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Proceeding Paper

Ti-Catalyzed Reaction of β-Pinene with BF3·THF †

by
Liliya I. Tulyabaeva
*,
Rustam R. Salakhutdinov
,
Tatiyana V. Tyumkina
and
Arthur R. Tulyabaev
Institute of Petrochemistry and Catalysis, Ufa Federal Research Center, Russian Academy of Sciences, 141 Prospekt Oktyabrya, 450075 Ufa, Russia
*
Author to whom correspondence should be addressed.
Presented at the 26th International Electronic Conference on Synthetic Organic Chemistry, 15–30 November 2022; Available online: https://ecsoc-26.sciforum.net/.
Chem. Proc. 2022, 12(1), 42; https://doi.org/10.3390/ecsoc-26-13529
Published: 14 November 2022

Abstract

:
The reaction between β-pinene and BF3·THF in the presence of the catalytic system Cp2TiCl2/Mg was carried out for the first time to obtain a 1-fluoro-substituted boraspirane, undescribed previously. The reaction proceeds stereoselectively, but is complicated by the rearrangement of the β-pinene under the Ti-catalyzed reaction conditions.

1. Introduction

The Cp2TiCl2-catalyzed cycloboration of α-olefins with boron halides BX3 (X = F and Cl) or RBCl2 (R = Alk, Ar) provides a convenient one-pot procedure for the conversion of olefinic structures into a rare class of organoboron compounds—boriranes 16 (Scheme 1) [1,2,3,4,5]. α,ω-Dienes can also be used as monomers to obtain 1,2-disubstituted boriranes [6].
Methylenecycloalkanes were used as monomers to expand the scope of this method to prepare three-membered cyclic organoboron compounds, which allowed one to obtain spiroboriranes. As an example, 1-Phenyl-substituted spiroboracarbocycles were formed with a yield of 70–80% after the Cp2TiCl2-catalyzed cycloboration of methylenecycloalkanes with PhBCl2 [7], and when BF3·THF was used as a boron reagent, target 1-fluoro-substituted spiroboracarbocycles were formed in a mixture with isomerization products of a starting monomer (1-methylcycloalk-1-enes) [8].
We explored the cycloboration reaction of β-pinene used as the starting material to continue these studies. Pinane terpenoids are attractive monomers in organic synthesis, which is due to their availability in nature and wide practical use as raw materials to produce organic polymers [9,10], insecticides, fragrant and medicinal substances [11,12]. The studies of new transformations of natural terpenoids to obtain known and new pharmacologically active low molecular bioregulators, therefore, are relevant and in demand.
As a part of an ongoing program in our laboratories aimed at the metall-catalyzed synthesis of new organoborane compounds we, for the first time, carried out the Ti-catalyzed reaction of β-pinene with BF3·THF.

2. Results and Discussion

We found that the reaction between β-pinene and BF3·THF in the presence of catalytic system Cp2TiCl2/Mg under the developed conditions (20 mol% Cp2TiCl2, 40 mol% Mg, THF, 4–6 h, 50−55 °C) gives the 1′-fluoro-substituted spiro[bicyclo [3.1.1]heptane-2,2′-borirane] 7 in an 86% yield (Scheme 2).
No signals of a double bond of the methylene group C2=C10H2 were observed in 1H and 13C NMR spectra of the reaction mixture after the reaction termination. The signal of a C7 bridge carbon atom was detected in a more high-frequency field (up to 33.01 ppm) of a 13C NMR spectrum in comparison with that of a starting β-pinene (27.8 ppm), which indicated its complete consumption. In addition, the difference in 1H NMR chemical shifts of C7HA and C7HB diastereotopic protons of the reaction product 7 was 1.46 ppm, whereas it was 0.89 ppm in the starting β-pinene. The signals of carbon and hydrogen atoms of the C10H2–B–C2(C1H)(C3H2)(Cq6) group directly bound to a quadrupole boron atom or 2–3 chemical bonds away were expectedly not detected in 1H and 13C NMR time scales [13], which is typical for three-membered cyclic systems (a series of boriranes [1,2,3,4,5,6], [14] and borirenes [15,16]). The 11B NMR spectrum of the compound 7 contains a broadened signal at δB −0.97 ppm, and 19F NMR spectrum shows a signal at δF −151.09 ppm. Additional signals at δB −0.01 and δF −155.78 ppm in the 11B and 19F NMR spectra, respectively, are assigned to BF3 that forms a complex with the boraspirane 7. The reaction product characterized with multinuclear NMR spectroscopy, therefore, was 1′-fluoro-substituted spiro[bicyclo[3.1.1]heptane-2,2′-borirane] 7 formed under the reaction conditions as a complex with boron trifluoride.
In the mass spectrum of the compound 7, the molecular ion peak is absent, but the oxidation product 8 yields a fragmentary ion peak with m/z 152 [M-BF]+ by loss of BF group (Scheme 3).
The fact that mirtanol 9 with its exclusively cis configuration is formed indicates that the reaction is stereoselective.
The o-ment-6-en-8-ol 10 was isolated as a byproduct in a 20% yield after the hydrolysis (Figure 1). It is known that β-pinene undergoes the skeletal rearrangements of a pinane backbone in the presence of acid catalysts (such as boron trifluoride or Ti compounds) to form monocyclic and acyclic products (derivatives of α-pinene, limonene, myrcene, etc.). It is obvious that the monocyclic o-ment-6-en-8-ol 10 is a product of double bond isomerization and C5–C6 bond cleavage of a four-membered fragment of β-pinene under the reaction conditions. We observed previously the isomerization of α-olefins to isomeric alk-2-enes [2] and methylenecycloalkanes to 1-methylcycloalk-1-enes [8] under the conditions of Ti-catalyzed cycloboration with boron trifluoride.

