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1.
The rotational spectra of three isotopomers of the Ar–dimethyl sulfide (DMS) complex – normal, 34S, and 13C species – were measured in the frequency region from 3.7 up to 24.1 GHz by Fourier transform microwave spectroscopy. The normal species yielded 43 a-type and 79 c-type transitions. No Ar tunneling splitting was observed, while many transitions were split by the internal rotation of the two methyl tops of the DMS unit. In cases where the K-type splitting was close to that due to methyl internal-rotation, several forbidden transitions were observed that followed b-type selection rules. All of the observed transition frequencies were analyzed simultaneously using a phenomenological Hamiltonian also used in previously published work describing the Ar–dimethyl ether (DME) and Ne–DME complexes. The rotational and centrifugal distortion constants and the potential barrier height to methyl-top internal rotation, V3, were determined. The rotational constants were consistent with an Ar–DMS center of mass (cm) distance of 3.796 (3) Å and a S–cm–Ar angle of 104.8 (2)°. The V3 potential barrier obtained, 736.17 (32) cm−1, was 97.8% of the DMS monomer barrier. By assuming a Lennard–Jones-type potential, the dissociation energy was estimated to be 2.4 kJ mol−1, which was close to the value for Ar–DME, 2.5 kJ mol−1.  相似文献   

2.
A recently proposed 13C–1H recoupling sequence operative under fast magic-angle spinning (MAS) [K. Takegoshi, T. Terao, Solid State Nucl. Magn. Reson. 13 (1999) 203–212.] is applied to observe 13C–1H and 15N–1H dipolar powder patterns in the 1H–15N–13C–1H system of a peptide bond. Both patterns are correlated by 15N-to-13C cross polarization to observe one- or two-dimensional (1D or 2D) correlation spectra, which can be simulated by using a simple analytical expression to determine the H–N–C–H dihedral angle. The 1D and 2D experiments were applied to N-acetyl[1,2-13C,15N] -valine, and the peptide φ angle was determined with high precision by the 2D experiment to be ±155.0°±1.2°. The positive one is in good agreement with the X-ray value of 154°±5°. The 1D experiment provided the value of φ=±156.0°±0.8°.  相似文献   

3.
We demonstrate that individual H–C–C–H torsional angles in uniformly labelled organic solids can be estimated by selective excitation of 13C double-quantum coherences under magic-angle spinning at rotational resonance. By adapting a straightforward one-dimensional experiment described earlier [T. Karlsson, M. Eden, H. Luhman, M.H. Levitt, J. Magn. Reson. 145 (2000) 95–107], a double-quantum filtered spectrum selective for Cα and Cβ of uniformly labelled l-[13C,15N]valine is obtained with 25% efficiency. The evolution of Cα–Cβ double-quantum coherence under the influence of the dipolar fields of bonded protons is monitored to provide a value of the Hα–Cα–Cβ–Hβ torsional angle that is consistent with the crystal structure. In addition, double-quantum filtration selective for C6 and C1′ of uniformly labelled [13C,15N]uridine is achieved with 12% efficiency for a 13C–13C distance of 2.5 Å, yielding a reliable estimate of the C6–H and C1′–H projection angle defining the relative orientations of the nucleoside pyrimidine and ribose rings. This procedure will be useful, in favourable cases, for structural analysis of fully labelled small molecules such as receptor ligands that are not readily synthesised with labels placed selectively at structurally diagnostic sites.  相似文献   

4.
The emission spectrum of the d3Πg-a3Πu system (Swan bands) due to 13C2 and 12C13C molecules has been obtained in a low pressure hollow cathode discharge through a mixture of argon and benzene containing enriched 13C (90%). The spectrum was photographed on a 3.4-m Ebert spectrograph (reciprocal dispersion 0.54 Å mm−1 in the first order). Isotope effect measurements have been carried out to determine the shift between isotopic bands and those emitted by ordinary molecules. The rotational analysis of six 13C2 bands and three bands of 12C13C has been performed and molecular constants were derived.  相似文献   

5.
Six FIR laser lines from CD3OH pumped by the 10R(36) and the 10R(18) CO2 laser lines are assigned to specific rotational energy levels in the excited C–0 stretch state. It is found that their upper laser levels are shifted by a Fermi resonance between the C–0 stretch vibration and the third and forth harmonics of the torsional mode. The Fermi resonance shifts are +0.332 cm–1 and +2.251 cm–1 for the upper laser levels pumped by the 10R(36) and the 10R(18) CO2 laser lines, respectively. Calculated frequencies of the pump and the laser transitions agree with those of the pump CO2 laser lines and the observed FIR laser lines within estimated accuracy.  相似文献   

