Multi-component reactions (MCRs) are a promising and important field of chemistry because the synthesis of complex molecules can be achieved in a fast, efficient, and time-saving manner without the isolation of any intermediates. Organic chemists have therefore become interested in developing novel MCRs or improving known MCRs [1, 2, 3]. One such reaction is the synthesis of 2,3-dihydroquinazolin-4(1H)-ones.
2,3-Dihydroquinazolin-4(1H)-ones are an important class of fused heterocycles with a wide range of pharmacological and biological activities, which include antifertility, antibacterial, antitumor, and antifungal applications [4, 5]. Therefore, considerable efforts have been made to explore new simple and direct approaches towards the construction of 2,3-dihydroquinazolin- 4(1H)-one skeletons. Several methods for the synthesis of these compounds have been reported in the literature. One method involves the condensation of aldehydes with anthranilamide using various promoting agents [6, 7, 8, 9], but this is only suitable for the synthesis of 2-substituted-2,3-dihydroquinazolin- 4(1H)-ones. Other methods include reduction of quinazolin- 4(3H)-ones using sodium borohydride or sodium cyanoborohydride in acetic acid [10], condensation of anthranilamide with benzyl followed by base-catalyzed hydrolysis [11], and a two-step synthesis starting from the reaction of isatoic anhydride and amines, then ring-closing with ketones [12]. The most straightforward procedure for the preparation of 2-substituted- and 2,3-disubstituted-2,3-dihydroquinazolin- 4(1H)-ones involves the one-pot three-component reaction of isatoic anhydride, aromatic aldehydes, and a nitrogen source such as ammonium acetate or primary amines in the presence of various catalysts. These catalysts include [bmim]HSO4 [13], silica sulfuric acid [14], p-toluenesulfonic acid- paraformaldehyde copolymer (copolymer-PTSA) [15], trifluoroethanol [16], thiamine hydrochloride [17], Cu-CNTs nanocomposite under microwave irradiation [18], aluminum methanesulfonate [19], montmorillonite K-10 [20], silica-bonded S-sulfonic acid [21], acetic acid [22], KAl(SO4)2·12H2O [23], silica-bonded N- propylsulfamic acid [24], and magnetic Fe3O4 nanoparticles [25]. However, some of these methods have disadvantages such as long reaction time, expensive catalysts, and using microwave irradiation for accelerated synthesis. Therefore, the discovery of a new and efficient catalyst with high activity, short reaction time, and simple work-up for the synthesis of 2,3- dihydroquinazolin-4(1H)-ones is of prime interest.
Recently cerium (IV) salts have been used for many organic transformations such as the synthesis of carboxylic esters from alkenes [26], synthesis of acetamido phenols [27], conversion of oximes into aldehydes and ketones [28], and one-pot synthesis of 3-acylisoxazoles or polyhydroquinolines [29, 30]. The cerium (IV) salts act as Lewis acids in all of these reactions. To the best of our knowledge there are no examples of the use of Ce(SO4)2·4H2O as catalyst for the synthesis of 2,3- dihydroquinazolin-4(1H)-ones.
As part of our research program directed towards the development of expedient methods using reusable catalysts for the synthesis of organic compounds [31, 32, 33, 34, 35, 36, 37, 38], we have recently successfully applied Ce(SO4)2·4H2O to the synthesis of tetrahydrobenzo[a]xanthene-11-ones [39] and in the protection of aldehydes as 1,1-diacetates [40] under solvent-free conditions. This reusable heterogeneous solid acidic catalyst performs well and shows high catalytic activity. These results encouraged us to investigate the use of Ce(SO4)2·4H2O in the synthesis of 2,3- dihydroquinazolin-4(1H)-ones in a one-pot three- component reaction of isatoic anhydride 1, aromatic aldehydes 2, and a nitrogen source 3 (ammonium acetate, ammonium carbonate, ammonium chloride, or methylamine) under solvent-free conditions.
A general procedure for the synthesis of 2,3- dihydroquinazolin-4(1H)-ones 4a−4k is as follows. A mixture of isatoic anhydride 1 (1 mmol), an aromatic aldehyde 2 (1 mmol), a nitrogen source (ammonium acetate 1.2 mmol, ammonium carbonate 0.6 mmol, ammonium chloride 1.2 mmol, or methylamine 1.2 mmol), and Ce(SO4)2·4H2O (0.03 mmol, 3 mol% based on isatoic anhydride) was heated in an oil bath at 120 °C for 30-50 min and monitored by TLC. Upon completion of the transformation, the reaction mixture was cooled to room temperature, and hot ethanol was added. The precipitated catalyst was collected by filtration, and the filtrate was cooled to room temperature. The crude product was collected and recrystallized from ethanol to give compounds 4a−4k (Scheme 1).
