SRJIS/BIMONTHLY/JAYRAJ S. AHER, MANOJ R. GAWARE & DNYANESHWAR D. LOKHANDE (5116-5128)
EXPERIMENTAL AND DENSITY FUNCTIONAL THEORY INVESTIGATION OF BOND LENGTH, BOND ANGLE AND THERMODYNAMIC PARAMETERS IN DIHYDROPYRIMIDINE CARBONITRILE Jayraj S. Aher1*, Manoj R. Gaware2 & Dnyaneshwar D. Lokhande3 1* 2
Department of Chemistry, K.T.H.M College, Nashik, (M.S), India.
Department of Chemistry, Arts, Commerce and Science College, Nandgaon, Nashik, (M.S), India. 3
KPG Arts, Commerce and Science College, Igatpuri, Nashik, (M.S), India. Abstract
Theoretical chemistry method has been adopted to correlate the structural and electronic properties such as bond length, bond angle, Mullikens charges, HOMO-LUMO energy values, energy gap, dipole moment (μ), electron affinity (A), ionization potential (I), electronegativity (χ), global hardness (η), softness(σ), electrophilicity index (ω) and thermodynamic paremeters using density functional theory (DFT) at the B3LYP/6-311 G ++ (d, p) basis set of dihydropyrimidine carbonitrile namely 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2-thioxopyrimidine-5-carbonitrile. Keywords: DFT, HOMO-LUMO, dipole moment, energy gap, themodynamic parameters.
Scholarly Research Journal's is licensed Based on a work at www.srjis.com
Introduction: Density functional theory (DFT) is a quantum mechanical modelling method used to investigate the electronic structure in the ground state of many systems, particularly atoms, molecules and condensed phase. Using this theory many properties can be evaluated using functionals that is functions of another. Application of density functional theory to UV, IR and NMR spectroscopies gives clear interpretations λmax values, modes of vibrations, vibrational frequencies, coupling constant etc. Pyrimidines are important heterocyclic moiety in many organic compounds and contributed due importance in pharmacological applications1, biological uses2-11, herbicidal effects12, pesticidal impact13, synthetical applications14, polymeric and material sciences.15-18 MAY-JUNE 2017, VOL- 4/31
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In the present work, we have correlated experimental and theoretical IR and NMR spectrum along with molecular structure of dihydropyrimidine carbonitrile (Figure 1) investigated by determining the chemical indexes using density functional theory (DFT) at the B3LYP/6311++G (d, p) level. To the best of our knowledge the structural and thermodynamic parameters of this compound has not been reported earlier in open literature.
NO2
NC
H N
O
N
S
H
FIGURE 1: Structure of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2-thioxopyrimidine-5carbonitrile Computational Details: Computational calculations were performed on an Intel Core i3 personal computer using the Gaussian 09W program19 package without any constraint on the geometry. Geometries of the compound was optimized by DFT/B3LYP at 6-311++G (d, p) basis set to confirm the structure as minima. Absence of imaginary frequency confirms the energy minima. The vibrational frequency assignments and other parameters were made using Gauss View 5.0 molecular visualization program. Spectral Data: The spectral data of the compound is shown below. The experimental IR and 1
H-NMR spectral data of the compound is listed in table 1 while experimental and theoretical
IR and 1H-NMR spectrum are shown in figure 2 and figure 3.
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O
CN
NO2
Experimental data
Theoretical data
3375 : -NH stretch. (2o amide)
3468 : -NH stretch. (2o amide)
3271 : -NH stretch. (2o amide)
3453 : -NH stretch. (2o amide)
3167 : Ar-H stretch.
3105 : Ar-H stretch.
2114 : -C≡N stretch. (nitrile)
2248 : C≡N stretch. (nitrile)
1609 : -C=O stretch. (carbonyl)
1712 : -C=O stretch. (carbonyl)
1568 : -C=C (olefin)
1465 : -C=C (olefin)
1470 : -N-O stretch. (nitro)
1535 : -N-O stretch. (nitro)
1411 : Ar. C=C stretch.