6.
Measurements of the rotational spectrum of HCN in excited vibrational states have been extended to higher-J values. The transitions reach J=8←7 around 710 GHz for most vibrational states studied in this investigation and J=22←21 near 2 THz for the (020) and (030) vibrational states. Using a pure sample of gaseous HCN at 350 K, selected states up to one quantum in the C–H stretching vibration at 3311.5 cm−1 have been investigated. Even transitions having two quanta in the C–H stretch could be studied employing a glow discharge in a gas mixture of CH4 and N2. Molecular constants in 13 vibrational states have been obtained, several of which have been studied for the first time by rotational spectroscopy. The vibrational temperature in the discharge system is found to be about 1500 K for the stretching vibrational modes and about 600 K for the bending states.  相似文献   

7.
By using resonance-enhanced two-photon ionization, rotationally resolved spectra of the 610 band of 12C6D6 and (13C12C5D6 molecules have been obtained for the first time at a rotational temperature of 0.7 K in a pulsed supersonic beam. From the former, the values of B″ = 0.1573 ± 0.0008 cm−1, B′ = 0.1508 ± 0.0008 cm−1, and ξ′ = −0.412 ± 0.050 have been derived for rotational and Coriolis constants in the lower and upper levels of 12C6D6. Also, the spectra corresponding to 12C6H6 and 13C12C5H6 have been measured and the values B″ = 0.1892 ± 0.0008 cm−1, B′ = 0.1815 ± 0.0008 cm−1, and ξ′ = −0.586 ± 0.050 have been obtained for 12C6H6, in agreement with previous results. Rotational constants of 13C labeled benzene molecules have been geometrically deduced from the constants obtained. Experimental isotopic shifts of the vibronic origins of the 6a10 and 6b10 bands have been determined. There is agreement with previous 13C-benzene-h6 data. The present results are −0.91 ± 0.05 and 3.09 ± 0.05 cm−1 for 13C12C5D6 and −1.64 ± 0.05 and 2.64 ± 0.05 cm−1 for 13C12C5H6. The splittings of vibrational modes 6b and 6a in the 1B2u state are 4.00 ± 0.10 cm−1 for 13C12C5D6 and 4.28 ± 0.10 cm−1 for 13C12C5H6.  相似文献   

8.
This work explores the utility of simple rotary resonance experiments for the determination of the magnitude and orientation of 13C chemical shift tensors relative to one or more 13C–14N internuclear axes from 13C magic-angle-spinning NMR experiments. The experiment relies on simultaneous recoupling of the anisotropic 13C chemical shift and 13C–14N dipole–dipole coupling interactions using 2D rotary resonance NMR with RF irradiation on the 13C spins only. The method is demonstrated by experiments and numerical simulations for the 13Cα spins in powder samples of -alanine and glycine with 13C in natural abundance. To investigate the potential of the experiment for determination of relative/absolute tensor orientations and backbone dihedral angles in peptides, the influence from long-range dipolar coupling to sequential 14N spins in a peptide chain (14Ni13Cαi14Ni+1 and 14Ni+113C′i14Ni three-spin systems) as well as residual quadrupolar–dipolar coupling cross-terms is analyzed numerically.  相似文献   

9.
Ultraviolet emission spectra of the TiF radical in the 407 nm region have been observed at a resolution of 0.04 cm−1 using a Fourier transform spectrometer. A new electronic assignment of 4Γ–X4Φ has been proposed. Rotational analysis has been obtained for the 0–0 and 1–1 vibrational bands of the 4Γ5/2X4Φ3/2, 4Γ9/2X4Φ7/2, and 4Γ11/2X4Φ9/2 subbands and the 0–0 band of 4Γ7/2X4Φ5/2. The lower state rotational and centrifugal distortion constants are consistent with the previous results [J. Mol. Spectrosc. 184 (1997) 186; J. Chem. Phys. 119 (2003) 9496], to the conformation that the lower state of the 407 nm band is the 4Φ ground electronic state. Rough estimates of the vibrational interval ΔG(1/2) and the spin–orbit coupling constant A in the 4Γ state were also obtained.  相似文献   

