research communications
Synthesis and structure of 4-(benzyloxy)phenyl 3,5-dimethylbenzoate
aDepartment of Physics, Yuvaraja's College, University of Mysore, Mysore-570005, Karnaataka, India, bDepartment of Physics, Government Science College, Chithradurga-577501, Kanataka, India, and cDepartment of PG Studies and Research in Physics, Albert Einstein Block, UCS, Tumkur University, Tumkur, Karnataka-572103, India
*Correspondence e-mail: [email protected]
In the title compound, C22H20O3, the dihedral angles between the central and peripheral aromatic rings are 83.47 (2) and 66.00 (2)° and the packing is consolidated by C—H⋯π interactions. Hirshfeld surface analysis indicates that the major contributions to the two-dimensional fingerprint plots arise from H⋯H (51.1%), C⋯H/H⋯C (32.7%), and H⋯O/O⋯H (14.3%) contacts. Energy framework calculations indicate that dispersion energy makes the largest contribution (–240 kJ mol−1) to the packing compared to the other energy components.
CCDC reference: 2574792
1. Chemical context
Benzyloxy-substituted aromatic compounds attract considerable attention because of their broad spectrum of biological activities including antimalarial, antibacterial, and antiplatelet properties (Mohebi et al., 2022
; de Candia et al., 2009
). Other benzyloxy derivatives act as hypolipidemic, antioxidant and hypoglycemic agents and significantly influence lipid metabolism and insulin resistance (Hassan et al., 2021
; Kuranov et al., 2020
). In addition, benzyloxy-containing quinolone derivatives display antitumour activity against several human cancer cell lines (Chen et al., 2015
). Phenyl benzoate analogues also show notable antimicrobial activity against both Gram-positive and Gram-negative bacteria (Thawkar et al., 2022
), whereas methyl benzoate congeners exhibit repellent and fumigant activities against stored-product pests (Xiao et al., 2024
).
As part of our studies in this area, we now describe the synthesis and structure of the title compound, C22H20O3 (I).
2. Structural commentary
Compound (I) crystallizes in the monoclinic crystal system in space group P21/c with one molecule in the (Fig. 1
). The dihedral angles between the central phenol ring (C8–C13) and pendant benzyloxy phenyl (C1–C6) and dimethylbenzoate rings (C15–C20) are 83.47 (2) and 66.00 (2)°, respectively, reflecting a markedly twisted molecular geometry; the dihedral angle between the outer rings is 18.1 (2)°. The steric preference of the molecule is further governed by the conformation of the ether linkage: the C1—C7—O1—C8 torsion angle is −177.1 (2)°, indicating an anti arrangement, presumably to minimise steric repulsion between the adjacent aromatic fragments. Two short intramolecular C—H⋯O contacts (Table 1
) are observed. The overall molecular architecture of (I) is therefore characterized by the non-coplanar disposition of the aromatic rings linked through nearly anti-oriented ether and ester functionalities.
|
| | Figure 1 The molecular structure of (I) with 50% probability ellipsoids and the intramolecular hydrogen bond shown as a green dashed line. |
3. Supramolecular features
In the extended structure of (I), aromatic C—H⋯π interactions are observed. Modern theoretical and experimental studies have demonstrated that an electrostatic interpretation for this type of bond is an oversimplification. Rather than arising from a distinct attractive interaction between π orbitals, the stability of aromatic assemblies is governed by a delicate balance of electrostatic interactions, dispersion forces, induction, and exchange repulsion (EDDIE; Xiao et al., 2026
). The aromatic C—H moieties facing towards the centroid of the aromatic rings of neighbouring molecules generate edge-to-face (T-shaped) stacking, namely C3—H3⋯Cg2 (between pink-coloured rings), C13—H13⋯Cg1 (between green-coloured rings) and C18—H18⋯Cg3 (between light-blue-coloured rings) as shown in Fig. 2
, where Cg1, Cg2 and Cg3 are the centroids of the C1–C6, C8–C13 and C15–C20 rings, respectively (Table 1
).
