research communications
Synthesis and structure of ethyl 2,2-dimethyl-3-(naphthalen-1-yl)-1,2-dihydrobenzo[c]siline-4-carboxylate
aThird Hospital of Shanxi Medical University, Shanxi Bethune Hospital, Shanxi Academy of Medical Sciences, Tongji Shanxi Hospital, Taiyuan, 030032, People's Republic of China
*Correspondence e-mail: [email protected]
In the title compound, C24H24O2Si, the six-membered silacyclic ring adopts a twisted boat conformation and the naphthyl substituent is nearly orthogonal to the plane of the benzo[c]siline fused framework. The terminal ethyl ester fragment displays two-site static disorder. In the extended structure, weak C—H⋯O hydrogen bonds link adjacent molecules into infinite zigzag ribbons propagating parallel to the [010] direction.
Keywords: crystal structure; silacycles; hydrogen bonds; extended π-conjugation.
CCDC reference: 2575735
1. Chemical context
Silacyclic fused skeletons represent appealing building blocks for synthetic chemistry, optoelectronic materials and medicinal chemistry (Bains et al., 2003
; Ikeno et al., 2017
; Fujii et al., 2017
). Silicon possesses a larger covalent radius, elongated Si—C bonds and accessible σ*–π* conjugation, which enables precise modulation of electronic and biological properties (Franz et al., 2013
; Gately et al., 2007
; Meanwell et al., 2011
). Silicon isosteres can simultaneously enhance molecular lipophilicity and chemical stability (Min et al., 2013
; Rémond et al., 2016
). Conjugated six-membered benzo[c]silines feature rigid and readily tunable almost planar backbones, yet synthetic and crystallographic investigations of functionalized derivatives lag significantly behind those of five-membered silole analogues (Santra, 2020
).
The parent 1,2-dihydrobenzo[c]siline framework features an sp3-hybridized tetrahedral silicon atom. Endocyclic alkene, aryl and ester substituents can establish multiple intramolecular conjugation pathways. Functionalization with gem-dimethyl, 1-naphthyl and ethyl carboxylate groups extends the effective π-conjugation length; steric hindrance originating from the gem-dimethyl substituents modulates ring geometry, and the naphthalene moiety provides abundant sites for intermolecular π-related interactions. To date, no single-crystal X-ray diffraction data have been documented for this triple-substituted scaffold, leaving its solid-state molecular conformation and supramolecular packing unexplored. Ring expansion of benzosilacyclobutene provides a facile, atom-economic synthetic route to functionalized benzo[c]silines (Wang et al., 2020
; Wang et al., 2025
).
As part of our studies in this area, we now describe the synthesis and structure of the title compound, C24H24O2Si (3) (Fig. 1
).
| Figure 1 The molecular structure of 3 with displacement ellipsoids drawn at the 50% probability level. Only the major disorder component of the ester side chain is shown; hydrogen atoms are omitted for clarity. |
2. Structural commentary
The tetrahedral silicon atom Si1 has four distinct Si—C single bonds ranging from 1.847 (3) to 1.879 (2) Å; the longest Si1—C1 bond corresponds to the olefin-linked carbon atom, which leads to a narrow C9—Si1—C1 angle of 100.76 (11)°, producing obvious puckering of the silacyclic ring. The C1=C2 double bond at 1.340 (3) Å is the shortest carbon–carbon linkage within the whole skeleton, consistent with the of C=C olefin bonds. The six-membered silacyclic ring adopts a twisted boat conformation with C2/C3/C8/C9 almost coplanar (r.m.s. deviation = 0.010 Å) and Si1 and C1 displaced from their mean plane by 0.947 (1) and 0.437 (2) Å, respectively. The torsion angle Si1—C1—C2—C3 of −5.4 (3)° confirms minor deviation of the unsaturated segment from the ring mean plane. The fused benzene moiety on the silacycle remains nearly planar, with the C3—C8—C9 bond angle of 121.5 (2)° matching standard aromatic C—C—C angles. The torsion angle C3—C8—C9—Si1 = −36.2 (3)° quantifies the out-of-plane displacement of the Si atom relative to the benzo-fused plane.
