Next Article in Journal
Larvicidal Potency of Some Selected Nigerian Plants against Aedes aegypti 
Previous Article in Journal
DFT and Multinuclear NMR Spectroscopy in the Study of Five-Membered Saturated Metallocarbocycles of Main III Group Metals
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Proceeding Paper

Clay Catalysis: Solventless Condensation of Benzofuran-3(2H)-One with α,β-Dicarbonyl Compounds under Microwave Irradiation: Synthesis of New Acyl-Aurones †

1
Laboratoire de Chimie Moléculaire et Thioorganique, UMR CNRS 6507, INC3M, FR 3038, ENSICAEN et Université de Caen Normandie, 14050 Caen, France
2
Algeria, Département de Chimie, Faculté des Sciences Exactes et Informatique, Université Mohamed Seddik Ben Yahia Jijel, Jijel 18000, Algeria
*
Author to whom correspondence should be addressed.
Presented at the 27th International Electronic Conference on Synthetic Organic Chemistry (ECSOC-27), 15–30 November 2023; Available online: https://ecsoc-27.sciforum.net/.
Chem. Proc. 2023, 14(1), 32; https://doi.org/10.3390/ecsoc-27-16154
Published: 15 November 2023

Abstract

:
Aurones are natural bioactive dyes found in plants, and many of them are biologically active. We reported herein that α,β-dicarbonyl compounds condense with 3-coumarones without a solvent under microwave irradiation with clay as a catalyst. Novel acylaurones were obtained in good yields; the more stable E-isomer was formed stereoselectively.

1. Introduction

Aurones are natural products [1], and some aurone derivatives have been used recently in medicinal chemistry [2,3]. The aurones were generally synthesized by condensation of coumaran-3-ones with aldehydes under acido-basic conditions [4,5,6]. While ketones generally do not condense easily in these conditions with 3-coumaranones, we report herein that the more electrophilic α,β-dicarbonyl compounds [7] lead to these condensations providing new tetrasubstituted aurones. To our knowledge, the tetrasubstituted aurones already described in the literature were obtained only via ring formation [8].
In order to avoid the benzylic rearrangement [9] of the α,β-dicarbonyl compounds in a basic medium, we have preferred to use acidic catalysis rather than a basic one. Since 1989 [10], we have described the clays as good catalysts in a solvent-free Knoevenagel reaction under microwave irradiation (Scheme 1).

2. Results and Discussion

According to this methodology, an equimolar mixture of benzofuran-3(2H)-one and a dicarbonyl compound adsorbed on clay in a closed tube was irradiated using a microwave at 2450 MHz in a resonance cavity Anton Paar Monowave 300. The reactions of coumaranone 1a and benzil 2a are used as a model reaction to test the clays K10, KSF, or Algerian clay of Maghnia (Maghia) treated with sulphuric acid [11] as a catalyst. All these clays conduct similar yields (around 80%) after microwave irradiation.
Under these conditions, novel acylaurones not previously described were prepared according to Scheme 1. The irradiation conditions and the yields are reported in Table 1. The new   products were characterized using mass spectroscopy, 1H, and 13C NMR spectroscopy.

3. Mechanisms

A probable mechanism for this acidic condensation involves the addition of an α-hydroxy-acylium cation on the enol form of the 3-coumaranone according to Scheme 2:

4. Stereochemistry

Two stereoisomers can be formed in the acidic catalyzed condensation of 3-coumaranone with carbonyl compounds. In the case of aldehydes, only the more stable Z-isomer was produced. In the case of α,β-dicarbonyl compounds, only one stereoisomer was formed (TLC, NMR). We focused on the case of the two stereoisomers of 3a, and we have predicted the 13C NMR spectra of Z and E 3a with Spartan software [12]: the more stable E-isomer displays a 13C NMR spectrum corresponding to the compound found.

5. Experimental

5.1. General Information

The 1H NMR and 13C NMR spectra were recorded on a Brüker AC 400 spectrometer at 400 MHz. Samples were recorded in CDCl3 solutions using TMS as an internal standard. The chemical shifts are expressed in δ units (ppm) and quoted downfield from TMS. The multiplicities are reported as s, singlet; d, doublet; t, triplet; q, quartet; and m, multiplet.
Mass spectra were recorded on Xevo G2-XS QTof Waters.
Microwave irradiations were performed at 2450 MHz with an Anton–Paar Monowave 300.
Computation was performed with Spartan 14 software (DFT, with B3LYP 3-21G basis) on a Dell workstation.