| Figure 2 The molecular packing showing edge-to-face EDDIE. The EDDIEs are at three positions in the molecule – light blue (C18—H18⋯Cg3 interactions), pink (C3—H3⋯Cg2 interactions) and green (C13—H13⋯Cg1 interactions). |
4. Hirshfeld surface analysis
A Hirshfeld surface analysis was carried out using Crystal Explorer 17.5 (Spackman et al., 2021
) to further quantify the intermolecular interactions. The three-dimensional Hirshfeld surfaces plotted over dnorm and shape-index are shown in Fig. 3
a. The red spots around the aromatic rings of the molecule signifies the presence of centroids which are shown in Fig. 3
b. The two-dimensional fingerprint plots indicate that the most prominent contributions for the Hirshfeld surfaces are from H⋯H (51.1%), C⋯H/H⋯C (32.7%) and H⋯O/O⋯H (14.3%), as shown in Fig. 4
.
| Figure 3 The Hirshfeld surface view plotted over (a) dnorm and (b) shape-index. |
| Figure 4 The two-dimensional fingerprint plots showing different contact types. |
A crystal void analysis was performed using a 0.002 a.u. electron-density isosurface. The calculated void volume and surface area were found to be 223.4 Å3 and 770.7 Å2, respectively. The voids occupy 12.5% of the unit-cell volume, indicating a relatively efficient crystal packing with limited empty space within the volume. The large surface area implies enhanced potential for non-covalent interactions, which appear to play a key role in consolidating the packing.
Interaction energies for the molecule were calculated using the basis set B3LYP\631-G(d,p) for molecular pairs within a cluster of 3.8 Å radius, giving Eele= −49.7 kJ mol−1, Epol = −15.4 kJ mol−1, Edis = −240.1 kJ mol−1 and Erep = 117.1 kJ mol−1. The energy framework is shown in Fig. 5
.
| | Figure 5 The energy framework topology generated for the (a) Coulombic, (b) dipersion and (c) total interaction energies. |
5. Database survey
A search of the Cambridge Structural Database (CSD, version 6.01, March 2026; Groom et al., 2016
) for structures containing the 4-(benzyloxy)phenyl fragment gave 176 hits. In all of these structures, the benzyloxy substituent adopts an extended conformation, with torsion angles for the Ar—CH2—O—Ar linkage lying in the range 165–180°, which is in agreement with the torsion angle observed in (I). The dihedral angle between the benzyloxy phenyl ring and the adjacent aromatic ring varies considerably, ranging from 1.23° in (E)-1-(4-(benzyloxy)phenyl)-3-(4-hydroxyphenyl)prop-2-en-1-one (CSD refcode GIDBIG; Ramkumar et al., 2013
) and 9.61° in (E)-3-[4-(benzyloxy)phenyl]-1-(4-hydroxyphenyl)prop-2-en-1-one (GIDBOM; Ramkumar et al., 2013
) to 87.69° in (2E)-3-[4-(benzyloxy)phenyl]-1-(pyridin-3-yl)prop-2-en-1-one (QEDCEJ; Fun et al., 2012
), indicating that the relative orientation of the aromatic rings is strongly influenced by the nature of the substituents and crystal-packing effects. A separate search for structures containing the 3,5-dimethylbenzoate fragment yielded 17 entries, among which 3-tert-butyl-4-oxo-3,4-dihydrophthalazin-1-yl 3,5-dimethylbenzoate (XISHEN; Wu et al., 2008
) was found to be the most closely related to (I). The aromatic ring systems in XISHEN are nearly orthogonal, with dihedral angles of 87.2 and 89.1°, similar to the equivalent values observed in (I). These observations indicate that the benzyloxy ether linkage favours an extended anti conformation, whereas the orientations of the aromatic rings are determined by steric and packing requirements.
6. Synthesis and crystallization
A mixture of 3,5-dimethylbenzoic acid (0.158 g, 1.052 mmol), 4-benzyloxy-phenol (0.200 g, 0.999 mmol), N,N′-dicyclohexylcarbodiimide (DCC; 0.177 g, 0.8610 mmol) and a catalytic quantity of dimethylaminopyrimidine was stirred in dry dichloromethane at room temperature for about 12 h. The reaction mixture was filtered to remove the insoluble byproduct dicyclohexylurea. The solvent was removed and the residue purified by column chromatography on silica gel using dichloromethane as the mobile phase. Removal of solvent afforded a residue which was recrystallized from dichloromethane solution to afford crystals for single-crystal X-ray studies. Off-white solid; yield 82%. IR (KBr), νmax (cm−1) : 2928, 2850, 1715, 1456, 1260, 1171, 821; 1H NMR (500 MHz, CDCl3, δ/ppm): 7.83 (d, 2H, J = 7.5 Ar-H), 7.62 (m, 1H, Ar-H), 7.52–7.04 (m, 9H, Ar-H), 5.12 (s, 2H, Ar-CH2O−), 2.34 (t, 6H, 2 × –CH3). Elemental analysis (%) calculated: C 79.50; H 6.07; O 14.44 and experimentally found: C 79.53; H 6.15.
