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1.
Emission spectra of the b1Σ+(b0+) → X3Σ(X10+,X21) and a1Δ(a2) → X21 transitions of AsBr have been measured in the near-infrared spectral region with a Fourier-transform spectrometer. The arsenic bromide radicals were generated in fast-flow systems by reaction of arsenic vapor (Asx) with bromine and were excited by microwave-discharged oxygen. The most prominent features in the spectrum are the Δv = +1,0,−1, and −2 band sequences of the b1Σ+(b0+) → X3Σ(X10+) transition in the range 11 700-12 700 cm−1. With lower intensities, the Δv = 0 and −1 sequences of the b1Σ+(b0+) → X3Σ(X21) sub-system show up in the same range. Further to the red, between 6000 and 6700 cm−1, the Δv = 0, +1, and −1 sequences of the hitherto unknown a1Δ(a2) → X21 transition are observed. Analyses of medium- and high-resolution spectra have yielded improved molecular constants for the X10+, X21, and b0+ states and first values of the electronic energy and the vibrational constants of the a2 state.  相似文献   

2.
Emission spectra of RuN have been recorded at high resolution in the region 12 000-35 000 cm−1 using a Fourier transform spectrometer. The molecules were excited in a ruthenium hollow cathode lamp in the presence of about 2.5 Torr of Ne and 5 m Torr of N2. New bands with origins near 17 758.1, 18 866.4, 19 800.4 and 20 721.5 cm−1 have been assigned as the 0-1, 0-0, 1-0, and 2-0 bands of a new 2Σ+-2Σ+ system with the lower state as the ground state. This transition has been labeled as F2Σ+-X2Σ+, with the F2Σ+ state arising from the 1σ22441 configuration. A rotational analysis of these bands has been carried out and spectroscopic constants have been extracted. The principal equilibrium constants for the ground state of RuN are ΔG(1/2)″=1108.3235(22) cm−1, Be″=0.5545023(42) cm−1, αe″=0.0034468(57) cm−1, re″=1.5714269(60) Å, while the equilibrium constants for the excited state are ωe′=946.8471(40) cm−1, ωexe′=6.4229(14) cm−1, Be′=0.50085(21) cm−1, αe′=0.00375(10) cm−1, re′=1.65345(34) Å. This transition is analogous to the E2Σ+-X2Σ+ system of RhC (W. J. Balfour et al., J. Mol. Spectrosc.198, 393 (1999)).  相似文献   

3.
The emission spectra of CaH and CaD have been recorded at high resolution using a Fourier transform spectrometer and bands belonging to the E2Π-X2Σ+ transition have been measured in the 20 100-20 700 cm−1 region. A rotational analysis of 0-0 and 1-1 bands of both the isotopologues has been carried out. The present measurements have been combined with the previously available pure rotation and vibration-rotation data to provide improved spectroscopic constants for the E2Π state. The constants ΔG(½) = 1199.8867(34) cm−1, Be = 4.345032(49) cm−1, αe = 0.122115(92) cm−1, re = 1.986633(11) Å for CaH, and ΔG(½)=868.7438(46) cm−1, Be = 2.212496(51) cm−1, αe = 0.036509(97) cm−1, re = 1.993396(23) Å for CaD have been determined.  相似文献   

4.
We have recorded laser excitation spectra of the CaOCH3 free radical in a laser ablation molecular beam apparatus, at a spectral resolution of about 0.010 cm−1 and a rotational temperature estimated at 15 K. The two spin-orbit components of the A2E-X2A1 000 origin band between 625 and 630 nm have been analyzed. Five main subbands were revealed, with ΔK=+1 and K″=0,±1,±2. There was clear evidence of lambda-doubling in the A2E1/2-X2A1 000 (F1) K′=+1←K″=0 component. A nonlinear least-squares fitting program based on the model developed by Endo et al. [Y. Endo, S. Saito, and E. Hirota, J. Chem. Phys.81, 122-135 (1984)] fit the experimental data (514 A-X lines, N″≤37) with a root mean square deviation of 0.003 cm−1, using known molecular constants of the ground state. The main vibronic (T0=15 925.1232(5) cm−1), spin-orbit (aζed=66.974 48(51) cm−1), Coriolis (Aζt=5.437 30(24)) cm−1, rotational (A=5.439 97(24) cm−1, B=0.117 884(2) cm−1), and fine structure constants (ε1=−8.208(14)×10−3 cm−1, h1=1.50(12)×10−4 cm−1, εaa=3.58(89)×10−3 cm−1, εbc=3.20(76)×10−3 cm−1) for the excited state have been obtained.  相似文献   