A single C1—C12 σ-bond links the silacyclic core and pendant naphthalene ring. The large torsion angle Si1—C1—C12—C13 = −93.6 (2)° reveals that the naphthalene plane is nearly perpendicular to the benzosiline plane, a result of steric repulsion from the gem-dimethyl substituents on silicon, which restricts intramolecular π-conjugation between the two aromatic systems. The naphthalene fragment maintains ideal aromatic geometry, exemplified by the C16—C21—C12 bond angle of 119.7 (2)°.
At the C2 position of the silacycle lies an ethyl carboxylate group. The carbonyl bond C22=O1 [1.195 (3) Å] and ester single bond C22—O2 [1.320 (3) Å] show typical carbonyl/ether bond lengths for carboxylate esters. The bond angle O1—C22—O2 reaches 124.8 (3)°, while O2—C22—C2 is 111.2 (2)°, reflecting the sp2 state of carbonyl carbon atom C22. The terminal ethyl group on O2 suffers two-site static disorder, as demonstrated by the torsion angle C22—O2—C23—C24 of 101.7 (10)° for one disordered alkyl conformation; the other disordered ethyl chain adopts a separate rotational orientation with different torsion value. Apart from the disordered ethoxy alkyl chain, all rigid aromatic and silacyclic fragments display normal bond lengths and angles without significant structural distortion.
3. Supramolecular features
In the extended structure of 3, weak C15—H15⋯O1 hydrogen bonds link the molecules into infinite zigzag ribbons propagating parallel to the [010] crystallographic direction (Fig. 2
). Geometric parameters for this interaction are listed in Table 1
.
| |||||||||||||||||
| Figure 2 Crystal packing diagram for 3 with hydrogen bonds represented by dashed lines. |
4. Database survey
Searches were carried out with the Cambridge Structural Database(CSD, Version 6.01, update November 2025; Groom et al., 2016
) together with the ConQuest search program (Version 2025.3.1; Bruno et al., 2002
).
An unrestricted search for the parent 1,2-dihydrobenzo[c]siline fused silacyclic core without extra fused aromatic rings returned a moderate number of hits, most of which carry simple alkyl or phenyl substituents only (Wang et al., 2026
). Limiting the query to 2,2-dimethyl-substituted 1,2-dihydrobenzo[c]siline skeletons yielded far fewer recorded structures, indicating this dimethylsilacyclic scaffold remains underexplored in single-crystal crystallography.
Further constraints were applied to narrow the screening: the silacycle bears an ethyl carboxylate group at the C2 position and a pendant naphthalen-1-yl group attached to the ring olefinic carbon atom. After applying this triple substitution filter (gem-dimethyl silicon, 4-carboxylate ester, 3-naphthyl), zero matching crystal structures were retrieved from the CSD.
The few reported analogues of 1,2-dihydrobenzo[c]siline only incorporate small monocyclic aryl groups such as phenyl, rather than extended polycyclic naphthalene fragments. A supplementary restricted search was performed for carboxylate-functionalized benzosilacyclic molecules without naphthyl substitution. Only a few simple phenyl-substituted ethyl benzo[c]siline carboxylate entries were found (Tang et al., 2022
; Tang et al., 2024
), none of which feature the bulky naphthalene π-extended moiety on the silacyclic backbone.
5. Synthesis and crystallization
The synthetic route for the title compound is shown in Fig. 3
. A solution of Pd(OAc)2 (2.2 mg, 0.01 mmol, 5 mol %) and [(2,2-dimethyl-1,3-dioxolane-4,5-diyl)dimethanediyl]bis(diphenylphosphane (DIOP) (10.0 mg, 0.02 mmol, 10 mol %) in EtOAc (0.5 ml) was stirred at 298 K for 3 min. Alkyne 2 (44.8 mg, 0.2 mmol, 1.0 equiv.), benzosilacyclobutene 1 (59.3 mg, 0.4 mmol, 2.0 equiv.) and additional EtOAc (1.5 ml) were added sequentially. The mixture was kept at 298 K for 12 h. The solvent was removed under reduced pressure, and the residue was purified by silica gel with (petroleum ether, then petroleum ether/ethyl acetate = 50:1) to furnish the target product 3 (yield: 30 mg, 40%). 1H NMR (400 MHz, CDCl3) δ 7.88–7.82 (m, 2H), 7.71 (d, J = 8.3 Hz, 1H), 7.47–7.39 (m, 4H), 7.21–7.12 (m, 4H), 3.71 (q, J = 7.1, 2H), 2.36 (s, 2H), 0.45 (t, J = 7.1 Hz, 3H), 0.03 (s, 3H), −0.01 (s, 3H). A solution of 3 (20 mg) in 2.0 ml mixed solvent of CH2Cl2/n-hexane (CH2Cl2:n-hexane = 1:3) was transferred to a test tube and sealed with plastic film. Suitable single crystals of 3 were obtained by slow solvent evaporation over 3 days at room temperature.