1510 : Ar. C=C stretch.
1408 : -NH bending (2o amide)
1337 : -NH bending (2o amide)
1246 : Ar-N stretch. (nitro)
1322 : Ar-N stretch. (nitro)
1180 : C-N stretch. (amide)
1192 : C-N stretch. (amide)
1088 : C=S stretch. (thiol)
1117 : C=S stretch.(thiol)
1
H-NMR δ (ppm)
8.92 (1H, s, -N-H)
H19 : 7.66 (-NH)
400 MHz, DMSO
8.51 (1H, s, -N-H)
H17 : 8.33 (-NH)
8.44 (1H, d, Ar-H)
H7 : 8.52 (Ar-H)
8.42 (1H, d, Ar-H)
H8 : 7.84 (Ar-H)
7.88 (1H, d, Ar-H)
H9 : .33 (Ar-H)
7.84 (1H, d, Ar-H)
H21 : 8.68 (Ar-H)
H N S
N H
C9H6N4O3S IR data cm-1
TABLE1: Experimental and theoretical spectral data of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)4-oxo-2-thioxopyrimidine-5-carbonitrile
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IR spectrum of
1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2-thioxopyrimidine-5-
carbonitrile
1
H-NMR spectrum of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2-thioxopyrimidine-
5-carbonitrile
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FIGURE 2: Experimental IR and 1H-NMR spectrum of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)4-oxo-2-thioxopyrimidine-5-carbonitrile
IR spectrum of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2-thioxopyrimidine-5carbonitrile
1
H-NMR
spectrum
of
1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2-
thioxopyrimidine-5-carbonitrile
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FIGURE 3: Theoretical IR and 1H-NMR spectrum of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4oxo-2-thioxopyrimidine-5-carbonitrile RESULT AND DISCUSSION: Molecular geometry: The optimized geometrical parameters such as bond length, bond angle are listed in table 2 and 3 respectively according to the numbering reported in optimized structure of the compound in figure 3. The point group symmetry of the planar structure of the compound is C1. The compound possess25 atoms hence there 69 normal modes of fundamental vibrations are expected. Slight variation has been observed in experimental and theoretical IR and 1H-NMR data for the said compound. For better upgradation across agreement between observed and calculated vibrational frequencies, calculated absorption frequencies were adjusted by multiplying with scaling factor 0.9631 for density functional theory resulting in computed absorption frequencies. The scaled vibrational frequencies are listed in table 1. C=O stretching vibrations: Open chain simple carbonyl from 2o amide group (NH-C=O) absorbs within the range 1640-1700 cm-1. Computed stretching of carbonyl in amide group for the compound is at 1712 cm-1 while experimental carbonyl of amide group absorption is observed at 1609 cm-1. C≥N stretching vibrations: Stretching frequency of nitriles group occurs in the region 2220-2260 cm-1. Theoretical C≥N stretching frequency was seen at 2248 cm-1 whereas experimentally it is seen ranging between 2114 cm-1. C=C stretching vibrations: Aromatic C=C stretching is observed in range between 1585-1600 and 1400-1500 cm-1 while olefinic C=C stretching absorbs in the range 1640-1680 cm-1 Theoretically aromatic C=C stretching absorption bands is seen at 1510 cm-1 while olefinic C=C stretching bands is seen at 1568 cm-1. Experimentally aromatic C=C stretching is observed at 1411 cm-1 while that for olefinic C=C stretching is observed at 1465 cm-1. N-H vibrations: 2o amides shows N-H stretching between 3300-3500 cm-1. For compound it is observed theoretically at 3468 and 3453 cm-1 and experimentally it is observed at 3375 and MAY-JUNE 2017, VOL- 4/31