5.
Emission spectra of the b1Σ+(b0+)→X3Σ(X10+) transition of phosphorus iodide have been measured with a high-resolution Fourier-transform spectrometer. The PI radicals were generated and excited in a fast-flow system by reaction of phosphorus vapor (Px) with iodine and microwave-discharged oxygen. Four sequences, Δv=0,+1,−1,−2, of the b1Σ+(b0+)→X3Σ(X10+) transition of PI comprising 28 bands were observed. Six bands were measured at high spectral resolution. Vibrational and rotational analyses have yielded accurate spectroscopic constants of the X10+ and b0+ states (in cm−1): X10+: ωe=371.296(4), ωexe=1.3302(9), Be=0.1194117(2), αB=−0.0005676(7), De=4.56(2) ×10−8; b0+: Te=11136.921(4), ωe=400.165(6), ωexe=1.345(2), Be=0.1239237(2), αB=−0.0005540(2), De=4.84(5) × 10−8, where the numbers in parentheses are the standard deviations of the parameters. No emissions of the b0+X21 sub-system nor of the a1Δ(a2)→X3Σ(X21) transition have been observed leaving PI the only group Va halide for which the spin splitting in the X3Σ ground state is still unknown.  相似文献   

6.
The gas phase infrared emission spectrum of the A3Σ-X3Π electronic transition of SiC has been observed using a high resolution Fourier transform spectrometer. Three bands ν′ − ν″ = 0-1, 0-0, and 1-0 have been observed in the 2770, 3723, and 4578 cm−1 regions, where the 0-1 and 0-0 bands were observed for the first time. The SiC radical was generated by a dc discharge in a flowing mixture of hexamethyl disilane [(CH3)6Si2] and He. A total of 1074 rotational transitions assigned to the 0-1, 0-0, and 1-0 bands have been combined in a simultaneous analysis with previously reported pure rotational data to determine the molecular constants for SiC in the two electronic states. The principal equilibrium molecular constants for the A3Σ state are: Be = 0.6181195(18) cm−1, αe = 0.0051921(20) cm−1, re = 1.8020884(26) Å, and Te = 3773.31(17) cm−1, with one standard deviation given in parentheses. The effect of a perturbation was recognized between the ν = 4 level of X3Π and the ν = 0 level of A3Σ, and the analysis was carried out to determine the interaction parameter between the two states.  相似文献   

7.
The electronic spectrum of hafnium monofluoride has been investigated from 415 to 725 nm using a laser-ablation/molecular beam laser-induced fluorescence spectrometer. Several electronic systems were observed and data have been recorded at both low and high resolution. High resolution rotational analyses of the [17.4]1.5-X1.5 (0-0), [17.9]2.5-X1.5 (0-0), [19.7]0.5-X1.5 (0-0), [20.0]0.5-X1.5 (0-0), [21.1]2.5-X1.5 (0-0), [22.3]1.5-X1.5 (0-0), and [23.3]0.5-X1.5 (0-0) subbands have been carried out, resulting in accurate values for the ground and excited state effective rotational constants. Furthermore, the rotational analysis of the subbands assigned as [17.4]1.5-X1.5 (1-0) and [17.9]2.5-X1.5 (1-0) allows us to determine values of 589.7569(6) and 588.9076(6) cm−1 for ΔG1/2 [17.4] and ΔG1/2 [17.9], respectively. From dispersed fluorescence data we find that ΔG′′1/2=670(13) cm−1 for the ground state and that another low-lying electronic state lies at ∼2850 cm−1. The data also suggests that a second low-lying electronic state lies at ∼5200 cm−1 above the ground state.  相似文献   

8.
The emission spectrum of BN has been investigated in the 1800–9000 cm−1region using a Fourier transform spectrometer. BN was formed in a microwave discharge of He with a trace of BCl3and N2. The bands observed in the 3000–7800 cm−1interval have been assigned as theb1Π–a1Σ+transition, with the 0–0 band at 3513.99040(43) cm−1. This transition is analogous to theA1Πu–X1Σ+g(Phillips) system of the isoelectronic C2molecule. The rotational analysis of the 0–0, 1–1, 1–0, 2–1, 3–2, 2–0, 3–1, 4–2, and 4–1 bands has been obtained and the molecular constants for theb1Π anda1Σ+states have been determined. A local perturbation has been observed in thev= 1 vibrational level of theb1Π state nearJ= 18 caused by the interaction with thev= 3 vibrational level of thea1Σ+state. The principal equilibrium constants for thea1Σ+state are: ωe= 1705.4032(11) cm−1, ωexe= 10.55338(52) cm−1,Be= 1.683771(10), αe= 0.013857(16) cm−1, andre= 1.2745081(37) Å. Although theb1Π–a1Σ+transition has recently been seen in emission from boron nitride trapped in solid neon matrices [J. Chem. Phys.104,3143–3146 (1996)], our work represents the first observation of this transition of BN in the gas phase.  相似文献   

