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1.
We have calculated the three-dimensional potential energy surfaces for the 1 2A′ and 1 2A″ states of BrCN+ at the MR-SDCI_DK+Q/[QZP-ANO-RCC (Br, C, N)] level of theory, where MR-SDCI_DK means ‘multi-reference single and double excitation configuration interaction calculation with Douglas-Kroll Hamiltonian.’ These ab initio potential energy surfaces have a common minimum (corresponding to the state) at a linear equilibrium structure with re(Br-C) = 1.735 Å and re(C-N) = 1.199 Å. Variational RENNER calculations yield a zero-point averaged structure (with the structural parameters calculated as expectation values over rovibrational wavefunctions) with 〈r(Br-C)〉0 = 1.739 Å, 〈r(C-N)〉0 = 1.204 Å, and 〈∠(Br-C-N)〉0 = 172(4)°. A severe Fermi resonance between 2ν2 and ν3 has been found theoretically for the 2A″ potential energy surface. Comparing the ab initio zero-point averaged structure with a recent, experimentally derived r0 structure, it is concluded that the effects of large-amplitude bending motion should be taken into account explicitly in the process of deriving the r0 structure from the experimental values of the rotational constants. The electronic structure of BrCN+ has also been discussed.  相似文献   

2.
The Born-Oppenheimer (BO) equilibrium molecular structure () of cis-methyl formate has been determined at the CCSD(T) level of electronic structure theory using Gaussian basis sets of at least quadruple-ζ quality and a core correlation correction. The quadratic, cubic and semi-diagonal quartic force field in normal coordinates has also been computed at the MP2 level employing a basis set of triple-ζ quality. A semi-experimental equilibrium structure () has been derived from experimental ground-state rotational constants and the lowest-order rovibrational interaction parameters calculated from the ab initio cubic force field. To determine structures, it is important to start from accurate ground-state rotational constants. Different spectroscopic methods, applicable in the presence of internal rotation and used in the literature to obtain “unperturbed” rotational constants from the analysis and fitting of the spectrum, are reviewed and compared. They are shown to be compatible though their precision may be different. The and structures are in good agreement showing that, in the particular case of cis-methyl formate, the methyl torsion can still be treated as a small-amplitude vibration. The best equilibrium structure obtained for cis-methyl formate is: r(Cm-O) = 1.434 Å, r(O-Cc) = 1.335 Å, r(Cm-Hs) = 1.083 Å, r(Cm-Ha) = 1.087 Å, r(Cc-H) = 1.093 Å, r(CO) = 1.201 Å, (COC) = 114.4°, (CCHs) = 105.6°, (CCHa) = 110.2°, (OCH) = 109.6°, (OCO) = 125.5°, and τ(HaCOC) = 60.3°. The accuracy is believed to be about 0.001 Å for the bond lengths and 0.1° for the angles.  相似文献   

3.
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   

4.
The rotational spectra of nine isotopomers of dimethyl diselenide, CH3SeSeCH3, have been measured with a molecular-beam Fourier transform microwave spectrometer. The spectra were complex due to the presence of many isotopomers in natural abundance and the splitting caused by the interactions with two methyl internal rotors. The spectra were assigned and fit to experimental precision to an effective rotational Hamiltonian for molecules with two periodic internal motions. The spectra of the symmetric isotopomers are consistent with a C2 equilibrium structure. The rotational constants were used to determine the rs structure of the C-Se-Se-C frame with the results r(SeSe)=2.306(3) Å, r(SeC)=1.954(6) Å, ?(CSeSe)=99.8(2)°, ?(CSeSeC)=85.2(1)°. A barrier to internal rotation of the methyl groups of 395 ± 2 cm−1 was derived from the internal rotation splittings.  相似文献   