3. Conclusions

In summary, we performed the cycloboration of β-pinene for the first time using BF3·THF reagent in the presence of a Cp2TiCl2/Mg two-component catalytic system to obtain 1′-fluoro-substituted spiro[bicyclo[3.1.1]heptane-2,2′-borirane 7, undescribed previously. Skeletal rearrangements of the bicyclic backbone of β-pinene are possible under the conditions of Ti-catalyzed reaction. The development of new methods and approaches to prepare boron-containing derivatives is of great practical interest from the point of view of creating new molecules with potential biological activity.

4. Experimental Part

All reactions with organometallic and organoboron compounds were performed using standard Schlenk techniques. β-Pinene, BF3·THF and Cp2TiCl2 were obtained from commercial sources and used without further purification. THF was dried by distillation over sodium/benzophenone and stored under an argon atmosphere. The 1H, 13C, 11B, 19F and 2D homo- (COSY) and heteronuclear (HSQC, HMBC, DOSY) NMR spectra were measured in CDCl3 on a Bruker Avance-400 spectrometer [400.13 (1H), 100.62 (13C), 128.33 (11B), 376.37 (19F) MHz]. The chemical shifts (δ) are given in parts per million (ppm) relative to Me4Si (for 1H and 13C NMR chemical shifts), BF3·Et2O (11B NMR) and CCl3F (19F NMR) standards. Multiplicity is given in br, s, d and m for broad, singlet, doublet and multiplet, respectively. Coupling constants (J) are given in Hz. Mass spectra were recorded on Shimadzu GCMS-QP2010 Ultra, capillary column Supelco PTE-5 (60 m × 0.25 mm, carrier gas helium, ramp from 40 to 280 °C at a rate 8 deg/min, ionizing electrons energy 70 eV, injector temperature 260 °C, ion source temperature 200 °C).
Chromatographic analysis was performed on a chromatograph using a 2000 × 2 mm column (SE-30 (5%) stationary phase on Chromaton N-AW-HMDS (0.125–0.160 mm), helium carrier gas (30 mL/min), and temperature programming from 50 to 300 °C at an 8 °C/min rate).
Cp2TiCl2-catalyzed reaction of β-Pinene with BF3·THF. A glass reactor (20 mL) under a dry argon atmosphere at 0 °C was charged under stirring with Cp2TiCl2 (0.4 mmol, 0.10 g), magnesium (powder) (1.6 mmol, 0.04 g), THF (10 mL), β-pinene (2 mmol) and BF3·THF (8 mmol, 1.12 g). The temperature was raised to ~50‒55 °C and the mixture was stirred about 4–6 h. Then the reaction mixture was cooled to room temperature and centrifuged, the excess of magnesium was filtered off, the solvent was evaporated, and boraspirane 7 was analyzed by NMR spectroscopy in an argon atmosphere in CDCl3.
1′-Fluoro-spiro[bicyclo[3.1.1]heptane-2,2′-borirane] (7): Yield 86% (determined by 1H NMR), 1H NMR: δ 2.35–2.41 (m, 1H, CHA), 2.00–2.05 (m, 1H, CH), 1.88–1.97 (m, 2H, CH, CHA), 1.42–1.50 (m, 1H, CHB), 1.21 (br s, 3H), 1.00 (br s, 3H), 0.91–0.96 (m, 1H, CHB) ppm. 13C NMR: δ 42.7, 41.3, 33.0, 28.0, 23.1, 18.5 ppm. 11B NMR: δ −0.97, −0.01 (BF3) ppm. 19F NMR: δ −151.09, −155.78 (BF3) ppm. GC-MS: m/z 152 [M−BF]+.
Cp2TiCl2-catalyzed reaction of β-Pinene with BF3·THF after addition water. To a solution of boraspirane 7, synthesized according to above described procedures, water (2 mL) was added under oxygen atmosphere and the mixture was stirred for 1 h. The organic layer was separated, the aqueous layer was extracted with diethyl ether (2 × 10 mL), extracts were combined with the organic phase. The solvent was evaporated and the residue was distilled under reduced pressure.
cis-Myrtanol (9): Yield 63% (0.194 g), colorless oil, [ α ] D 21 = −8,6 (CHCl3, c = 0.081), bp 85 °C (4 mm). 1H NMR: δ 3.55–3.63 (m, 2H), 2.36–2.42 (m, 1H), 2.23–2.30 (m, 1H), 2.02–2.07 (m, 1H), 1.87–2.01 (m, 4H), 1.42–1.52 (m, 1H), 1.21 (s, 3H), 0.99 (s, 3H), 0.96 (d, J = 9.5 Hz, 1H) ppm. 13C NMR: δ 76.8, 44.4, 42.8, 41.4, 38.6, 33.1, 27.9, 25.9, 23.3, 18.7 ppm. GC-MS: m/z 136 (10%) [M−H2O]+.
o-Menth-6-en-8-ol (10): Yield 25% (0.077 g), colorless oil, [ α ] D 21 = −78,1 (CHCl3, c = 0.44), bp 70 °C (1 mm). 1H NMR: δ 5.38–5.43 (m, 1H), 1.97–2.11 (m, 3H), 1.86–1.94 (m, 1H), 1.77–1.85 (m, 1H), 1.67 (s, 3H), 1.52 (m, 1H), 1.24–1.32 (m, 1H), 1.21 (s, 3H), 1.19 (s, 3H) ppm. 13C NMR: δ 134.0, 120.52, 72.7, 44.9, 30.9, 27.4, 26.8, 26.2, 23.9, 23.3 ppm. GC-MS: m/z 136 (4%) [M−H2O]+.