10.
The reactivity of the (0 0 0 1)-Cr–Cr2O3 surface towards water was studied by means of periodic DFT + U. Several water coverages were studied, from 1.2H2O/nm2 to 14.1H2O/nm2, corresponding to ¼, 1, 2 and 3 water/Cr at the (0 0 0 1)-Cr2O3 surface, respectively. With increasing coverage, water gradually completes the coordination sphere of the surface Cr atoms from 3 (dry surface) to 4 (1.2 and 4.7H2O/nm2), 5 (9.4H2O/nm2) and 6 (14.1H2O/nm2). For all studied coverages, water replaces an O atom from the missing above plane. At coverages 1.2 and 4.7H2O/nm2, the Cr–Os (surface oxygen) acid–base character and bond directionality govern the water adsorption. The adsorption is molecular at the lowest coverage. At 4.7H2O/nm2, molecular and dissociative states are isoenergetic. The activation energy barrier between the two states being as low as 12 kJ/mol, allowing protons exchanges between the OH groups, as evidenced by ab inito molecular dynamics at room temperature. At coverages of 9.4 and 14.1H2O/nm2, 1D- (respectively, 2D-) water networks are formed. The resulting surface terminations are –Cr(OH)2 and –Cr(OH)3– like, respectively. The increased stability of those terminations as compared to the previous ones are due to the stabilization of the adsorbed phase through a H-bond network and to the increase in the Cr coordination number, stabilizing the Cr (t2g) orbitals in the valence band. An atomistic thermodynamic approach allows us to specify the temperature and water pressure domains of prevalence for each surface termination. It is found that the –Cr(OH)3-like, –Cr(OH)2 and anhydrous surfaces may be stabilized depending on (TP) conditions. Calculated energies of adsorption and OH frequencies are in good agreement with published experimental data and support the full hydroxylation model, where the Cr achieves a 6-fold coordination, at saturation.  相似文献   

11.
The microwave spectra of two isotopic species of acetyl isocyanate, 13CH3C(O)NCO and CD3C(O)NCO, were observed in order to determine the ro structure and confirmation of the molecular conformation. These isotopic species were prepared by reacting acetyl-2-13C-chloride or acetyl-d3 chloride with sliver cyanate. The rotational spectra of A-level in 26.5-60.0 GHz region have been observed by Stark-modulated microwave spectrometer. Some absorption lines in E-level were observed in 13CH3C(O)NCO. The rotational constants in the ground vibrational state were determined to be A = 10654.8(18), B = 2177.32(2), and C = 1827.65(2) MHz for 13CH3C(O)NCO, and A = 9713.90(6), B = 2042.04(2), and C = 1722.78(2) MHz for CD3C(O)NCO, respectively. The values of ΔI (= Ic − Ia − Ib) of the 13C species (−3.024(13) uÅ2) and the d3 species (−6.163(3) uÅ2) indicate that the molecule has Cs symmetry. The rs coordinates of the carbon atom in the methyl group were determined to be |a| = 2.183(3), |b| = 0.706(9), and |c| = 0.080(87) Å. The determined coordinates were in agreement with those calculated for the cis form, in which the carbonyl group is eclipsed by the NCO group. The six structural parameters of the cis form were adjusted by fitting to the observed rotational constants. The observed rotational constants of the cis form were in better agreement with those calculated using the QCISD/6-31G (d, p) level rather than those calculated using the MP2/6-31G (d, p) level. The barrier of internal rotation of the methyl group was determined as 4.283(16) kJ mol−1 in 13CH3C(O)NCO. The structural tendencies and the relationship between RNC and 14N quadrupole coupling constants (χcc) were discussed.  相似文献   

12.
The high-resolution infrared spectrum of perchloric acid has been observed in the 700–750 cm−1region using the infrared beamline at the MAX-I electron storage ring in Lund, Sweden. The spectrum displays extensive rotational structure due to a typeaband and is assigned to ν5, the HO–ClO3stretch. Approximately 1100 transitions in H35ClO4and ca. 300 in H37ClO4have been fitted using single subband analysis, generating constants for transitions having the sameK. The origin of H35ClO4K= 3tseries is found to be 726.9971(4) cm−1. Rotationally resolved infrared line positions are now available for the identification of HClO4in the atmosphere, which may be produced by the heterogeneous oxidation of chlorine containing species in the stratosphere.  相似文献   

13.
We present two new sensitivity enhanced gradient NMR experiments for measuring interference effects between chemical shift anisotropy (CSA) and dipolar coupling interactions in a scalar coupled two-spin system in both the laboratory and rotating frames. We apply these methods for quantitative measurement of longitudinal and transverse cross-correlation rates involving interference of 13C CSA and 13C–1H dipolar coupling in a disaccharide, α,α- -trehalose, at natural abundance of 13C as well as interference of amide 15N CSA and 15N–1H dipolar coupling in uniformly 15N-labeled ubiquitin. We demonstrate that the standard heteronuclear T1, T2, and steady-state NOE autocorrelation experiments augmented by cross-correlation measurements provide sufficient experimental data to quantitatively separate the structural and dynamic contributions to these relaxation rates when the simplifying assumptions of isotropic overall tumbling and an axially symmetric chemical shift tensor are valid.  相似文献   