5.
The quadratic, cubic and semi-diagonal quartic force field of nitric acid has been calculated at the CCSD(T) level of theory employing a basis set of triple-ζ quality. A semi-experimental equilibrium structure has been derived from experimental ground state rotational constants and rovibrational interaction parameters calculated from the ab initio force field. It is found that the A and B semi-experimental equilibrium rotational constants of the 18O isotopologues (for which the rotation of principal axes is large) cannot be accurately reproduced. This problem is discussed and a remedy is proposed. Finally, the semi-experimental structure is in agreement with the ab initio structure calculated at the CCSD(T) level of theory using a basis set of at least quadruple-ζ quality and a core correlation correction, except for the long NO single bond for which the CCSD(T) value is too short due to inadequate treatment of electron correlation. The empirical structures are also determined and their accuracy is discussed. The best equilibrium structure is: re(NOsyn) = 1.209(1) Å, re(NOanti) = 1.194(1) Å, re(NO) = 1.397(1) Å, re(OH) = 0.968(1) Å, (ONOsyn) = 115.8(1)°, (ONOanti) = 114.2(1)° and (NOH) = 102.2(1)°.  相似文献   

6.
In this study, nano-scale precursors of ZnO, SiO2, and MnO2 powders were used to prepare mixtures with the compositions of 2ZnO+SiO2+X mol% MnO2 (X=MnO2/2ZnO, abbreviated as Zn2SiO4-X-MnO2), where 2≤X≤5. The mixed Zn2SiO4-X-MnO2 mixtures were calcined from 900 to 1300 °C in air in order to synthesize Zn2SiO4:Mn2+ green phosphors. The X-ray diffraction patterns of Zn2SiO4-X-MnO2 particles indicated that ZnO was present in the 900 °C-calcined Zn2SiO4-X-MnO2 phosphors, but not in particles calcined at temperatures of 1000 °C and higher. However, the unapparent secondary phase of ZnMnO3 was found in the 1200 and 1300 °C-calcined Zn2SiO4-5-MnO2 compositions. The luminescent characteristics of Zn2SiO4-X-Mn2+ phosphors were compared with that of a commercial product (Nichia Corp., Japan). The photoluminescence (PL) intensity of 1200 °C-calcined Zn2SiO4-4-MnO2 phosphors was higher and the decay times of all synthesized Zn2SiO4-X-MnO2 phosphors were longer than those of the commercial product.  相似文献   

7.
A new molecular solid, [1-(4′-bromo-2′-fluorobenzyl)-4-dimetylaminopyridinium]-bis(maleonitriledithiolato)nickel(III), (BrFBzPyN(CH3)2(Ni(mnt)2)(1), has been prepared and characterized by elemental analyses, IR, ESI-MS spectra, single crystal X-ray diffraction and magnetic measurements. Compound 1 crystallizes in the orthorhombic space group Pnma, a=20.579(4) Å, b=7.078(1) Å, c=17.942(4) Å, α=β=γ=90°, V=2613.3(9) Å3, Z=4. The Ni(III) ions of 1 form a quasi-one-dimensional Zigzag magnetic chain within a Ni(mnt)2 column through Ni?S, S?S, Ni?Ni, or π?π interactions with an Ni?Ni distance of 4.227 Å. Magnetic susceptibility measurements in the temperature range 2-300 K show that 1 exhibits a spin-gap transition around 200 K, and antiferromagnetic interaction in the high-temperature phase (HT) and spin gap in the low-temperature phase (LT). The transition for 1 is second-order phase transition as determined by DSC analyses.  相似文献   

8.
The microwave spectra of cyclohexanone oxime and d1 (=NOD) and d4(2,2,6,6-d4) derivatives were observed in the frequency range from 8 to 40 GHz in the ground and excited vibrational states. The rotational constants were determined to be A = 3799.844(48), B = 1513.7912(23), and C = 1189.6118(29) MHz for normal species, A = 3791.835(88), B = 1461.0324(47), and C = 1157.5653(53) MHz for d1 species, and A = 3364.141(49), B = 1487.9551(34), and C = 1154.0965(44) MHz for d4 species in the ground vibrational state. The planar moments, Pbb (Pbb = (Ic + Ia − Ib)/2) of normal, d1, and d4 species were determined to be 111.9885(26), 111.9817(46), and 124.2394(49) uÅ2, respectively. The almost same values of Pbb of normal and d1 species suggest that the hydroxyl hydrogen atom is very close to the a-c plane. From the rs coordinates of the hydroxyl hydrogen atom, the OH bond was found to be at the trans position with respect to the CN double bond. The conformation of cyclohexanone oxime was determined to be chair form by comparing the observed and calculated rotational constants, ΔI, and planar moments, and taking account of the calculated the relative energy difference, ΔE. The structural parameters, the three bond lengths, three bond angles, and three dihedral angles, were adjusted to the nine rotational constants observed. The bond angle of ∠C2C1N is much wider than that of ∠C6C1N by about 10°. The dihedral angles of ∠C1C2C3C4, ∠C2C3C4C5, and ∠C3C4C5C6 were determined to be 53.3(5), −57.2(5), and 57.2(5)°. Two vibrational modes were assigned to the ring-bending and ring-twisting ones, which are almost harmonic up to v = 3.  相似文献   