9.
Electronic band systems of zirconium monocarbide, ZrC, in the 16 000-19 000 cm−1 region have been observed following the reaction of laser-ablated Zr atoms with methane under supersonic free-jet conditions. Rotational analyses of high-resolution spectra have shown that the ground state of ZrC is a 3Σ state, with r0=1.8066 Å and an unexpectedly small spin-spin parameter, λ=0.5139 cm−1. The spectra are dense because of the five naturally occurring isotopes of Zr. Four of these, with mass numbers 90, 92, 94, and 96, have I=0, but the fifth, 91Zr, present in 11.22% abundance, has I=5/2. Lines of 91ZrC can be assigned in some of the strongest bands, and are found to display sizeable hyperfine splittings, with widths of up to 0.2 cm−1. Analysis shows that the largest hyperfine effects are in the ground state, where b=−0.03133±0.00015 cm−1 and c=−0.00123±0.00037 cm−1 (3σ error limits). The large Fermi contact parameter, b, indicates that an unpaired Zr 5 electron is present, which, taken together with the small value of λ, means that the ground state must be a 3Σ+ state, from the electron configuration (Zr 5)1 (C 2)1. Internal hyperfine perturbations occur between the F1 and F3 electron spin components of the ground state in the range N=2-4, producing extra lines in some of the branches; the perturbations are of the type ΔN=0, ΔJ=±2, and are a second-order effect arising because the F1 (J=N+1) and F3 (J=N−1) spin components both interact with the F2 (J=N) component through ΔN=0, ΔJ=±1 matrix elements of the Fermi contact operator. Second-order perturbations of this type can only occur in states that are very close to case (b) coupling.  相似文献   

10.
The rotational spectra of the ground vibrational state and the ν9 = 1 torsional state have been reinvestigated and accurate spectroscopic constants have been determined. The torsional frequency, ν9 = 70(15) cm−1, has been determined by relative intensity measurements. The assignment of the infrared spectrum has been slightly revised and an accurate harmonic force field has been calculated. The equilibrium structure has been determined using different, complementary methods: experimental, semi-experimental and ab initio, leading to r(NN) = 1.870(2) Å, in particular.  相似文献   

11.
Spectroscopic observations are reported for rhodium monoxide from hollow-cathode emission and laser-induced fluorescence experiments. Eleven bands of Rh16O and 10 of Rh18O, from the [15.8]2Π-X4Σ (b) and [16.0]2Π-X4Σ (b) transitions, have been rotationally analyzed. The ground state constants have been determined as B0 = 0.4132, λ0 = −0.58 and γ0 = −0.102, in cm−1. Rotational and lambda doubling parameters in v = 0, 1, 2, and 3 excited state vibrational levels have also been determined.  相似文献   

12.
13.
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   

14.
The ESR spectrum of Mn2+ doped potassium hydrogen sulphate at liquid nitrogen temperature (77 K) has been analyzed and site of entered Mn2+ in the lattice has been discussed. The values of the zero field parameters that give good fit to the observed ESR spectra have been obtained. The obtained g, A, B, D, E and a values are 2.0002, 66×10−4 cm−1, 26×10−4 cm−1, 59×10−4 cm−1, 32×10−4 cm−1 and −8×10−4 cm−1, respectively. The percentage of covalency of the metal-ligand bond has also been estimated. From the optical absorption study at room temperature, the distortion has been suggested. The observed bands are assigned as transitions from the 6A1g(S) ground state to various excited quartet levels of Mn2+ ion in a cubic crystalline field. The electron repulsion and crystal field parameters B, C, Dq and α providing good fit to the observed optical spectra have been evaluated and the values obtained for the parameters are B=627 cm−1, C=2580 cm−1 , Dq=790 cm−1 and α=76 cm−1.  相似文献   

15.
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   

16.
Laser induced fluorescence spectra of HoS have been obtained using a Broida oven and a ring dye laser. Dispersed fluorescence spectra showed transitions from a common upper state, A[14.79]8.5 to the v = 0 and 1 vibrational levels of three low lying states, labelled X8.5, W[0.25]7.5 and V[0.98]7.5 (the states are labelled [10−3T0]Ω according to their energy and Ω assignment). High resolution excitation spectra were obtained for all six transitions and a rotational analysis yielded the following principal constants, in cm−1, for the X, W and V states, respectively: T0 = 0, 251.8713(31), 980.6969(37); Be = 0.121903(42), 0.121729(37), 0.122561(34); ΔG1/2 = 463.8811(46), 462.9411(45), 461.2084(127). For the A state, T0 = 14794.6987(28) cm−1 and B0 = 0.112596(29) cm−1. The three low lying states are shown to arise from the Ho2+[4f10(5I8)6s]S2− configuration in accord with Ligand Field Theory predictions. The atomic origin of each of the three low lying electronic states was determined from the observed resolved hyperfine structure.  相似文献   

