μ = 1.821 ± 0.013 D with the components μa = 0.191 ± 0.010 D and μb = 1.811 ± 0.013 D.  相似文献   

16.
The microwave spectra of silyl methyl ether, SiH3OCH3, and its isotopic modifications, SiH3OCD3, SiD3OCH3, and SiD3OCD3, have been observed and assigned. Large splittings arising from the internal rotation of the methyl top and somewhat smaller splittings arising from the internal rotation of the silyl top are observed. The “effective barrier” to internal rotation of the methyl top is approximately 550 cal/mole. The effective barrier to internal rotation of the silyl top is approximately 1100 cal/mole. The internal rotation of the two tops is strongly coupled, but no values for the potential coupling constants have been obtained. The dipole moment has been determined to be 1.15 ± 0.02 D (|μa| = 0.647 ± 0.01 and |μb| = 0.95 ± 0.02 D) from measurements of the Stark effect.  相似文献   

17.
Microwave spectra have been observed and assigned for the axial and equatorial conformations of 4-cyanocyclopentene. For the axial species the rotational constants in megahertz are A = 5095.77, B = 2185.81, and C = 1936.50; for the equatorial species the values are A = 6762.66, B = 1916.72, and C = 1590.60. Dipole moment measurements yielded |μa| = 3.48 D and |μc| = 2.51 D for the axial form and |μa| = 3.85 D and |μc| = 1.10 D for the equatorial form. Relative intensity measurements showed the equatorial conformer to be 400 ± 60 cal mole?1 lower in energy. Several sets of vibrational satellites were observed and natural abundance C13 spectra were obtained for the equatorial conformer.  相似文献   

18.
The microwave spectra of the ground state and four excited states of one gauche rotamer of allylamine have been measured and assigned. The vibrationally excited states most probably belong to the CC torsional mode. The spectrum was conclusively identified as due to the N-gauche, lone-electron-pair gauche 1 form of the molecule by means of the N-quadrupole coupling constants and dipole moment components. The observed values of the quadrupole coupling constants differed appreciably in the vibrational states; a model was used to explain the effect. The third and fourth excited states present a symmetrical splitting due to tunneling. Two motions are required to connect mirror images of the molecule. The ground state constants obtained are (in MHz): A0 = 25 086.54 ± 0.16, B0 = 4 252.82 ± 0.10, C0 = 4 133.43 ± 0.12; χaa = 2.31 ± 0.13, χbb - χcc = 1.29 ± 0.09, and (in D) |μa| = 0.169 ± 0.002, |μb| = 0.807 ± 0.003, |μc| = 0.829 ± 0.002.  相似文献   

19.
The microwave spectra of 3-butyn-1-ol, in both the normal and deuterated HCCCH2CH2OD, species, have been assigned and one stable form of the molecule has been found to be an intramolecularly hydrogen bonded gauche form similar to the one found for the 2-haloethanols. The rotational constants for the ground vibrational state are (in MHz) as follows. HCCCH2CH2OH: A = 10438.35, B = 3385.87, C = 2760.54; HCCCH2CH2OD: A = 9998.35, B = 3378.14, C = 2723.79. Stark effect measurements yielded dipole moment components of (in D): μa = 0.91, μb = 0.85, μc = 0.60, and μtotal = 1.38. Assignments have also been made for two excited torsional states.  相似文献   

20.
The microwave rotational spectrum of the unstable species thioacetaldehyde, CH3CHS, has been studied in a flow pyrolysis system. Eight isotopic variants have been studied allowing an accurate substitution structure to be derived. Most of the spectral lines show splittings due to internal rotation, analysis of which has allowed a barrier study to be made. For the torsional ground state of the most abundant species, V3 = 1572 ± 30 cal/mole or 375.7 ± 7 J/mole. The dipole moment is μ = 2.33 ± 0.02 D with components μA = 2.26 ± 0.02 and μB = 0.56 ± 0.01 D.  相似文献   

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