7. Refinement
Crystal data, data collection and structure details are summarized in Table 2
. All the hydrogen atoms were located from difference maps and refined isotropically using a riding model with C—H = 0.93–0.97 Å and Uiso(H) = 1.2Ueq(C) or 1.5Ueq (methyl C).
|
Supporting information
CCDC reference: 2574792
contains datablock I. DOI: https://doi.org/10.1107/S2056989026007474/hb8241sup1.cif
Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S2056989026007474/hb8241Isup2.hkl
Supporting information file. DOI: https://doi.org/10.1107/S2056989026007474/hb8241Isup3.cml
| C22H20O3 | F(000) = 704 |
| Mr = 332.38 | Dx = 1.234 Mg m−3 |
| Monoclinic, P21/c | Mo Kα radiation, λ = 0.71073 Å |
| Hall symbol: -P 2ybc | Cell parameters from 2707 reflections |
| a = 11.0755 (5) Å | θ = 3–26° |
| b = 6.7138 (3) Å | µ = 0.08 mm−1 |
| c = 24.0578 (13) Å | T = 278 K |
| β = 90.074 (2)° | Prism, colourless |
| V = 1788.90 (15) Å3 | 0.42 × 0.32 × 0.25 mm |
| Z = 4 |
| Bruker SMART APEXII CCD diffractometer | 3830 independent reflections |
| Radiation source: fine-focus sealed tube | 2707 reflections with I > 2σ(I) |
| Graphite monochromator | Rint = 0.061 |
| Detector resolution: 1.09 pixels mm-1 | θmax = 26.9°, θmin = 3.5° |
| φ and Ω scans | h = −14→14 |
| Absorption correction: multi-scan (SADABS; Krause et al., 2015) | k = −8→8 |
| Tmin = 0.964, Tmax = 0.984 | l = −30→30 |
| 23611 measured reflections |
| Refinement on F2 | Primary atom site location: structure-invariant direct methods |
| Least-squares matrix: full | Secondary atom site location: difference Fourier map |
| R[F2 > 2σ(F2)] = 0.069 | Hydrogen site location: inferred from neighbouring sites |
| wR(F2) = 0.158 | H-atom parameters constrained |
| S = 1.05 | w = 1/[σ2(Fo2) + (0.0517P)2 + 0.8532P] where P = (Fo2 + 2Fc2)/3 |
| 3830 reflections | (Δ/σ)max < 0.001 |
| 229 parameters | Δρmax = 0.16 e Å−3 |
| 0 restraints | Δρmin = −0.17 e Å−3 |
| 0 constraints |
Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes. |
| x | y | z | Uiso*/Ueq | ||
| O1 | 0.12931 (15) | 0.1623 (2) | 0.08486 (7) | 0.0570 (5) | |
| O2 | −0.12798 (15) | 0.7774 (2) | 0.18195 (7) | 0.0608 (5) | |
| C1 | 0.2390 (2) | −0.0041 (3) | 0.01391 (9) | 0.0479 (5) | |
| C16 | −0.2601 (2) | 1.0686 (3) | 0.23572 (10) | 0.0520 (6) | |
| H16 | −0.197453 | 1.007649 | 0.255106 | 0.062* | |
| C15 | −0.29629 (19) | 0.9927 (3) | 0.18481 (9) | 0.0480 (5) | |