| | Figure 3 The synthesis of compound 3. |
6. Refinement
Details of data collection and structure are summarized in Table 2
. The terminal ethyl group of the ester moiety exhibits two-site static positional disorder. Two sets of atomic coordinates (C23/C24 and C23A/C24A) were modelled for the disordered alkyl fragment sharing the ether oxygen atom O2. Suitable distance restraints and anisotropic displacement parameter constraints were adopted to achieve stable refinement of the disordered part. All H atoms were included using a riding model starting from calculated positions. Methyl groups were refined as idealized rigid groups, with C—H = 0.96 Å and H—C—H = 109.5°, allowed to rotate but not tip (AFIX 137 card in SHELXL). Methylene and aromatic H atoms were constrained with C—H = 0.97 Å and 0.93 Å, respectively. The Uiso(H) values were fixed at 1.5Ueq of the parent C atoms for methyl groups and at 1.2Ueq for the remaining H atoms.
|
Supporting information
CCDC reference: 2575735
contains datablock I. DOI: https://doi.org/10.1107/S2056989026008388/hb8244sup1.cif
Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S2056989026008388/hb8244Isup2.hkl
Supporting information file. DOI: https://doi.org/10.1107/S2056989026008388/hb8244Isup3.cml
| C24H24O2Si | F(000) = 792 |
| Mr = 372.52 | Dx = 1.168 Mg m−3 |
| Monoclinic, P21/n | Mo Kα radiation, λ = 0.71073 Å |
| a = 9.8031 (5) Å | Cell parameters from 2164 reflections |
| b = 13.0620 (6) Å | θ = 3.8–24.9° |
| c = 17.1604 (10) Å | µ = 0.13 mm−1 |
| β = 105.412 (6)° | T = 293 K |
| V = 2118.3 (2) Å3 | Block, colourless |
| Z = 4 | 0.35 × 0.30 × 0.25 mm |
| Xcalibur, Eos diffractometer | 4331 independent reflections |
| Radiation source: Enhance (Mo) X-ray Source | 2739 reflections with I > 2σ(I) |
| Graphite monochromator | Rint = 0.027 |
| Detector resolution: 16.0874 pixels mm-1 | θmax = 26.4°, θmin = 3.1° |
| ω scans | h = −12→11 |
| Absorption correction: multi-scan (CrysalisPro; Agilent, 2014) | k = −10→16 |
| Tmin = 0.977, Tmax = 1.000 | l = −21→21 |
| 9418 measured reflections |
| Refinement on F2 | Primary atom site location: dual |
| Least-squares matrix: full | Hydrogen site location: inferred from neighbouring sites |
| R[F2 > 2σ(F2)] = 0.057 | H-atom parameters constrained |
| wR(F2) = 0.144 | w = 1/[σ2(Fo2) + (0.0533P)2 + 0.4704P] where P = (Fo2 + 2Fc2)/3 |
| S = 1.02 | (Δ/σ)max = 0.005 |
| 4331 reflections | Δρmax = 0.20 e Å−3 |
| 255 parameters | Δρmin = −0.22 e Å−3 |
| 2 restraints |