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271 cm-1 respectively. The 2o N-H bending is observed at 1337 cm-1 experimentally and theoretically it is seen at 1408 cm-1. C-N and N-O stretching vibrations: Aromatic nitro compounds have stretching vibration of N-O at 1500-1550 and 12901360 cm-1 respectively. Theoretically, -N-O and C-N stretching vibrations of compound is seen at 1535and 1322 cm-1 and experimentally it is seen at 1470 cm-1 and 1246 cm-1. Optimized Structure:
FIGURE 3: Optimized Structure of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2thioxopyrimidine-5-carbonitrile Bond lengths:
Atoms C1-C2 C1-C6 C1-C10
Bond lengths (oA) 1.3839 1.4023 1.4821
C2-C3 C2-H7 C3-C4 C3-N22 C4-C5 C4-H21 C5-C6 C5-H8 C6-H9 C10-C11 C10-N18 C11-C12 C11-C14 C12-N13
1.3880 1.0824 1.3895 1.4843 1.3918 1.0813 1.3914 1.0828 1.0821 1.3728 1.3716 1.4200 1.4736 1.1556
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C14-O15 C14-N16 N16-H17 N18-H19 N18-C20 C20-S25 N22-O23 N22-O24
1.2086 1.4088 1.0133 1.0113 1.3846 1.6542 1.2218 1.2233
TABLE 2: Optimized bond lengths (Ao) of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2thioxopyrimidine-5-carbonitrile by DFT method at B3LYP level using 6-311++G (d, p) basis sets Bond Angles: Atoms C2-C1-C6 C2-C1-C10 C6-C1-C10 C1-C2-C3 C1-C2-H7 C3-C2-H7 C2-C3-C4 C2-C3-N22 C4-C3-N22 C3-C4-C5 C3-C4-H21 C5-C4-H21 C4-C5-C6 C4-C5-H8 C6-C5-H8 C1-C6-C5 C1-C6-H9 C5-C6-H9 C1-C10-C11 C1-C10-N18 C11-C10-N18 C10-C11-C12 C10-C11-C14 C12-C11-C14 C11-C14-O15 C11-C14-N16 O15-C14-N16 C14-N16-H17 C14-N16-C20 H17-N16-C20 C10-N18-H19 C10-N18-C20 H19-N18-C20 N16-C20-N18 N16-C20-S25 N19-C21-S25 MAY-JUNE 2017, VOL- 4/31
Bond Angles 119.5 119.5 121.0 118.8 122.2 119.0 122.4 118.5 119.1 118.4 119.7 121.9 120.5 119.8 119.7 120.4 120.0 119.6 125.0 115.6 119.3 122.5 120.0 117.4 125.7 113.7 120.6 115.5 128.0 116.5 119.4 125.8 114.7 113.2 124.7 122.1 www.srjis.com
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C3-N22-O23 C3-N22-O24 O23-N22-O24 C11-H12-N13
117.4 117.4 125.2 180.0
TABLE 3: Optimized bond angles of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2thioxopyrimidine-5-carbonitrile by DFT method at B3LYP level using 6-311++G (d, p) basis sets Vibrational assignments: Selected normal mode 69 68 67 66 65 64 63 62 61 60 59 58 57 56 53 52 48 45
Calculated IR IR frequencies cm-1 intensities (Scaled) (km) mol 3468 71.56 3453 98.41 3105 5.96 3092 0.49 3090 5.75 3077 2.12 2248 42.34 1712 608.77 1597 47.00 1568 95.21 1544 156.52 1535 167.52 1510 871.82 1457 2.89 1337 103.15 1322 309.28 1192 19.31 1117 148.26
Assignments N-H str. (2o amide) N-H str. (2o amide) Ar-H str. (sym) Ar-H str. (sym) Ar-H str. (asym) Ar-H str. (asym) C≥N str. (sym) C=O str. (amide) Ar. C=C str. C=C str. (olefin) C=C str. N-O str. (nitro) Ar. C=C str. Ar-H (ip) bending N-H bending Ar-N str. (nitro) C-N str.(sym) (amide) C=S str.