9.
The Fourier transform infrared (FTIR) spectrum of the ν12 fundamental band of ethylene-1-13C (or 13C12CH4) was recorded with an unapodized resolution of 0.0063 cm−1 in the wavenumber region of 1360-1520 cm−1. Rovibrational constants for the upper state (ν12 = 1) up to five quartic and two sextic centrifugal distortion terms were derived for the first time by assigning and fitting a total of 879 infrared transitions using a Watson’s A-reduced Hamiltonian in the Ir representation. The root-mean-square deviation of the fit was 0.00066 cm−1. The ground state rovibrational constants were also determined by a fit of 523 combination-differences from the present infrared measurements, with a rms deviation of 0.00090 cm−1. The A-type ν12 band which is centred at 1439.34607 ± 0.00004 cm−1 was found to be relatively free from local frequency perturbations. From the ν12 = 1 rovibrational constants obtained, the inertial defect Δ12 was found to be 0.242826 ± 0.000002 μÅ2.  相似文献   

10.
The isostructural polymeric compounds Co(thiazole)2X2 (X=Cl (1), Br(2)) have been synthesised by the addition of thiazole to an ethanolic solution of the corresponding anhydrous cobalt halide. Powder X-ray and neutron diffraction measurements were used for structural determination. The structures were determined using powder neutron diffraction data and Rietveld techniques: (1) C2/c, a=17.806(2) Å, b=3.6806(6) Å, c=14.807(3) Å, β=94.78(1)°, V=967.1(3) Å3, Z=4; (2) C2/c, a=18.079(3) Å, b=3.8138(8) Å, c=15.022(4) Å, β=92.71(1)°, V=1034.6(4) Å3, Z=4. Each linear polymer chain is composed of pseudo-octahedral, high-spin Co2+ centres, doubly linked by halide bridges. Magnetisation measurements of 1 and 2 at 5 K between 0 and 10 kG reveals a metamagnetic transition between antiferromagnetic and ferromagnetic states. Low temperature susceptibility data have been fitted to a one-dimensional Ising model with a mean field correction and were found to be anisotropic with ferromagnetic intrachain interactions along the b-axis and weaker antiferromagnetic interchain interactions.  相似文献   

11.
The large-amplitude bending motion in CsOH, a ‘classical’ molecule whose microwave spectrum was first recorded in 1967, has been studied ab initio. The three-dimensional potential energy surface has been calculated at the RCCSD(T)_DK3/[QZP + g ANO-RCC (Cs, O, H)] level of theory and employed in MORBID calculations of the rotation-vibration energies and intensities. The ground electronic state is 1Σ+ with the equilibrium structure re(Cs-O) = 2.3930 Å, re(O-H) = 0.9587 Å, and ∠e(Cs-O-H) = 180.0°. The O-H moiety is bound to Cs by an ionic bond and the molecule can be described as Csδ+(OH)δ-. Hence, the bending potential is shallow and gives rise to large-amplitude bending motion. The ro-vibrationally averaged structural parameters, determined as expectation values over MORBID wavefunctions, are 〈r(Cs-O)〉0 = 2.3987 Å, 〈r(O-H)〉0 = 0.9754 Å, and 〈∠(Cs-O-H)〉0 = 163°. Although the averaged structure in the vibrational ground state is far from being linear, the Yamada-Winnewissi-linearity parameter for CsOH is γ0≈-1.0, the value characteristic for a linear molecule.  相似文献   