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 | Occ. (<1) | |
| Si1 | 0.19934 (7) | 0.86055 (6) | 0.28273 (5) | 0.0677 (3) | |
| O1 | 0.6312 (2) | 0.64582 (15) | 0.36738 (13) | 0.0948 (7) | |
| O2 | 0.65900 (17) | 0.78080 (15) | 0.44955 (13) | 0.0849 (6) | |
| C1 | 0.3927 (2) | 0.82910 (15) | 0.32118 (12) | 0.0451 (5) | |
| C2 | 0.4304 (2) | 0.74794 (15) | 0.36995 (12) | 0.0414 (5) | |
| C3 | 0.3349 (2) | 0.68302 (15) | 0.40340 (12) | 0.0432 (5) | |
| C4 | 0.3930 (2) | 0.62571 (15) | 0.47252 (13) | 0.0496 (6) | |
| H4 | 0.490195 | 0.628386 | 0.495618 | 0.060* | |
| C5 | 0.3114 (3) | 0.56525 (18) | 0.50777 (16) | 0.0618 (7) | |
| H5 | 0.352714 | 0.528183 | 0.554331 | 0.074* | |
| C6 | 0.1692 (3) | 0.5602 (2) | 0.47376 (19) | 0.0760 (8) | |
| H6 | 0.113043 | 0.519214 | 0.496946 | 0.091* | |
| C7 | 0.1087 (3) | 0.6156 (2) | 0.40530 (19) | 0.0766 (8) | |
| H7 | 0.011395 | 0.611590 | 0.382979 | 0.092* | |
| C8 | 0.1887 (2) | 0.67750 (18) | 0.36838 (15) | 0.0585 (6) | |
| C9 | 0.1192 (3) | 0.7340 (2) | 0.29122 (18) | 0.0804 (8) | |
| H9A | 0.019767 | 0.743510 | 0.288184 | 0.096* | |
| H9B | 0.125079 | 0.692078 | 0.245566 | 0.096* | |
| C10 | 0.1588 (4) | 0.9036 (3) | 0.1761 (2) | 0.1390 (16) | |
| H10A | 0.209245 | 0.965751 | 0.172977 | 0.208* | |
| H10B | 0.058954 | 0.915557 | 0.156109 | 0.208* | |
| H10C | 0.187152 | 0.851655 | 0.144024 | 0.208* | |
| C11 | 0.1435 (3) | 0.9572 (3) | 0.3466 (2) | 0.1177 (13) | |
| H11A | 0.174468 | 0.936650 | 0.402202 | 0.177* | |
| H11B | 0.042264 | 0.963050 | 0.330741 | 0.177* | |
| H11C | 0.184829 | 1.022193 | 0.339953 | 0.177* | |
| C12 | 0.5024 (2) | 0.88483 (16) | 0.29121 (13) | 0.0480 (5) | |
| C13 | 0.5465 (3) | 0.84581 (19) | 0.22820 (15) | 0.0684 (7) | |
| H13 | 0.506983 | 0.785008 | 0.204275 | 0.082* | |
| C14 | 0.6496 (3) | 0.8948 (2) | 0.19860 (18) | 0.0820 (9) | |
| H14 | 0.677997 | 0.866046 | 0.155836 | 0.098* | |
| C15 | 0.7083 (3) | 0.9840 (2) | 0.23209 (18) | 0.0741 (8) | |
| H15 | 0.776477 | 1.016121 | 0.211939 | 0.089* | |
| C16 | 0.6667 (2) | 1.02835 (18) | 0.29737 (15) | 0.0556 (6) | |
| C17 | 0.7270 (3) | 1.1201 (2) | 0.3343 (2) | 0.0747 (8) | |
| H17 | 0.796146 | 1.152936 | 0.315451 | 0.090* | |
| C18 | 0.6855 (3) | 1.1609 (2) | 0.3966 (2) | 0.0817 (8) | |
| H18 | 0.726806 | 1.221327 | 0.420416 | 0.098* | |
| C19 | 0.5817 (3) | 1.11345 (19) | 0.42555 (16) | 0.0702 (7) | |
| H19 | 0.553016 | 1.142822 | 0.467961 | 0.084* | |
| C20 | 0.5221 (2) | 1.02434 (17) | 0.39214 (13) | 0.0536 (6) | |
| H20 | 0.454311 | 0.992613 | 0.412859 | 0.064* | |