Table 4: Experimental and computed (scaled) selected fundamental vibrations of 1,2,3,4tetrahydro-6-(3-nitrophenyl)-4-oxo-2-thioxopyrimidine-5-carbonitrile. Mullikens atomic charges: Atomic charges depends on the arrangement of atom and how the atoms are defined. Natural Population Analysis (NPA) is used to generate information on the electron densities of the atom. Mullikens charges are obtained using NPA based on the DFT/ B3LYP/ 6-311 ++ G(d, p) basis set and are listed in table 5. More positive charge is present on C11 (1.344) and C1 (1.320) while more negative charge is present on C6 (-0.939) and C2 (-0.633).
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Computed Mulliken Atomic Charges (a.u) on 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4oxo-2-thioxopyrimidine-5-carbonitrile. Atom C1 C2 C3 C4 C5 C6 H7 H8 H9 C10 C11 C12 N13 C14 O15 N16 H17 N18 H19 C20 H21 N22 O23 O24 S25
Charge 1.320 -0.633 -0.372 0.396 -0.415 -0.939 0.281 0.214 0.206 -0.041 1.344 -1.455 -0.147 0.277 -0.277 -0.281 0.367 -0.034 0.308 0.345 0.253 -0.162 0.009 0.007 -0.571
TABLE 5: Computed Mulliken Atomic Charges (a.u) by Natural Population Analysis (NPA) calculated by DFT at B3LYP/6-311++G (d, p) basis set HOMO-LUMO energy and absorption maxima: The HOMO is a highest occupied molecular orbital that can act as an electron donor and the LUMO is lowest unoccupied molecular orbital that can accept electron. Figure shows the HOMO-LUMO plot for the compound which clearly indicates that electron cloud moves from aromatic ring to pyrimidine ring. The small energy difference (0.150 a.u. or 4.07 eV) between HOMO and LUMO indicates their closeness. HOMO-LUMO energy gap can be used to predict the absorption maxima (λmax) of the molecules by the following formula20-21. Energy gap (eV) = Energy gap (Hartree or a.u.) x 27.2113834 λmax =1240/Energy gap (eV) For the compound λmax was determined and found to be 350.48 nm as shown in Table 6.
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Basis set
6-311++G (d, p)
E HO (RB+HF- MO LYP) (au) (eV ) -1265.831 7.18 4
LU MO (eV ) 3.64 6
Energy gap (eV)
Dipole mome nt (D)
λma x eV
3.538
4.0093
350. 480
.TABLE 6: HOMO, LUMO (a.u.), λmax, dipole moment (D) and SCF energy (a.u.) values of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo-2-thioxopyrimidine-5-carbonitrile by DFT method at B3LYP level using 6-311++G (d, p) basis set. Thermochemical parameters: Parameter Total E (Thermal) Kcal mol1 . Translational Rotational Vibrational Total (Cv) Cal mol-1 Kelvin-1 Translational Rotational Vibrational Total Entropy (S) Cal mol-1 Kelvin-1
4a
Translational Rotational Vibrational Zero Point vibrational energy (Kcal mol-1) Rotational constant (GHz)
42.188 32.925 40.235
Dipole Moment (D) Molar Mass (amu)
110.795 0.889 0.889 109.018 49.561 2.981 2.981 43.600 115.349
102.610 0.70042 0.35651 0.24608 6.5141 229.031
TABLE 7: Theoretically computed energy (a.u.), zero-point vibrational energy, (Kcal/mol), rotational constant (GHz), entropy (Cal/mole) of 1,2,3,4-tetrahydro-6-(3-nitrophenyl)-4-oxo2-thioxopyrimidine-5-carbonitrile by DFT/B3LYP at 6-311++G (d, p) basis set. Conclusion: The optimized geometries were computed by DFT/ B3LYP at 6-311++G (d, p) basis set using Gaussian 09W package and Gauss A-5.0. Vibrational assignments were examined DFT methods of computation and the values predicted by DFT/B3LYP at 6-31++G (d, p) were found to be nearly in good agreement with the experimental values of the compound. The absorption maxima of the synthesized molecule are obtained from HOMO-LUMO energy gap.
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