12.
The B2Σ+ → X2Σ+ (0-1, 2, 3, 4 progression) electronic transition of 12C17O+ was first observed and analyzed by Szajna and Ke¸pa [Spectrochim. Acta A 65 (2006) 1014-1020]. We have now extended our previous studies. The use of high resolution conventional spectroscopic techniques has allowed first rotational analysis of the 1-2, 1-3, 1-4 and 1-5 bands of the first negative system in the 37,000-43,000 cm−1 spectral region. Approximately 500 transition wavenumbers were measured with an estimated accuracy of 0.005 cm−1. The present data were combined with the previous measurements to yield an improved set of molecular constants for the B2Σ+(v′ = 0, 1) and X2Σ+(v″ = 1, 2, 3, 4, 5). The v′ = 1 and v″ = 5 vibrational levels were observed for the first time and the main molecular constants are (in cm−1, one standard deviation in parentheses)
B2Σ+X2Σ+
B1 = 1.710792(20)B5 = 1.825694(23)
D1 = 7.799(15) × 10−6D5 = 6.085(21) × 10−6
γ1 = 1.9491(37) × 10−2γ5 = [8.381] × 10−3
Full-size table
  相似文献   

13.
Geometries and stabilities of the linear aluminum-bearing carbon chains AlC2nH (n = 1-5) in their ground states have been explored by the DFT-B3LYP and RCCSD(T) methods. Structures of the X1Σ+ and 11Π electronic states have also been optimized by the CASSCF approach. The studies indicate that these species have single-triple bond alternate pattern, AlCCCC?CCH, and the electronic excitation from X1Σ+ to 11Π leads to the shortening of the AlC bonds. The vertical excitation energies of the 11Π ← X1Σ+ and 21Π ← X1Σ+ transitions for AlC2nH (n = 1-5) have been investigated by the CASPT2, EOM-CCSD, and TD-B3LYP levels of theory with the cc-pVTZ basis set, respectively. CASPT2-predicted 11Π ← X1Σ+ transition energies are 3.57, 3.44, 3.33, 3.26, and 3.21 eV, respectively. For AlC2H, our estimate agrees very well with the experimental value of 3.57 eV. In addition, the AlC bond dissociation energies and the exponential-decay curves for these vertical excitation energies are also discussed.  相似文献   

14.
The three-dimensional potential energy and dipole moment surfaces for the electronic ground state 6Δ of FeCN have been computed at the MR-SDCI + Q + Erel/[Roos ANO (Fe), aug-cc-pVQZ (C, N)] level of theory, where MR-SDCI means ‘multi-reference single and double excitation configuration interaction’ and ANO means ‘atomic natural orbital’. Based on these potential energy and dipole moment surfaces, the spectroscopic parameters, rovibronic energies, structural parameters, vibrational transition moments, and the wavenumbers and intensities of selected rotation-vibration transitions have been calculated. The equilibrium structure is linear with re(Fe-C) = 2.048 Å and re(C-N) = 1.168 Å, and the zero-point averaged structure is bent with 〈r(Fe-C)〉0 = 2.082 Å, 〈r(C-N)〉0 = 1.172 Å, and 〈∠(Fe-C-N)〉0 = 170(5)°. At all the MR-SDCI + Q and the size-extensive multi-reference averaged quadratic coupled-cluster (MR-AQCC) levels of theory, with and without relativistic correction Erel, that were employed in the present work, 6Δ FeCN is predicted to be slightly more stable than 6Δ FeNC. For example, the energy difference between the two isomers is approximately 150 cm−1 at the highest level of theory employed, MR-AQCC + Erel/[Roos ANO (Fe), aug-cc-pVQZ (C, N)] with zero-point energy correction. The electronic structure of 6Δ FeCN has also been compared with that of 6Δ FeNC. At present, no experimental spectroscopic data are available for 6Δ FeCN. It is hoped that the present work will stimulate experimental investigations of this molecule.  相似文献   