5.2. Starting Reactants

The 6-hydroxybenzofuran-3(2H)-one (1b) and 6-methoxybenzofuran-3(2H)-one (1c) were prepared according to the literature. Benzofuran-3(2H)-one (1a), isatin (2d), bromo-5-isatin (2f), benzil (2a), phenanthraquinone (2b), acenaphthoquinone (2c), and ninhydrine (2e) are commercial (Alfa).
Clays used: the Algerian clay of Maghnia was treated with sulfuric acid according to the conditions described by us in the literature [11]. K10 and KSF clays (Süd Chemie) are commercially available from Aldrich.

5.3. Typical Experiment

The mixture of dicarbonyl compound 2 (1 mmol) and 3-coumaranone 1a (1 mmol) was dissolved in methanol (10 mL), the clay  K10 (2 g)  was added, and the solvent was evaporated under vacuum with a rotary evaporator. The powder placed in a G10 tube was irradiated using a microwave (see conditions Table 1) with a Monowave 300 of Anton Paar. The powder was extracted with methanol (3 × 20 mL), and the solvent was evaporated. The resulting solid was chromatographed using preparative TLC (AcOEt/cyclohexane = 1/3). The colored acylaurones (orange to red) were characterized by 1H, 13C NMR, and mass spectroscopy.
For example:
(E)-2-(2-oxo-1,2-diphenylethylidene)benzofuran-3(2H)-one (3a)
Obtained fom benzil 2a and 3-coumaranone 1a as an orange solid, C22H1403, Mp =  175 °C; Rf = 0.64 (AcOEt).
1H NMR: (400 MHz, CD3Cl) δ 8.07 (m, 1Har); 7.88 (m, 1Har); 7.72 (m, 1Har); 7.63 (m, 1Har); 7.55 (m, 1Har); 7.54 (m, 1Har); and 7.46 (m, 1Har).
13C NMR: (400 MHz, CD3Cl) δ 197.5 (CO); 182.6 (CO), 163.4, 156.2, 137.9, 135.2; 134.5; 132.6; 129.2; 128.9; 128.6; 128.5; 123.4; and 119.1
HRMS (M+1): 327.1021 calculated for C22H1403; found: 327.1020.
IR (cm−1): 1681 (νCO); 1668 (νCO; 1600-1450(νC=C); and 1220 (-O-C).

Author Contributions

Conceptualization, D.V.; investigation, K.B.; writing—review and editing, D.V. and N.B. All authors have read and agreed to the published version of the manuscript.

Funding

This research received no external funding.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

Data sharing is not applicable to this article.