17.
The long wavelength end of the electronic spectrum of CuCl2, between 636 and 660 nm, has been recorded in the gas phase by laser-excitation spectroscopy using a sample prepared at low temperatures (ca. 10 K) in a free-jet expansion. Under these conditions, it is possible to resolve vibrational, rotational, and even Cu hyperfine structure. The (0, 0) band of the E2Πu-X2Πg transition has been identified with an origin at 15546.286(3) cm−1 for 63Cu35Cl2. The observation and analysis of bands involving vibrationally excited levels has allowed the determination of all three vibrational intervals for the E2Πu state (ν1 = 335.88 cm−1, ν2 = 112.42 cm−1, and ν3 = 482.17 cm−1, 63Cu35Cl2). In addition, two other, unrelated transitions have been identified in the same narrow wavelength region. This, combined with the observation of local perturbations of the rotational structure in various bands, reveals the presence of other closely lying electronic states in the same energy region.  相似文献   

18.
Fourier transform spectra of mono-13C ethylene have been recorded in the 8.4-14.3-μm spectral region (700-1190 cm−1) using a Bruker 120 HR interferometer at a resolution of 0.0017 cm−1 allowing the extensive study of the set of resonating states {101, 81, 71, 41, 61}. Due to the high resolution available as well as the extended spectral range involved in this study, a much larger set of line assignments are now available. The present analysis has lead to the determination of more accurate spectroscopic constants, including interaction constants, than were obtained in earlier studies. In particular, the following band centers were derived: ν0(ν10) = 825.40602(30) cm−1, ν0(ν8) = 932.19572(15) cm−1, ν0(ν7) = 937.44452(10) cm−1, ν0(ν4) = 1025.6976(14) cm−1. Finally a synthetic spectrum was generated leading to the assignment of a number of 13C12CH4 lines observed in an earlier heterodyne spectroscopic study.  相似文献   

19.
142NdO molecules have been produced by heating 142Nd2O3 to about 2100 K in a vacuum furnace in the presence of argon gas. A ring dye laser operating with DCM dye has been used to excite 142NdO transitions in the 636-666 nm spectral region, and induced fluorescence has been spectroscopically analysed at high resolution with a Fourier transform spectrometer. Contributions from thermal emission have been simultaneously observed. Two new low-lying electronic states have been detected, at energies of about 2708 and 4139 cm−1, designated as [2.7], most probably observed at ν = 1, and [4.1], likely to be (2)6 (observed at ν = 0). The ν = 1 level of the (1)6 state, already known at ν = 0, has been observed for the first time. Most levels pumped by the laser, between 14 000 and 17 400 cm−1, could be identified from earlier work. In addition, by studying in more detail recently obtained fluorescence spectra [J. Mol. Spectrosc. 225 (2004) 132] spectroscopic constants have been improved for a number of states. Finally, from thermal emission spectra, rotational analyses of the 0-0 bands of two new systems, [16.4] − (2)5 and [14.1] − X4, and reanalyses at higher resolution of the 0-0 bands of the systems V, VII, VIII, and X have been carried out. A consistent set of spectroscopic constants of the levels of 142NdO characterized as yet is presented.  相似文献   

20.
The spectrum of holmium monofluoride (HoF) in the blue (420-480 nm) region has been studied using laser-induced fluorescence. Previous work [J. Phys. B 7 (1974) L234] had assigned several bands in this region to the B8-X8 transition. By obtaining wavelength selected laser excitation spectra at high resolution and rotationally analyzing seven bands in this region, we have shown that not all the bands previously assigned to the B8-X8 system belong to the same electronic transition and have identified three separate transitions which we have labelled B8-X8, B′8-X8, and C7-X27. Preliminary low resolution dispersed fluorescence spectra have shown several excited states at energies greater than 4000 cm−1 above the ground state and, though not all could be assigned, ligand field theory calculations are consistent with assigning them to the first excited spin-orbit component of the Ho+(4f106s2)F ground state configuration or to the first excited configuration, Ho+(4f116s)F. The results of the dispersed fluorescence experiments also tentatively place the X27 state at ∼70 cm−1 above the ground X7 state.  相似文献   

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