| C21 | 0.5612 (2) | 0.97902 (16) | 0.32639 (13) | 0.0454 (5) | |
| C22 | 0.5840 (3) | 0.7176 (2) | 0.39466 (16) | 0.0576 (6) | |
| C23 | 0.8087 (12) | 0.7740 (13) | 0.4996 (10) | 0.101 (3) | 0.445 (11) |
| H23A | 0.844249 | 0.704576 | 0.500442 | 0.121* | 0.445 (11) |
| H23B | 0.817204 | 0.796147 | 0.554594 | 0.121* | 0.445 (11) |
| C24 | 0.8871 (15) | 0.8457 (13) | 0.4572 (10) | 0.143 (4) | 0.555 (11) |
| H24A | 0.862779 | 0.830092 | 0.400473 | 0.214* | 0.555 (11) |
| H24B | 0.987223 | 0.837422 | 0.479513 | 0.214* | 0.555 (11) |
| H24C | 0.861109 | 0.915184 | 0.464637 | 0.214* | 0.555 (11) |
| C23A | 0.8130 (9) | 0.7548 (10) | 0.4550 (9) | 0.101 (3) | 0.555 (11) |
| H23C | 0.839613 | 0.688670 | 0.480229 | 0.121* | 0.555 (11) |
| H23D | 0.831899 | 0.755889 | 0.402343 | 0.121* | 0.555 (11) |
| C24A | 0.8855 (19) | 0.8400 (16) | 0.5071 (12) | 0.143 (4) | 0.445 (11) |
| H24D | 0.855128 | 0.904124 | 0.480903 | 0.214* | 0.445 (11) |
| H24E | 0.986018 | 0.833151 | 0.515975 | 0.214* | 0.445 (11) |
| H24F | 0.862360 | 0.837720 | 0.557994 | 0.214* | 0.445 (11) |
| U11 | U22 | U33 | U12 | U13 | U23 | |
| Si1 | 0.0569 (4) | 0.0664 (5) | 0.0688 (5) | −0.0029 (4) | −0.0025 (3) | 0.0175 (4) |
| O1 | 0.1178 (17) | 0.0744 (13) | 0.1161 (17) | 0.0434 (12) | 0.0727 (14) | 0.0215 (12) |
| O2 | 0.0432 (9) | 0.0742 (13) | 0.1242 (17) | 0.0014 (9) | −0.0006 (10) | 0.0113 (13) |
| C1 | 0.0577 (12) | 0.0368 (11) | 0.0410 (12) | −0.0052 (10) | 0.0137 (10) | 0.0001 (10) |
| C2 | 0.0500 (12) | 0.0357 (11) | 0.0403 (11) | −0.0018 (10) | 0.0150 (9) | −0.0035 (10) |
| C3 | 0.0527 (12) | 0.0345 (10) | 0.0450 (12) | −0.0055 (10) | 0.0172 (10) | −0.0056 (10) |
| C4 | 0.0584 (13) | 0.0425 (12) | 0.0517 (14) | −0.0019 (11) | 0.0211 (11) | 0.0013 (11) |
| C5 | 0.0782 (17) | 0.0507 (14) | 0.0620 (16) | −0.0047 (13) | 0.0282 (14) | 0.0082 (12) |
| C6 | 0.0823 (19) | 0.0629 (17) | 0.092 (2) | −0.0192 (15) | 0.0395 (17) | 0.0083 (16) |
| C7 | 0.0566 (15) | 0.0706 (17) | 0.100 (2) | −0.0222 (14) | 0.0162 (15) | 0.0036 (17) |
| C8 | 0.0569 (13) | 0.0512 (13) | 0.0629 (16) | −0.0152 (12) | 0.0080 (12) | −0.0026 (12) |
| C9 | 0.0619 (15) | 0.085 (2) | 0.0791 (19) | −0.0241 (15) | −0.0075 (13) | 0.0090 (17) |
| C10 | 0.115 (3) | 0.174 (4) | 0.101 (3) | −0.007 (3) | −0.017 (2) | 0.077 (3) |
| C11 | 0.0648 (19) | 0.107 (3) | 0.177 (4) | 0.0185 (19) | 0.023 (2) | −0.015 (3) |
| C12 | 0.0583 (13) | 0.0437 (12) | 0.0452 (13) | 0.0066 (11) | 0.0193 (10) | 0.0080 (11) |