The melting points were recorded using a Stuart SMP3 melting point apparatus. The IR spectra of the products were obtained with KBr disks using a Tensor 27 Bruker spectrophotometer. The 1H NMR spectra were recorded using Bruker 400 MHz and 500 MHz spectrometers.
We first examined the reaction by using isatoic anhydride (1 mmol), benzaldehyde (1 mmol), and ammonium acetate (1.2 mmol) as model substrates for the synthesis of compound 4a. We decided to investigate the efficiency of Ce(SO4)2·4H2O in the synthesis of 2,3-dihydroquinazolin-4(1H)-ones under solvent- free conditions, which offers several advantages such as being environmentally friendly, simpler work-ups, cleaner products, enhanced selectivity, reduction of by-products, and faster reactions. To find the optimum reaction conditions, different parameters were studied for the formation of compound 4a. The results are summarized in Table 1. First, the model reaction was carried out without any catalyst at high temperature under solvent-free conditions. No product was observed even after prolonged reaction time (entry 1). Varying the percentage of the catalyst showed that 3 mol% of Ce(SO4)2·4H2O is sufficient to push the reaction to completion within 45 min (entry 7). The effect of reaction temperature on the output was also investigated, and the optimum temperature was found to be 120 °C (entry 7). Next, the reaction was performed in the presence of 3 mol% of Ce(SO4)2·4H2O in different solvents including EtOH, H2O, CH2Cl2, and CH3CN. As shown, low to moderate yields were obtained in the tested solvents. Therefore, our optimized conditions are 3 mol% of Ce(SO4)2·4H2O at 120 °C under solvent-free conditions. All subsequent reactions were carried out using these conditions.
To determine the scope of the novel protocol, a range of 2,3-dihydroquinazolin-4(1H)-ones were prepared by the reaction of isatoic anhydride, aromatic aldehydes, and ammonium acetate or methylamine in the presence of Ce(SO4)2·4H2O under the optimized reaction conditions. The results are summarized in Table 2. As shown, all reactions proceed very cleanly to give the corresponding 2,3-dihydroquinazolin-4(1H)-one products 4a−4k in high yields over short reaction times, and no undesirable side-products were observed.
To compare the efficiency of ammonium salts in the synthesis of 2,3-dihydroquinazolin- 4(1H)-ones, the reactions were also carried out using ammonium carbonate and ammonium chloride under the same reaction conditions. In all cases, the corresponding 2,3- dihydroquinazolin-4(1H)-one was produced in high yield over short reaction time (Table 2).
To show the merit of this methodology, the results were compared with those using other catalysts reported for the synthesis of 2,3-dihydroquinazolin-4(1H)-ones. As shown in Table 3, our reaction conditions gave a shorter reaction time than all the other conditions (except catalysis by Cu-CNTs nanocomposite with microwave irradiation) and gave high yields of the desired products.
The recyclability of the catalyst was also investigated using the same model reaction. The catalyst was readily recovered from the reaction mixture using the procedure outlined in the experimental section. The separated catalyst was washed with hot ethanol and subsequently dried at 60 °C under vacuum for 2 h before being reused in a similar reaction. The recovered yields of the catalyst were 99%, 98%, 98%, 99%, and 98% in runs 1 to 5, respectively. The recycled catalyst in each run (1 to 4) was just used for the next run. The results show that the catalyst can be used at least five times without substantial reduction in its catalytic activity (Fig. 1). Furthermore, retention of the structure of the catalyst was confirmed by comparing the FT-IR spectra of the recovered catalyst after the fifth run with that of the fresh catalyst for the model reaction (Fig. 2). As shown, these spectra are almost identical.
We have demonstrated the efficiency of Ce(SO4)2·4H2O as a novel inorganic solid acidic catalyst for the preparation of 2,3-dihydroquinazolin-4(1H)-ones via the one-pot three- component reaction of isatoic anhydride, aromatic aldehydes, and a nitrogen source (ammonium acetate, ammonium carbonate, ammonium chloride, or methylamine) under solvent-free conditions. A variety of aromatic aldehydes participated well in the reaction affording the expected products in high yields with short reaction times and simple work-up. Furthermore, the catalyst could be easily recycled and reused at least five times without significant reduction in its catalytic activity. The procedure is also advantageous because it is a solvent-free reaction and therefore operates under environmentally friendly conditions.