15.
BiFeO3/Zn1−xMnxO (x = 0-0.08) bilayered thin films were deposited on the SrRuO3/Pt/TiO2/SiO2/Si(1 0 0) substrates by radio frequency sputtering. A highly (1 1 0) orientation was induced for BiFeO3/Zn1−xMnxO. BiFeO3/Zn1−xMnxO thin films demonstrate diode-like and resistive hysteresis behavior. A remanent polarization in the range of 2Pr ∼ 121.0-130.6 μC/cm2 was measured for BiFeO3/Zn1−xMnxO. BiFeO3/Zn1−xMnxO (x = 0.04) bilayer exhibits a highest Ms value of 15.2 emu/cm3, owing to the presence of the magnetic Zn0.96Mn0.04O layer with an enhanced Ms value.  相似文献   

16.
The pure rotational J + 1 ← J transitions, with J = 0, 1, 3-8, of H13CN have been observed in the millimeter- and submillimeter-wave region using the Lamb-dip technique to resolve the hyperfine structure due to H, 13C, and 14N. The present observations allow us to provide for the first time the spin-rotation constant of 13C and the spin-spin interaction constant S12 (between H and 13C) as well as to remarkably improve the quadrupole coupling and spin-rotation constants of 14N. In addition, a good empirical estimation of CI(H), based on ab initio calculations, has also been provided. Furthermore, our frequencies together with previous data permit to determine the most accurate ground state rotational parameters known up to now.  相似文献   

17.
We report an ab initio calculation, at the MR-SDCI + Q + Erel/[Roos ANO (Fe), aug-cc-pVQZ (C, N)] level of theory, of the potential energy surface for 6Δi FeNC. From the ab initio results, we have computed values for the standard spectroscopic parameters of FeN12C and FeN13C. Analytical representations of the potential energy surfaces have been fitted through the ab initio points, and the resulting functions have been used for directly solving the rotation-vibration Schrödinger equation by means of the MORBID program and by means of an adiabatic-separation method. For 6Δi FeNC, our ab initio calculations show that the equilibrium structure is linear with re (Fe-N) = 1.9354 Å and re (N-C) = 1.1823 Å. We find that the bending potential is very shallow, and the MORBID calculations show that the zero-point averaged structure is bent with the expectation values 〈r (Fe-N)〉 = 1.9672 Å, 〈r(N-C)〉 = 1.1866 Å, and . The experimentally derived bond length r0 (N-C) = 1.03(8) Å reported for 6Δi FeNC by Lie and Dagdigian [J. Chem. Phys. 114 (2001) 2137-2143] is much shorter than the corresponding ab initio re-value and the averaged value from MORBID. Our calculations suggest that this discrepancy is caused by the inadequate treatment of the large-amplitude bending motion of 6Δi FeNC. It would appear that for floppy triatomic molecules such as FeNC, r0-values have little physical meaning, at least when they are determined with the effects of the large-amplitude bending motion being ignored, i.e., under the assumption that the r0 structure is linear.  相似文献   

18.
The two substates v4 = 20 (A1, 983.702 cm−1) and v4 = 2±2 (E, 986.622 cm−1) of the oblate symmetric top molecule, 14NF3, have been studied by high-resolution (2.5 × 10−3 cm−1) infrared spectroscopy of the overtones and 2ν4 − ν4 hot bands. Transitions of the overtone, the hot band, and the previously measured fundamental band were combined to yield 585 ground state combination differences differing in K by ±3, with Kmax = 36. Using the “loop-method,” a fit (standard deviation σ = 0.320 × 10−3 cm−1) provided a complete set of the hitherto not experimentally known axial ground state constants. In units of cm−1 these have the following values: . Upper state parameters were determined using a vibrationally isolated model. Considering l (2, 2) and l (2, −1) interactions between the v4 = 20 and v4 = 2±2 substates and effects accounting for the l (4, −2) interactions within the kl = −2 levels, 25 upper state parameters were obtained by fitting 2747 IR data (1842 transitions, 905 deduced energies, Jmax = 42, Kmax = 39) with σIR = 0.353 × 10−3 cm−1. Moreover, millimeter-wave spectroscopy furnished 86 transitions (Jmax = 16, Kmax = 13) measured on the v4 = 2 excited state. A merged fit, refining 24 parameters using the described model gave σIR = 0.365 × 10−3 cm−1 andσMMW = 0.855 × 10−6 cm−1 (26 kHz). The anharmonicity constants (in cm−1) are x44 = −0.84174 (2) and g44 =  + 0.73014 (1). In addition to this model, the D, Q, and L reductions of the rovibrational Hamiltonian were tested. Standard deviations σIR = 0.375 × 10−3 cm−1 and σMMW = 0.865 × 10−6 cm−1 were obtained for both D and L reductions, and σIR = 0.392 × 10−3 cm−1 and σMMW = 0.935 × 10−6 cm−1 for Q reduction. The unitary equivalence of the majority of the 18 tested relations between the derived parameters was satisfactorily fulfilled. This confirms that the v4 = 2 excited vibrational state can be considered in reasonable approximation to be isolated.  相似文献   