| C13 | 0.102 (2) | 0.0504 (14) | 0.0643 (16) | 0.0039 (14) | 0.0426 (16) | 0.0048 (13) |
| C14 | 0.117 (2) | 0.0681 (18) | 0.084 (2) | 0.0192 (18) | 0.0670 (19) | 0.0151 (16) |
| C15 | 0.0771 (18) | 0.0685 (18) | 0.094 (2) | 0.0139 (15) | 0.0525 (17) | 0.0324 (17) |
| C16 | 0.0522 (13) | 0.0528 (14) | 0.0653 (16) | 0.0071 (12) | 0.0216 (12) | 0.0199 (13) |
| C17 | 0.0608 (16) | 0.0620 (17) | 0.102 (2) | −0.0156 (14) | 0.0221 (16) | 0.0156 (17) |
| C18 | 0.085 (2) | 0.0609 (17) | 0.093 (2) | −0.0248 (16) | 0.0127 (17) | −0.0042 (17) |
| C19 | 0.0853 (18) | 0.0589 (16) | 0.0651 (17) | −0.0166 (15) | 0.0175 (14) | −0.0089 (14) |
| C20 | 0.0617 (13) | 0.0500 (13) | 0.0501 (13) | −0.0084 (12) | 0.0168 (11) | 0.0024 (12) |
| C21 | 0.0453 (11) | 0.0420 (12) | 0.0490 (13) | 0.0035 (10) | 0.0126 (10) | 0.0117 (10) |
| C22 | 0.0649 (15) | 0.0490 (14) | 0.0698 (17) | 0.0099 (13) | 0.0369 (14) | 0.0225 (13) |
| C23 | 0.0436 (18) | 0.111 (5) | 0.143 (9) | 0.006 (3) | 0.016 (5) | 0.006 (7) |
| C24 | 0.063 (2) | 0.168 (5) | 0.196 (14) | −0.014 (3) | 0.032 (9) | 0.021 (11) |
| C23A | 0.0436 (18) | 0.111 (5) | 0.143 (9) | 0.006 (3) | 0.016 (5) | 0.006 (7) |
| C24A | 0.063 (2) | 0.168 (5) | 0.196 (14) | −0.014 (3) | 0.032 (9) | 0.021 (11) |
| Si1—C1 | 1.879 (2) | C12—C13 | 1.365 (3) |
| Si1—C9 | 1.853 (3) | C12—C21 | 1.423 (3) |
| Si1—C10 | 1.853 (3) | C13—H13 | 0.9300 |
| Si1—C11 | 1.847 (3) | C13—C14 | 1.401 (3) |
| O1—C22 | 1.195 (3) | C14—H14 | 0.9300 |
| O2—C22 | 1.320 (3) | C14—C15 | 1.358 (4) |
| O2—C23 | 1.493 (12) | C15—H15 | 0.9300 |
| O2—C23A | 1.526 (9) | C15—C16 | 1.414 (3) |
| C1—C2 | 1.340 (3) | C16—C17 | 1.409 (4) |
| C1—C12 | 1.498 (3) | C16—C21 | 1.416 (3) |
| C2—C3 | 1.487 (3) | C17—H17 | 0.9300 |
| C2—C22 | 1.505 (3) | C17—C18 | 1.351 (4) |
| C3—C4 | 1.390 (3) | C18—H18 | 0.9300 |
| C3—C8 | 1.401 (3) | C18—C19 | 1.391 (4) |
| C4—H4 | 0.9300 | C19—H19 | 0.9300 |
| C4—C5 | 1.374 (3) | C19—C20 | 1.359 (3) |
| C5—H5 | 0.9300 | C20—H20 | 0.9300 |
| C5—C6 | 1.362 (4) | C20—C21 | 1.415 (3) |
| C6—H6 | 0.9300 | C23—H23A | 0.9700 |
| C6—C7 | 1.373 (4) | C23—H23B | 0.9700 |
| C7—H7 | 0.9300 | C23—C24 | 1.516 (17) |
| C7—C8 | 1.391 (3) | C24—H24A | 0.9600 |
| C8—C9 | 1.511 (3) | C24—H24B | 0.9600 |
| C9—H9A | 0.9700 | C24—H24C | 0.9600 |
| C9—H9B | 0.9700 | C23A—H23C | 0.9700 |
| C10—H10A | 0.9600 | C23A—H23D | 0.9700 |
| C10—H10B | 0.9600 | C23A—C24A | 1.484 (16) |
| C10—H10C | 0.9600 | C24A—H24D | 0.9600 |
| C11—H11A | 0.9600 | C24A—H24E | 0.9600 |
| C11—H11B | 0.9600 | C24A—H24F | 0.9600 |
| C11—H11C | 0.9600 | ||