Author Contributions

Conceptualization, L.I.T.; methodology, validation, and execution of chemistry experiments, L.I.T. and R.R.S.; manuscript preparation, L.I.T. and T.V.T. Visualization, writing—review and editing, L.I.T., T.V.T. and A.R.T. All authors have read and agreed to the published version of the manuscript.

Funding

The study was carried out in accordance with the Federal Program No. FMRS-2022-0075.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

Data available on request.

Acknowledgments

The structural studies of compounds were performed on the equipment of «Agidel» Collective Usage Center of Ufa Federal Research Center at the Institute of Petrochemistry and Catalysis, Ufa Federal Research Center, Russian Academy of Sciences.

Conflicts of Interest

The authors declare no conflict of interest.

References

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Scheme 1. Synthesis of 1,2-disubstituted boriranes 16 via Cp2TiCl2-catalyzed reaction of α-olefins with boron halides or dihaloboranes.
Scheme 1. Synthesis of 1,2-disubstituted boriranes 16 via Cp2TiCl2-catalyzed reaction of α-olefins with boron halides or dihaloboranes.
Chemproc 12 00042 sch001
Scheme 2. Reaction between β-pinene and BF3·THF under the action of Cp2TiCl2/Mg catalytic system. (1 Yield determined by 1H NMR).
Scheme 2. Reaction between β-pinene and BF3·THF under the action of Cp2TiCl2/Mg catalytic system. (1 Yield determined by 1H NMR).
Chemproc 12 00042 sch002
Scheme 3. Oxidation of 1-fluoro-substituted boraspirane 7 by oxygen with subsequent hydrolysis. (1 Isolated yields given).
Scheme 3. Oxidation of 1-fluoro-substituted boraspirane 7 by oxygen with subsequent hydrolysis. (1 Isolated yields given).
Chemproc 12 00042 sch003
Figure 1. Structure of o-ment-6-en-8-ol 10.
Figure 1. Structure of o-ment-6-en-8-ol 10.
Chemproc 12 00042 g001
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MDPI and ACS Style

Tulyabaeva, L.I.; Salakhutdinov, R.R.; Tyumkina, T.V.; Tulyabaev, A.R. Ti-Catalyzed Reaction of β-Pinene with BF3·THF. Chem. Proc. 2022, 12, 42. https://doi.org/10.3390/ecsoc-26-13529

AMA Style

Tulyabaeva LI, Salakhutdinov RR, Tyumkina TV, Tulyabaev AR. Ti-Catalyzed Reaction of β-Pinene with BF3·THF. Chemistry Proceedings. 2022; 12(1):42. https://doi.org/10.3390/ecsoc-26-13529

Chicago/Turabian Style

Tulyabaeva, Liliya I., Rustam R. Salakhutdinov, Tatiyana V. Tyumkina, and Arthur R. Tulyabaev. 2022. "Ti-Catalyzed Reaction of β-Pinene with BF3·THF" Chemistry Proceedings 12, no. 1: 42. https://doi.org/10.3390/ecsoc-26-13529

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