| C11 | −0.0601 (2) | 0.6240 (3) | 0.15647 (10) | 0.0525 (6) | |
| C8 | 0.0718 (2) | 0.3243 (3) | 0.10781 (10) | 0.0484 (5) | |
| C7 | 0.1882 (2) | 0.1918 (3) | 0.03282 (10) | 0.0565 (6) | |
| H7A | 0.252537 | 0.288696 | 0.036851 | 0.068* | |
| H7B | 0.130991 | 0.241637 | 0.005595 | 0.068* | |
| C20 | −0.3896 (2) | 1.0829 (3) | 0.15600 (10) | 0.0531 (6) | |
| H20 | −0.414548 | 1.030152 | 0.122143 | 0.064* | |
| C12 | 0.0072 (2) | 0.6637 (3) | 0.11043 (10) | 0.0561 (6) | |
| H12 | 0.008638 | 0.791875 | 0.095795 | 0.067* | |
| O3 | −0.27559 (18) | 0.7290 (3) | 0.11930 (9) | 0.0817 (6) | |
| C18 | −0.4082 (2) | 1.3223 (4) | 0.22797 (10) | 0.0570 (6) | |
| H18 | −0.446272 | 1.434124 | 0.242588 | 0.068* | |
| C14 | −0.2366 (2) | 0.8194 (3) | 0.15803 (11) | 0.0545 (6) | |
| C13 | 0.0736 (2) | 0.5138 (3) | 0.08533 (10) | 0.0538 (6) | |
| H13 | 0.118923 | 0.540372 | 0.053671 | 0.065* | |
| C19 | −0.4461 (2) | 1.2503 (4) | 0.17688 (10) | 0.0557 (6) | |
| C9 | 0.0071 (2) | 0.2875 (3) | 0.15573 (11) | 0.0604 (7) | |
| H9 | 0.008157 | 0.161105 | 0.171555 | 0.072* | |
| C17 | −0.3164 (2) | 1.2347 (4) | 0.25798 (10) | 0.0554 (6) | |
| C10 | −0.0593 (2) | 0.4380 (4) | 0.18025 (11) | 0.0633 (7) | |
| H10 | −0.103039 | 0.413615 | 0.212520 | 0.076* | |
| C4 | 0.3354 (3) | −0.3611 (4) | −0.02258 (13) | 0.0730 (8) | |
| H4 | 0.368326 | −0.480573 | −0.034954 | 0.088* | |
| C2 | 0.1815 (2) | −0.1174 (4) | −0.02580 (11) | 0.0591 (6) | |
| H2 | 0.108577 | −0.073664 | −0.040601 | 0.071* | |
| C3 | 0.2304 (3) | −0.2947 (4) | −0.04399 (12) | 0.0685 (7) | |
| H3 | 0.190696 | −0.368653 | −0.071115 | 0.082* | |
| C6 | 0.3456 (2) | −0.0741 (4) | 0.03558 (12) | 0.0748 (8) | |
| H6 | 0.385856 | −0.001037 | 0.062720 | 0.090* | |
| C21 | −0.2771 (3) | 1.3214 (5) | 0.31308 (12) | 0.0845 (9) | |
| H21A | −0.233080 | 1.442446 | 0.306791 | 0.127* | |
| H21B | −0.226367 | 1.227583 | 0.332118 | 0.127* | |
| H21C | −0.346982 | 1.349204 | 0.335350 | 0.127* | |
| C22 | −0.5451 (3) | 1.3542 (5) | 0.14498 (13) | 0.0852 (9) | |
| H22A | −0.541242 | 1.316139 | 0.106561 | 0.128* | |
| H22B | −0.535005 | 1.495758 | 0.148101 | 0.128* | |
| H22C | −0.622139 | 1.316783 | 0.159984 | 0.128* | |
| C5 | 0.3934 (3) | −0.2527 (5) | 0.01725 (16) | 0.0882 (10) | |
| H5 | 0.465538 | −0.299204 | 0.032209 | 0.106* |
| U11 | U22 | U33 | U12 | U13 | U23 | |
| O1 | 0.0695 (11) | 0.0396 (8) | 0.0621 (10) | 0.0148 (8) | 0.0202 (8) | 0.0071 (7) |