| C9—Si1—C1 | 100.76 (11) | C12—C13—C14 | 121.9 (3) |
| C9—Si1—C10 | 111.35 (17) | C14—C13—H13 | 119.1 |
| C10—Si1—C1 | 110.16 (15) | C13—C14—H14 | 119.9 |
| C11—Si1—C1 | 111.79 (12) | C15—C14—C13 | 120.3 (2) |
| C11—Si1—C9 | 111.38 (16) | C15—C14—H14 | 119.9 |
| C11—Si1—C10 | 111.0 (2) | C14—C15—H15 | 119.7 |
| C22—O2—C23 | 130.5 (7) | C14—C15—C16 | 120.5 (2) |
| C22—O2—C23A | 105.0 (5) | C16—C15—H15 | 119.7 |
| C2—C1—Si1 | 118.51 (15) | C15—C16—C21 | 118.9 (2) |
| C2—C1—C12 | 119.63 (19) | C17—C16—C15 | 122.0 (2) |
| C12—C1—Si1 | 121.48 (15) | C17—C16—C21 | 119.1 (2) |
| C1—C2—C3 | 126.47 (19) | C16—C17—H17 | 119.6 |
| C1—C2—C22 | 118.28 (18) | C18—C17—C16 | 120.9 (2) |
| C3—C2—C22 | 115.25 (18) | C18—C17—H17 | 119.6 |
| C4—C3—C2 | 118.63 (19) | C17—C18—H18 | 119.7 |
| C4—C3—C8 | 118.6 (2) | C17—C18—C19 | 120.6 (3) |
| C8—C3—C2 | 122.8 (2) | C19—C18—H18 | 119.7 |
| C3—C4—H4 | 119.0 | C18—C19—H19 | 119.8 |
| C5—C4—C3 | 122.0 (2) | C20—C19—C18 | 120.3 (3) |
| C5—C4—H4 | 119.0 | C20—C19—H19 | 119.8 |
| C4—C5—H5 | 120.4 | C19—C20—H20 | 119.4 |
| C6—C5—C4 | 119.2 (2) | C19—C20—C21 | 121.1 (2) |
| C6—C5—H5 | 120.4 | C21—C20—H20 | 119.4 |
| C5—C6—H6 | 119.9 | C16—C21—C12 | 119.7 (2) |
| C5—C6—C7 | 120.1 (2) | C20—C21—C12 | 122.32 (19) |
| C7—C6—H6 | 119.9 | C20—C21—C16 | 117.9 (2) |
| C6—C7—H7 | 119.1 | O1—C22—O2 | 124.8 (3) |
| C6—C7—C8 | 121.9 (2) | O1—C22—C2 | 124.0 (3) |
| C8—C7—H7 | 119.1 | O2—C22—C2 | 111.2 (2) |
| C3—C8—C9 | 121.5 (2) | O2—C23—H23A | 111.1 |
| C7—C8—C3 | 118.1 (2) | O2—C23—H23B | 111.1 |
| C7—C8—C9 | 120.4 (2) | O2—C23—C24 | 103.5 (10) |
| Si1—C9—H9A | 108.8 | H23A—C23—H23B | 109.0 |
| Si1—C9—H9B | 108.8 | C24—C23—H23A | 111.1 |
| C8—C9—Si1 | 113.76 (17) | C24—C23—H23B | 111.1 |
| C8—C9—H9A | 108.8 | C23—C24—H24A | 109.5 |
| C8—C9—H9B | 108.8 | C23—C24—H24B | 109.5 |
| H9A—C9—H9B | 107.7 | C23—C24—H24C | 109.5 |
| Si1—C10—H10A | 109.5 | H24A—C24—H24B | 109.5 |
| Si1—C10—H10B | 109.5 | H24A—C24—H24C | 109.5 |
| Si1—C10—H10C | 109.5 | H24B—C24—H24C | 109.5 |
| H10A—C10—H10B | 109.5 | O2—C23A—H23C | 111.7 |
| H10A—C10—H10C | 109.5 | O2—C23A—H23D | 111.7 |
| H10B—C10—H10C | 109.5 | H23C—C23A—H23D | 109.5 |
| Si1—C11—H11A | 109.5 | C24A—C23A—O2 | 100.3 (10) |
| Si1—C11—H11B | 109.5 | C24A—C23A—H23C | 111.7 |
| Si1—C11—H11C | 109.5 | C24A—C23A—H23D | 111.7 |
| H11A—C11—H11B | 109.5 | C23A—C24A—H24D | 109.5 |
| H11A—C11—H11C | 109.5 | C23A—C24A—H24E | 109.5 |
| H11B—C11—H11C | 109.5 | C23A—C24A—H24F | 109.5 |
| C13—C12—C1 | 119.8 (2) | H24D—C24A—H24E | 109.5 |