14.
The ν3±1 perpendicular band of 14NF3 ( cm−1) has been studied with a resolution of 2.5 × 10−3 cm−1, and 3682 infrared (IR) transitions (Jmax=55, Kmax=45) have been assigned. These transitions were complemented by 183 millimeterwave (MMW) rotational lines (Jmax=25, Kmax=19) in the 150–550 GHz region (precision 50–100 kHz). The kl=+1 level reveals a strong A1/A2 splitting due to the l(2,2) rotational interaction (q=−4.05 × 10−3 cm−1) while the kl=−2 and +4 levels exhibit small A1/A2 splittings due to l(2,−4) and l(0,6) rotational interactions. All these splittings were observed by both experimental methods. Assuming the v3=1 vibrational state as isolated, a Hamiltonian model of interactions in the D reduction, with l(2,−1) rotational interaction (r=−1.96 × 10−4 cm−1) added, accounted for the observations. A set of 26 molecular constants reproduced the IR observations with σIR=0.175 × 10−3 cm−1 and the MMW data with σMMW=134 kHz. The Q reduction was also performed and found of comparable quality while the QD reduction behaved poorly. This may be explained by a predicted Coriolis interaction between v3=1 and v1=1 (A1, 1032.001 cm−1) which induces a slow convergence of the Hamiltonian in the QD reduction but has no major influence on the other reductions. The experimental equilibrium structure could be calculated as: re(N–F)=1.3676 Å and (FNF)=101.84°.  相似文献   

15.
We address the question whether intra-atomic repulsion U in YBa2Cu3O7 is strong enough to provide electron localization. We use a recently proposed self-interaction-correction (SIC) based approach which provides a qualitative criterion (symmetry breaking) for electron localization. Using a first-principle LMTO-Green-function technique we show that only dxy, dyz and dzx orbitals of Cu in the CuO2 plane get localized; localized orbitals have 4.5 eV smaller energy then itinerant ones (which gives an estimate of U). dx2−y2 and d3z2−r2 orbitals of Cu and p-orbitals of O are stable against localization.  相似文献   

16.
Using 0.002 cm−1 resolution Fourier transform absorption spectra of an 17O-enriched ozone sample, an extensive analysis of the ν3 band together with a partial identification of the ν1 band of the 17O16O17O isotopomer of ozone has been performed for the first time. As for other C2v-type ozone isotopomers [J.-M. Flaud and R. Bacis, Spectrochim. Acta, Part A 54, 3–16 (1998)], the (001) rotational levels are involved in a Coriolis-type resonance with the levels of the (100) vibrational state. The experimental rotational levels of the (001) and (100) vibrational states have been satisfactorily reproduced using a Hamiltonian matrix which takes into account the observed rovibrational resonances. In this way precise vibrational energies and rotational and coupling constants were deduced and the following band centers ν03) = 1030.0946 cm−1 and ν01) = 1086.7490 cm−1 were obtained for the ν3 and ν1 bands, respectively.  相似文献   

17.
The reactions of fullerene[C60] with 2′-azidoethyl 2,3,4,6-tetra-O-acetyl-α-d-mannopyranoside (2a) and 2′-azidoethyl 2,3,4,6-tetra-O-acetyl-β-d-galactopyranoside (2b) under ultrasonic irradiation cause the cycloaddition of 2′-azidoethyl glycosides to fullerene[C60] and lead to d-glycosyl fullerene[C60] derivatives 3a and 3b, respectively. The glycosyl fullerene[C60] derivatives were characterized by 1H and 13C NMR, UV–vis, FAB-MS, FT-IR spectra and were a 1:1 glycoside fullerene [C60]-adduct.  相似文献   