| O2 | 0.0578 (10) | 0.0521 (10) | 0.0725 (11) | 0.0141 (8) | 0.0035 (8) | −0.0158 (8) |
| C1 | 0.0496 (12) | 0.0438 (12) | 0.0505 (13) | 0.0078 (10) | 0.0111 (10) | 0.0071 (10) |
| C16 | 0.0492 (13) | 0.0510 (13) | 0.0558 (14) | 0.0007 (10) | 0.0072 (11) | −0.0004 (11) |
| C15 | 0.0487 (12) | 0.0392 (12) | 0.0560 (14) | −0.0011 (10) | 0.0126 (10) | −0.0035 (10) |
| C11 | 0.0495 (13) | 0.0428 (12) | 0.0652 (15) | 0.0054 (10) | 0.0071 (11) | −0.0045 (11) |
| C8 | 0.0498 (12) | 0.0395 (12) | 0.0558 (14) | 0.0060 (10) | 0.0059 (10) | 0.0019 (10) |
| C7 | 0.0681 (15) | 0.0461 (13) | 0.0555 (14) | 0.0099 (11) | 0.0134 (12) | 0.0070 (11) |
| C20 | 0.0562 (14) | 0.0512 (13) | 0.0520 (14) | 0.0035 (11) | 0.0090 (11) | −0.0069 (11) |
| C12 | 0.0624 (15) | 0.0373 (12) | 0.0685 (16) | 0.0083 (11) | 0.0059 (12) | 0.0046 (11) |
| O3 | 0.0809 (13) | 0.0679 (12) | 0.0962 (15) | 0.0187 (10) | −0.0142 (11) | −0.0380 (11) |
| C18 | 0.0648 (15) | 0.0460 (13) | 0.0600 (15) | 0.0054 (11) | 0.0183 (12) | −0.0091 (11) |
| C14 | 0.0584 (15) | 0.0413 (12) | 0.0639 (16) | 0.0020 (11) | 0.0066 (12) | −0.0067 (11) |
| C13 | 0.0571 (14) | 0.0416 (12) | 0.0626 (15) | 0.0050 (11) | 0.0142 (11) | 0.0060 (11) |
| C19 | 0.0582 (14) | 0.0504 (13) | 0.0585 (15) | 0.0095 (11) | 0.0127 (12) | −0.0001 (11) |
| C9 | 0.0732 (17) | 0.0397 (12) | 0.0683 (16) | 0.0075 (11) | 0.0206 (13) | 0.0094 (11) |
| C17 | 0.0565 (14) | 0.0524 (13) | 0.0573 (15) | −0.0036 (11) | 0.0123 (11) | −0.0110 (11) |
| C10 | 0.0714 (17) | 0.0544 (15) | 0.0641 (16) | 0.0019 (12) | 0.0237 (13) | 0.0008 (12) |
| C4 | 0.082 (2) | 0.0497 (15) | 0.088 (2) | 0.0157 (14) | 0.0367 (17) | 0.0043 (15) |
| C2 | 0.0549 (14) | 0.0546 (14) | 0.0678 (17) | 0.0105 (12) | −0.0004 (12) | 0.0033 (12) |
| C3 | 0.0793 (19) | 0.0535 (15) | 0.0726 (18) | 0.0050 (14) | 0.0118 (15) | −0.0069 (13) |
| C6 | 0.0670 (17) | 0.0733 (19) | 0.084 (2) | 0.0199 (15) | −0.0146 (15) | −0.0043 (15) |
| C21 | 0.090 (2) | 0.091 (2) | 0.073 (2) | 0.0045 (17) | −0.0010 (16) | −0.0323 (17) |
| C22 | 0.091 (2) | 0.086 (2) | 0.079 (2) | 0.0381 (18) | 0.0006 (17) | −0.0072 (17) |
| C5 | 0.0646 (19) | 0.083 (2) | 0.117 (3) | 0.0370 (17) | −0.0005 (18) | 0.015 (2) |
| O1—C8 | 1.376 (2) | C18—C19 | 1.385 (3) |
| O1—C7 | 1.426 (3) | C18—H18 | 0.9300 |
| O2—C14 | 1.363 (3) | C13—H13 | 0.9300 |
| O2—C11 | 1.415 (3) | C19—C22 | 1.509 (4) |