Acknowledgments

The authors thank Karine Jarsalé for mass spectrometry spectra.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Ikans, R. Natural Compounds: An Laboratory Guide; Academic Press: San Diego, CA, USA, 1991. [Google Scholar]
  2. Mazziotti, I.; Petrarolo, G.; La Motta, C. Aurones: A Golden Resource for Active Compounds. Molecules 2022, 27, 2. [Google Scholar] [CrossRef] [PubMed]
  3. Sui, G.; Li, T.; Zhang, B.; Wang, R.; Hao, H.; Zhou, W. Recent advances on synthesis and biological activities of aurones. Bioorg. Med. Chem. 2021, 29, 115895. [Google Scholar] [CrossRef] [PubMed]
  4. Varma, R.S.; Varma, M. Alumina-mediated condensation. A simple synthesis of aurones. Tetrahedron Lett. 1992, 33, 5937–5940. [Google Scholar] [CrossRef]
  5. Villemin, D.; Martin, B.; Bar, N. Application of microwave in organic synthesis: Dry synthesis of 2-arylmethylene-3(2)-naphthofuranones. Molecules 1998, 3, 88–93. [Google Scholar] [CrossRef]
  6. Boussafi, K.; Villemin, D.; Bar, N.;  Belghobsi, M. Green Synthesis of Aurones and Related Compounds under Solvent-free Conditions. J. Chem. Res. 2016, 40, 557–569. [Google Scholar] [CrossRef]
  7. Junek, H.; Hamböck, H.; Hornischer, B. Synthesen mit Nitrilen, 12. Mitt.: Die Malonitrilylidenverbindungen des Phenanthren-und Acenaphthenchinons. Monatshefte Chem. 1967, 98, 315–323. [Google Scholar] [CrossRef]
  8. Lin, C.F.; Lu, W.D.; Wang, I.W.; Wu, M.J. Synthesis of 2-(Diarylmethylene)-3-benzofuranones Promoted via Palladium-Catalyzed Reactions of Aryl iodides with 3-Aryl-1-(2-tert-butyldimethyl-silyloxy) phenyl-2-propyn-1-ones. Synlett 2003, 13, 2057–2061. [Google Scholar] [CrossRef]
  9. Selman, S.; Eastham, J.F. Benzilic acid and related rearrangements. Q. Rev. Chem. Soc. 1960, 14, 221–235. [Google Scholar] [CrossRef]
  10. Ben Alloum, A.; Labiad, B.; Villemin, D. Application of microwave heating techniques for dry organic reactions. J. Chem. Soc. Chem. Commun. 1989, 7, 386–387. [Google Scholar] [CrossRef]
  11. Didi, M.A.; Makhoukhi, B.; Azzouz, A.; Villemin, D. Colza oil bleaching through optimized acid activation of bentonite. A comparative study. Appl. Clay Sci. 2009, 42, 336–344. [Google Scholar] [CrossRef]
  12. Spartan Wavefunction. Available online: https://www.wavefun.com/ (accessed on 12 July 2023).
Scheme 1. Acidic catalyzed condensation of 3-coumaranone with α,β-dicarbonyl compounds.
Scheme 1. Acidic catalyzed condensation of 3-coumaranone with α,β-dicarbonyl compounds.
Chemproc 14 00032 sch001
Scheme 2. Probable mechanism of acidic catalyzed condensation of 3-coumaranone with α,β-dicarbonyl compounds.
Scheme 2. Probable mechanism of acidic catalyzed condensation of 3-coumaranone with α,β-dicarbonyl compounds.
Chemproc 14 00032 sch002
Table 1. Synthesis of new acylaurones under microwave activation.
Table 1. Synthesis of new acylaurones under microwave activation.
Chemproc 14 00032 i001
Coumaranone 1a–bα,β-dicarbonyl 2ConditionsProduct, Yield %
1a2a200 °C, 15 min3a, 80
1a2b200 °C, 10 min3a, 75
1a2c200 °C, 10 min3a, 72
1a2d200 °C, 10 min3d, 70
1a2e200 °C, 15 min3e, 70
1b2a180 °C, 10 min3f, 67
1b2b180 °C, 10 min3g, 65
1b2c180 °C, 10 min3h, 63
1b2d180 °C, 10 min3i, 60
1b2f180 °C, 10 min3j, 70
1c2a180 °C, 10 min3k, 65
1c2b180 °C, 10 min3l, 80
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content.

Share and Cite

MDPI and ACS Style

Boussafi, K.; Villemin, D.; Bar, N. Clay Catalysis: Solventless Condensation of Benzofuran-3(2H)-One with α,β-Dicarbonyl Compounds under Microwave Irradiation: Synthesis of New Acyl-Aurones. Chem. Proc. 2023, 14, 32. https://doi.org/10.3390/ecsoc-27-16154

AMA Style

Boussafi K, Villemin D, Bar N. Clay Catalysis: Solventless Condensation of Benzofuran-3(2H)-One with α,β-Dicarbonyl Compounds under Microwave Irradiation: Synthesis of New Acyl-Aurones. Chemistry Proceedings. 2023; 14(1):32. https://doi.org/10.3390/ecsoc-27-16154

Chicago/Turabian Style

Boussafi, Karima, Didier Villemin, and Nathalie Bar. 2023. "Clay Catalysis: Solventless Condensation of Benzofuran-3(2H)-One with α,β-Dicarbonyl Compounds under Microwave Irradiation: Synthesis of New Acyl-Aurones" Chemistry Proceedings 14, no. 1: 32. https://doi.org/10.3390/ecsoc-27-16154

APA Style

Boussafi, K., Villemin, D., & Bar, N. (2023). Clay Catalysis: Solventless Condensation of Benzofuran-3(2H)-One with α,β-Dicarbonyl Compounds under Microwave Irradiation: Synthesis of New Acyl-Aurones. Chemistry Proceedings, 14(1), 32. https://doi.org/10.3390/ecsoc-27-16154

Article Metrics

Back to TopTop