| C13—C12—C21 | 118.7 (2) | H24D—C24A—H24F | 109.5 |
| C21—C12—C1 | 121.43 (18) | H24E—C24A—H24F | 109.5 |
| C12—C13—H13 | 119.1 | ||
| Si1—C1—C2—C3 | −5.4 (3) | C10—Si1—C9—C8 | 158.9 (2) |
| Si1—C1—C2—C22 | 174.72 (17) | C11—Si1—C1—C2 | 94.9 (2) |
| Si1—C1—C12—C13 | −93.6 (2) | C11—Si1—C1—C12 | −92.2 (2) |
| Si1—C1—C12—C21 | 85.7 (2) | C11—Si1—C9—C8 | −76.6 (2) |
| C1—Si1—C9—C8 | 42.1 (2) | C12—C1—C2—C3 | −178.53 (19) |
| C1—C2—C3—C4 | −158.4 (2) | C12—C1—C2—C22 | 1.6 (3) |
| C1—C2—C3—C8 | 21.3 (3) | C12—C13—C14—C15 | −0.4 (4) |
| C1—C2—C22—O1 | −104.5 (3) | C13—C12—C21—C16 | −2.0 (3) |
| C1—C2—C22—O2 | 75.1 (3) | C13—C12—C21—C20 | −179.6 (2) |
| C1—C12—C13—C14 | −179.5 (2) | C13—C14—C15—C16 | 0.3 (4) |
| C1—C12—C21—C16 | 178.78 (19) | C14—C15—C16—C17 | 179.1 (3) |
| C1—C12—C21—C20 | 1.2 (3) | C14—C15—C16—C21 | −1.0 (4) |
| C2—C1—C12—C13 | 79.3 (3) | C15—C16—C17—C18 | −179.9 (3) |
| C2—C1—C12—C21 | −101.5 (2) | C15—C16—C21—C12 | 1.8 (3) |
| C2—C3—C4—C5 | 178.90 (19) | C15—C16—C21—C20 | 179.5 (2) |
| C2—C3—C8—C7 | −179.0 (2) | C16—C17—C18—C19 | −0.3 (4) |
| C2—C3—C8—C9 | 3.0 (4) | C17—C16—C21—C12 | −178.2 (2) |
| C3—C2—C22—O1 | 75.7 (3) | C17—C16—C21—C20 | −0.5 (3) |
| C3—C2—C22—O2 | −104.8 (2) | C17—C18—C19—C20 | 1.0 (4) |
| C3—C4—C5—C6 | 0.7 (4) | C18—C19—C20—C21 | −1.4 (4) |
| C3—C8—C9—Si1 | −36.2 (3) | C19—C20—C21—C12 | 178.8 (2) |
| C4—C3—C8—C7 | 0.7 (3) | C19—C20—C21—C16 | 1.2 (3) |
| C4—C3—C8—C9 | −177.3 (2) | C21—C12—C13—C14 | 1.3 (4) |
| C4—C5—C6—C7 | −0.4 (4) | C21—C16—C17—C18 | 0.1 (4) |
| C5—C6—C7—C8 | 0.3 (4) | C22—O2—C23—C24 | 101.7 (10) |
| C6—C7—C8—C3 | −0.5 (4) | C22—O2—C23A—C24A | 171.2 (8) |
| C6—C7—C8—C9 | 177.5 (3) | C22—C2—C3—C4 | 21.4 (3) |
| C7—C8—C9—Si1 | 145.8 (2) | C22—C2—C3—C8 | −158.9 (2) |
| C8—C3—C4—C5 | −0.8 (3) | C23—O2—C22—O1 | −9.8 (9) |
| C9—Si1—C1—C2 | −23.5 (2) | C23—O2—C22—C2 | 170.7 (8) |
| C9—Si1—C1—C12 | 149.41 (18) | C23A—O2—C22—O1 | 11.2 (6) |
| C10—Si1—C1—C2 | −141.2 (2) | C23A—O2—C22—C2 | −168.3 (6) |
| C10—Si1—C1—C12 | 31.7 (2) |
| D—H···A | D—H | H···A | D···A | D—H···A |
| C15—H15···O1i | 0.93 | 2.49 | 3.359 (4) | 156 |
| Symmetry code: (i) −x+3/2, y+1/2, −z+1/2. |
Funding information
Financial support from the Fundamental Research Program of the Shanxi Provincial Administration of Traditional Chinese Medicine (grant No. 2024ZYY2C038) and the Scientific Research Foundation of Shanxi Bethune Hospital (grant No. 2023RC33) is gratefully acknowledged.
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