| C1—C6 | 1.373 (3) | C9—C10 | 1.383 (3) |
| C1—C2 | 1.376 (3) | C9—H9 | 0.9300 |
| C1—C7 | 1.501 (3) | C17—C21 | 1.511 (3) |
| C16—C17 | 1.385 (3) | C10—H10 | 0.9300 |
| C16—C15 | 1.386 (3) | C4—C3 | 1.348 (4) |
| C16—H16 | 0.9300 | C4—C5 | 1.363 (4) |
| C15—C20 | 1.383 (3) | C4—H4 | 0.9300 |
| C15—C14 | 1.485 (3) | C2—C3 | 1.379 (3) |
| C11—C12 | 1.363 (3) | C2—H2 | 0.9300 |
| C11—C10 | 1.373 (3) | C3—H3 | 0.9300 |
| C8—C9 | 1.381 (3) | C6—C5 | 1.383 (4) |
| C8—C13 | 1.383 (3) | C6—H6 | 0.9300 |
| C7—H7A | 0.9700 | C21—H21A | 0.9600 |
| C7—H7B | 0.9700 | C21—H21B | 0.9600 |
| C20—C19 | 1.382 (3) | C21—H21C | 0.9600 |
| C20—H20 | 0.9300 | C22—H22A | 0.9600 |
| C12—C13 | 1.385 (3) | C22—H22B | 0.9600 |
| C12—H12 | 0.9300 | C22—H22C | 0.9600 |
| O3—C14 | 1.192 (3) | C5—H5 | 0.9300 |
| C18—C17 | 1.379 (3) | ||
| C8—O1—C7 | 117.06 (16) | C20—C19—C22 | 121.4 (2) |
| C14—O2—C11 | 115.93 (18) | C18—C19—C22 | 120.6 (2) |
| C6—C1—C2 | 118.1 (2) | C8—C9—C10 | 120.2 (2) |
| C6—C1—C7 | 120.5 (2) | C8—C9—H9 | 119.9 |
| C2—C1—C7 | 121.4 (2) | C10—C9—H9 | 119.9 |
| C17—C16—C15 | 120.5 (2) | C18—C17—C16 | 118.2 (2) |
| C17—C16—H16 | 119.7 | C18—C17—C21 | 120.4 (2) |
| C15—C16—H16 | 119.7 | C16—C17—C21 | 121.3 (2) |
| C20—C15—C16 | 119.8 (2) | C11—C10—C9 | 119.3 (2) |
| C20—C15—C14 | 117.3 (2) | C11—C10—H10 | 120.3 |
| C16—C15—C14 | 122.9 (2) | C9—C10—H10 | 120.3 |
| C12—C11—C10 | 120.9 (2) | C3—C4—C5 | 119.8 (3) |
| C12—C11—O2 | 120.1 (2) | C3—C4—H4 | 120.1 |
| C10—C11—O2 | 119.0 (2) | C5—C4—H4 | 120.1 |
| O1—C8—C9 | 115.77 (19) | C1—C2—C3 | 121.1 (2) |
| O1—C8—C13 | 124.3 (2) | C1—C2—H2 | 119.5 |
| C9—C8—C13 | 119.9 (2) | C3—C2—H2 | 119.5 |
| O1—C7—C1 | 108.45 (17) | C4—C3—C2 | 120.2 (3) |
| O1—C7—H7A | 110.0 | C4—C3—H3 | 119.9 |
| C1—C7—H7A | 110.0 | C2—C3—H3 | 119.9 |
| O1—C7—H7B | 110.0 | C1—C6—C5 | 120.3 (3) |
| C1—C7—H7B | 110.0 | C1—C6—H6 | 119.8 |
| H7A—C7—H7B | 108.4 | C5—C6—H6 | 119.8 |
| C19—C20—C15 | 120.8 (2) | C17—C21—H21A | 109.5 |
| C19—C20—H20 | 119.6 | C17—C21—H21B | 109.5 |
| C15—C20—H20 | 119.6 | H21A—C21—H21B | 109.5 |
| C11—C12—C13 | 120.2 (2) | C17—C21—H21C | 109.5 |
| C11—C12—H12 | 119.9 | H21A—C21—H21C | 109.5 |
| C13—C12—H12 | 119.9 | H21B—C21—H21C | 109.5 |
| C17—C18—C19 | 122.5 (2) | C19—C22—H22A | 109.5 |
| C17—C18—H18 | 118.7 | C19—C22—H22B | 109.5 |
| C19—C18—H18 | 118.7 | H22A—C22—H22B | 109.5 |
| O3—C14—O2 | 122.9 (2) | C19—C22—H22C | 109.5 |