19.
The microwave spectra of monochloroamine (NH2Cl) and its isotopic species have been observed by Cazzoli et al. [G. Cazzoli, D.G. Lister, P.G. Favero, J. Mol. Spectrosc. 42 (1972) 286-295; G. Cazzoli, D.G. Lister, J. Mol. Spectrosc. 45 (1973) 467-474]. We observed microwave spectra of four isotopic species of 14NHD35Cl, 14NHD37Cl, 14ND235Cl, and 14ND237Cl produced by the direct reaction of ammonia gas-d3 or ammonium hydroxide-d5 with N-chlorosuccinimide. The microwave spectra of NHDCl (d1-species) and ND2Cl (d2-species) were observed in the frequency range from 8.0 to 60 GHz. The inversion splitting (ΔEo) of 14NHD35Cl and 14NHD37Cl in the ground vibrational state are shown to be 11.46(15) and 11.44(15) MHz for Ka = 0 ← 1, and 10.49(15) and 10.26(15) MHz for Ka = 1 ← 2, respectively. However, the inversion splitting of the d2-species could not be observed in our spectrometer. Only small J and K-dependence of the inversion splitting of d1-species was observed. The rotational constants of 14NHD35Cl were determined to be A = 187895.44(18), B = 13353.343(15) and C = 12859.794(15) MHz for the 0+ ← 0 state, which means the transition from the lower inversion level to the upper one, and A = 187918.52(18), B = 13353.345(15) and C = 12859.798(14) MHz for the 0 ← 0+ state. The rotational and centrifugal distortion constants of 14ND235Cl were determined to be A = 141030.885(72), B = 12594.481(6) and C = 12055.356(6) MHz, and ΔJ = 18.342(23), ΔJK = 318.15(56), ΔK = 2219.3 (fixed), δJ = 0.8717(17) and δK = 157.78(61) kHz. The values of the planar moments Pbb = (Ib − Ia − Ic)/2, of 14ND235Cl and 14ND237Cl were found to be 2.68898(2) and 2.68890(2) u Å2, respectively, which are about twice as large as those of normal species (Pbb = 1.3548(6) and 1.3544(16) u Å2, respectively). It was found that the bond length of r(N-Cl) of NH2Cl was longer than that of Cl-NCO by 0.045(12) Å, and was almost the same as that of CH2N-Cl, while it was much shorter than those of Cl-NO2 and Cl-NO, by 0.092(6) and 0.227(6) Å, respectively.  相似文献   

20.
A study on interface states density distribution and characteristic parameters of the In/SiO2/p-Si (MIS) capacitor has been made. The thickness of the SiO2 film obtained from the measurement of the corrected capacitance in the strong accumulation region for MIS Schottky diodes was 220 Å. The diode parameters from the forward bias I-V characteristics such as ideality factor, series resistance and barrier heights were found to be 1.75, 106-112 Ω and 0.592 eV, respectively. The energy distribution of the interface state density Dit was determined from the forward bias I-V characteristics by taking into account the bias dependence of the effective barrier height. The interface state density obtained using the I-V characteristics had an exponential growth, with bias towards the top of the valance band, from 9.44×1013 eV−1 cm−2 in 0.329-Ev eV to 1.11×1013 eV−1 cm−2 in 0.527-Ev eV at room temperature. Furthermore, the values of interface state density Dit obtained by the Hill-Coleman method from the C-V characteristics range from 52.9×1013 to 1.11×1013 eV−1 cm−2 at a frequency range of 30kHz-1 MHz. These values of Dit and Rs were responsible for the non-ideal behaviour of I-V and C-V characteristics.  相似文献   

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