| Literature DB >> 30019193 |
Komal Rizwan1,2, Nasir Rasool3, Ravya Rehman1, Tariq Mahmood4, Khurshid Ayub4, Tahir Rasheed5, Gulraiz Ahmad1, Ayesha Malik1, Shakeel Ahmad Khan1, Muhammad Nadeem Akhtar6, Noorjahan Banu Alitheen7, Muhammad Nazirul Mubin Aziz8.
Abstract
A variety of imine derivatives have been synthesized via Suzuki cross coupling of N-(4-bromophenyl)-1-(3-bromothiophen-2-yl)methanimine with various arylboronic acids in moderate to good yields (58-72%). A wide range of electron donating and withdrawing functional groups were well tolerated in reaction conditions. To explore the structural properties, Density functional theory (DFT) investigations on all synthesized molecules (3a-3i) were performed. Conceptual DFT reactivity descriptors and molecular electrostatic potential analyses were performed by using B3LYP/6-31G(d,p) method to explore the reactivity and reacting sites of all derivatives (3a-3i).Entities:
Keywords: Computational; Density functional theory; Imines; Reactivity; Suzuki coupling; Thiophene
Year: 2018 PMID: 30019193 PMCID: PMC6049850 DOI: 10.1186/s13065-018-0451-0
Source DB: PubMed Journal: Chem Cent J ISSN: 1752-153X Impact factor: 4.215
Scheme 1Synthesis of N-(4-bromophenyl)-1-(3-bromothiophen-2-yl)methanimine (3) and Suzuki coupling of imine with arylboronic acids. Conditions: (i) 1 (1.74 mmol, 0.3 g), 2 (1.74 mmol, 0.33 g), ethanol (10 ml), glacial acetic acid (5–6 drops). (ii) 3 (0.29 mmol, 0.1 g), arylboronic acid (0.32 mmol), K3PO4 (0.58 mmol,0.12 g), Pd(pph3)4 (1.45 mmol, 0.01 g), 1,4-dioxane:H2O (4:1), reflux 12 h, 95 °C, (iii) 3 (0.29 mmol, 0.1 g), arylboronic acid (0.80 mmol, 0.12 g), K3PO4 (0.58 mmol, 0.12 g), Pd(pph3)4 (1.45 mmol, 0.01 g), 1,4-dioxane:H2O (4:1), reflux 12 h, 95 °C
Substrate scope of Suzuki coupling of N-(4-bromophenyl)-1-(3-bromothiophen-2-yl)methanimine with arylboronic acids
MEP values of all compounds (3a–3i)
| S. no. | −ve potential (a. u.) | +ve potential (a. u.) |
|---|---|---|
|
| − 0.039 | 0.039 |
|
| − 0.044 | 0.044 |
|
| − 0.039 | 0.039 |
|
| − 0.040 | 0.040 |
|
| − 0.045 | 0.045 |
|
| − 0.040 | 0.040 |
|
| − 0.034 | 0.034 |
|
| − 0.046 | 0.046 |
|
| − 0.042 | 0.042 |
Fig. 1The MEP surfaces of compounds (3a–3i), red color is indicative of negative potential, whereas blue color is indicative of site of positive potential
Ionization potential (I), electron affinity (A), chemical hardness (η), electronic chemical potential (µ), electrophilicity index (ω) nucleophilicity index (N), Fukui function (f+ and f)
| S. no. | I (eV) | A (eV) | N (eV) |
|
| |||
|---|---|---|---|---|---|---|---|---|
|
| − 5.82 | − 2.07 | 1.87 | − 3.94 | 4.15 | 3.29 | 0.08 | 0.21 |
|
| − 5.55 | − 1.89 | 1.83 | − 3.72 | 3.78 | 3.56 | 0.11 | 0.08 |
|
| − 5.90 | − 2.03 | 1.93 | − 3.96 | 4.06 | 3.21 | 0.39 | 0.32 |
|
| − 5.80 | − 2.03 | 1.88 | − 3.91 | 4.06 | 3.31 | 0.10 | 0.08 |
|
| − 5.36 | − 1.88 | 1.74 | − 3.62 | 3.76 | 3.75 | 0.11 | 0.06 |
|
| − 5.75 | − 2.04 | 1.85 | − 3.89 | 4.08 | 3.36 | 0.10 | 0.08 |
|
| − 5.80 | − 2.18 | 1.81 | − 3.99 | 4.39 | 3.31 | 0.10 | 0.07 |
|
| − 5.38 | − 1.77 | 1.80 | − 3.57 | 3.54 | 3.73 | 0.10 | 0.07 |
|
| − 4.52 | − 4.17 | 0.17 | − 4.34 | 55.39 | 4.59 | 0.16 | 0.15 |
Electrophilic (P+) and nucleophilic (P−) Parr functions, local electrophilicity (ω) and local nucleophilicity (N) of all compounds (3a–3i)
| Compounds |
|
|
|
|
|---|---|---|---|---|
|
| 0.22 (C5) | 0.17 (C9) | 0.91 | 0.67 |
|
| 0.21 (C5) | 0.18 (C14) | 0.81 | 0.67 |
|
| 0.21 (C5) | 0.21 (C9) | 0.86 | 0.84 |
|
| 0.21 (C5) | 0.19 (C9) | 0.88 | 0.72 |
|
| 0.21 (C5) | 0.12 (C9) | 0.82 | 0.44 |
|
| 0.21 (C5) | 0.17 (C9) | 0.88 | 0.63 |
|
| 0.20 (C5) | 0.15 (C9) | 0.91 | 0.56 |
|
| 0.21 (C5) | 0.15 (C9) | 0.74 | 0.55 |
|
| 0.64 (C15) | 0.98 (C15) | 35.56 | 0.34 |
Fig. 2Labelling scheme for discussion of Parr functions
Fig. 3HOMO–LUMO surfaces showing the isodensities of all compounds (3a–3i)
Fig. 4HOMO, HOMO−1, HOMO−2, HOMO−3 and LUMO, LUMO+1, LUMO+2, LUMO+3 surfaces of 3a