18.
The 31P MAS NMR spectrum of solid Li3P7(monoglyme)3 has been reinvestigated over a wide temperature range (−70 to +77°C) and under conditions of better resolution (Larmor frequency of 162 MHz and spinning rate of 30 kHz) than previously measured (121 MHz and 13 kHz). At low temperatures three spinning sideband (ssb) manifolds are observed: a singlet (centered at −45 ppm relative to 85% H3PO4) due to the apical atom (A) of the P7-cage trianion; a 1 : 1 : 1 triplet (at −110, −117, and −124.5 ppm) due to the negatively charged equatorial (E) atoms, and a one to two doublet (at −161 and −168.5 ppm) due to the basal (B) atoms. These results are consistent with the P7 cage having nearly, but not perfect, C3v symmetry. The compound appears to be well ordered in the solid state with very little structural dispersity. On heating, the NMR lines broaden and eventually coalesce into a single ssb manifold. This behavior is ascribed to bond-shift rearrangement similar to the Cope rearrangement in bullvalene. A MAS 2D exchange experiment and a quantitative analysis of the 1D NMR lineshapes indicate that, unlike in solution where the rearrangement involves a single bond shift at a time, in the solid the process involves a succession of two bond shifts: The first leads to an intermediate species in which the rearranged P7 cage is inverted, while in the subsequent step a second bond shift takes place that also restores the original orientation of the cage in the lattice. The overall effect of the double bond shift is equivalent to cyclic permutation of the phosphorus atoms within the five member rings of the P7-cage. The quantitative analysis of the dynamic lineshapes shows that this cyclic permutation proceeds at a different rate in one ring (kd1) than in the other two (kd2,3). The kinetic parameters for these processes are Ea1=18.7 kJ/mol, Ea2,3=58.0 kJ/mol, kd1(17°C)=kd2,3(17°C)=104 s−1. No indications for independent threefold molecular jumps of the P7 cage were found.  相似文献   

19.
The transient thiophosphenous fluoride FPS was produced by pyrolysis of 2.5% F2PSPF2 in Ar at 1300–1800°C. High-resolution (≥0.004 cm−1) Fourier transform infrared spectra of the a-type ν1 and b-type ν2 bands, centered respectively at 803.249 and 726.268 cm−1, were measured and fitted to rotational and quartic centrifugal distortion parameters. The millimeter-wave spectrum, essentially b-type, was measured between 300 and 370 GHz in the ground state and in the ν3 excited state for FP32S and in the ground state for FP34S. The frequencies were fitted to a Watson-type A-reduced Hamiltonian up to sextic distortion terms. High level ab initio calculations with large basis sets were performed on FPS and supported the first identification of its infrared and millimeter wave spectra. The calculated anharmonic force field provided precise ab initio rovibrational α constants which were combined with the experimental molecular parameters to determine an accurate equilibrium structure of the molecule: re(PS)=188.86 pm, re(PF)=158.70 pm, θ(FPS)=109.28°. The collision-controlled 1/e lifetime measured in a 10-Pa (1 : 20) F2PSPF2/Ar mixture was 2 s, more than two orders of magnitude larger than that of FPO under the same experimental conditions.  相似文献   

20.
Self-diffusion coefficients of Li+ DLi+, PF6 DPF6 and solvent propylene carbonate (PC) DPC in LiPF6−PC solutions were determined at 298 K by the pulse gradient spin echo (PGSE) NMR technique over the salt concentration range of 0.1–3.0 M (M = mol dm– 3). The order of the diffusion coefficients was found to be DLi+ < DPF6 < DPC over the concentration range examined, and they were monotonically decreased with increasing the salt concentration. Haven ratio Λ/ΛNMR, where Λ and ΛNMR represent the ionic conductivity measured electrochemically and that estimated via the Nernst-Einstein equation using the diffusion coefficient, respectively, was evaluated as the measure of the ion–ion interaction in the LiPF6–PC solutions. Though Λ/ΛNMR values for LiPF6-solutions decrease with increasing the salt concentration, they were greater than those for LiBF4–PC solutions over the whole concentration range examined, which indicates that the ion pair formation ability of PF6 ion is weaker than that of the BF4 ion. The smaller value of the ionic conductivity for the highly concentrated LiPF6–PC solution (above 2.0 M) than that of the LiBF4-solutions can be attributed to the more rapidly increased viscosity relative to the LiBF4-solution. Classic molecular dynamics (MD) simulations for the respective LiPF6 and LiBF4-solution of 0.5 and 1.0 M were also carried out based on the effective pair potentials. Diffusion coefficients, ionic conductivity and Haven ratio for these solutions were calculated from MD trajectories, and they qualitatively agree with those evaluated by experiments. Pair correlation functions gLiO(r) (for Li+–O (PC) pair) and gLiPF6(r) (for Li+–PF6 pair) or gLiBF4(r) (for Li+–BF4 pair) revealed that the lithium ion weakly forms the contact ion pairs with PF6, whilst strongly with BF4, which supports the present experimental results. Moreover, the simulation results show that both anions in the contact ion pairs predominantly take the monodentate form, which is in contrast to the multidentate coordination predicted by ab initio calculation in gas phase.  相似文献   

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