| O3—C14—C15 | 125.2 (2) | H22A—C22—H22C | 109.5 |
| O2—C14—C15 | 111.8 (2) | H22B—C22—H22C | 109.5 |
| C8—C13—C12 | 119.4 (2) | C4—C5—C6 | 120.5 (3) |
| C8—C13—H13 | 120.3 | C4—C5—H5 | 119.8 |
| C12—C13—H13 | 120.3 | C6—C5—H5 | 119.8 |
| C20—C19—C18 | 118.0 (2) | ||
| C17—C16—C15—C20 | −0.2 (3) | C15—C20—C19—C18 | −1.3 (3) |
| C17—C16—C15—C14 | 177.9 (2) | C15—C20—C19—C22 | 177.9 (2) |
| C14—O2—C11—C12 | 81.2 (3) | C17—C18—C19—C20 | 0.7 (4) |
| C14—O2—C11—C10 | −101.5 (3) | C17—C18—C19—C22 | −178.6 (2) |
| C7—O1—C8—C9 | 174.7 (2) | O1—C8—C9—C10 | −176.4 (2) |
| C7—O1—C8—C13 | −3.9 (3) | C13—C8—C9—C10 | 2.2 (4) |
| C8—O1—C7—C1 | −177.1 (2) | C19—C18—C17—C16 | 0.2 (4) |
| C6—C1—C7—O1 | −79.6 (3) | C19—C18—C17—C21 | 179.0 (2) |
| C2—C1—C7—O1 | 101.1 (3) | C15—C16—C17—C18 | −0.5 (3) |
| C16—C15—C20—C19 | 1.1 (3) | C15—C16—C17—C21 | −179.2 (2) |
| C14—C15—C20—C19 | −177.1 (2) | C12—C11—C10—C9 | −2.6 (4) |
| C10—C11—C12—C13 | 2.9 (4) | O2—C11—C10—C9 | −179.8 (2) |
| O2—C11—C12—C13 | −179.9 (2) | C8—C9—C10—C11 | 0.0 (4) |
| C11—O2—C14—O3 | 2.8 (4) | C6—C1—C2—C3 | −1.0 (4) |
| C11—O2—C14—C15 | −175.36 (19) | C7—C1—C2—C3 | 178.3 (2) |
| C20—C15—C14—O3 | −14.7 (4) | C5—C4—C3—C2 | 0.1 (4) |
| C16—C15—C14—O3 | 167.2 (3) | C1—C2—C3—C4 | 0.6 (4) |
| C20—C15—C14—O2 | 163.4 (2) | C2—C1—C6—C5 | 0.6 (4) |
| C16—C15—C14—O2 | −14.7 (3) | C7—C1—C6—C5 | −178.7 (3) |
| O1—C8—C13—C12 | 176.7 (2) | C3—C4—C5—C6 | −0.5 (5) |
| C9—C8—C13—C12 | −1.9 (4) | C1—C6—C5—C4 | 0.1 (5) |
| C11—C12—C13—C8 | −0.7 (4) |
| Cg1, Cg2 and Cg3 are the centroids of the C1–C6, C8–C13 and C15–C20 rings, respectively. |
| D—H···A | D—H | H···A | D···A | D—H···A |
| C16—H16···O2 | 0.93 | 2.47 | 2.764 (2) | 99 |
| C20—H20···O3 | 0.93 | 2.54 | 2.832 (2) | 98 |
| C3—H3···Cg2i | 0.93 | 2.73 | 3.592 (3) | 154 |
| C13—H13···Cg1ii | 0.93 | 2.98 | 3.794 (3) | 147 |
| C18—H18···Cg3iii | 0.93 | 2.95 | 3.821 (3) | 156 |
| Symmetry codes: (i) −x, −y, −z; (ii) x, y+1, z; (iii) −x−1, y+1/2, −z+1/2. |
Acknowledgements
The authors acknowledge the Indian Institute of Science for the XRD collection under iSTEM scheme and the Center of Innovative Science, Engineering and Education (CISEE), UCS, Tumkur University. PR and BB are thankful to BSPM's lab for use of their computing facilities at the Department of PG Studies and Research in Physics, Albert Einstein Block, UCS, Tumkur University, Tumkur.
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