Alkynes are of interest to material, pharmacentical and synthetic chemists since this functional group is one of the main building blocks of organic and material chemistry [1]. In addition, alkynes are also versatile building blocks in the synthesis of natural products, and pharmaceutical and agricultural chemicals [2, 3, 4]. Therefore, the practical and green synthesis of alkynes from simple starting materials is important for the fine chemical industries. The Sonogashira reaction is a powerful tool for the synthesis of these compounds [5, 6, 7, 8]. Since its invention, much attention has been focused on the development of its efficient and selective palladium catalytic systems [9, 10, 11]. Although much progress has been achieved for the Sonogashira reaction, there are still many drawbacks in the current procedures, such as harsh reaction conditions, use of ecologically suspect organic solvents, long reaction time, and the use of transition metal catalysts. The development of new, efficient, practical and reusable catalytic systems and using water instead of an organic solvent are attractive for the Sonogashira reaction. Recently, some supported heterogeneous palladium catalytic systems were successfully achieved for the Sonogashira reaction in neat water [12, 13]. Another attractive approach is to use a water soluble catalyst and water as the sole solvent, with the catalyst easily recovered by simple extraction and recycled [14, 15, 16].
Recently, Plenio’s group [17, 18], using sulfonated water-soluble ligands and complexes as catalyst were successful with some cross-coupling reactions with water as the solvent. Inspired by these results and in connection with our interests in the development of a new Pd-NHC (NHC: N-Heterocyclic Carbene) catalytic system for the cross coupling [16, 19, 20, 21, 22, 23, 24], we here describe a water soluble phosphine-free Pd-NHC/H2O catalytic system that is efficient for the Sonogashira coupling reaction of alkynes and aryl iodides (Scheme 1). It gave a series of diarylalkynes in one-pot synthesis under mild conditions. Notably, the isolation of the products was readily achieved by extraction with diethyl ether, and the Pd-NHC can be easily recycled and was reused four times with only a slight loss of catalytic activity.
Synthesis and characterization of sIPr-Pd-Allyl-Cl. The sulfonated 2,6-diisopropylaniline (b) was synthesized in multi-steps from the known 2,6-diisopropylaniline (a) (Scheme 2). The conversion of b to sulfonated imine (c) by condensation was achieved in good yield using a slight of HCOOH as catalyst. In the next step, the desired 2,6-diisopropyl-sulfonated NHC (d) was prepared utilizing the route reported previously [17]. The reaction of the sulfonated NHC (d) with [Pd(allyl)Cl]2 in the presence of the base resulted in the formation of the corresponding sIPr-Pd-Allyl-Cl complex (e) (75% yield) as reported in the related literature procedure [18].
1H NMR (400 MHz, DMSO-d6): δ = 1.13-1.15 (m, 12H), 1.23-1.25 (m, 12H), 2.87-2.90 (m, 4H), 2.91-3.22 (m, 5H), 3.94-4.01 (m, 1H), 7.43 (s, 4H), 7.65 (s, 2H).
13C NMR (100 MHz, DMSO-d6): δ = 23.7, 24.8, 27.5, 29.2, 39.9, 40.3, 49.2, 55.8, 70.4, 113.9, 120.6, 124.7, 126.8, 129.9, 132.2, 141.7, 144.3, 145.0, 148.9, 182.7.
HRMS (ESI): calcd. for C30H39ClN2Na2O6PdS2 [M+Na]+ 797.0666; found 797.1400.
As an initial attempt, the reaction between 1a and 2a in water was chosen as the model reaction for the optimization of the Pd-catalyzed Sonogashira reaction conditions using sIPr-Pd-Allyl-Cl as a water soluble phosphine-free palladium-NHC catalyst (Table 1). 3aa was obtained in 34% isolated yield in the presence of sIPr-Pd-Allyl-Cl with K2CO3 in water at 60 °C for 6 hours (Table 1, entry 1). This result indicated that our cross coupling reaction between 1a and 2a was indeed possible. We next examined the optimal bases. The best result was obtained with the participation of Et3N. Other inorganic bases such as K3PO4, NaHCO3, NaOH, and organic bases, such as NaOMe, KOtBu, NaOAc and DBU in this Sonogashira reaction gave slightly lower yields under the same reaction conditions (Table 1, entries 2-8). Meanwhile, the reaction in other solvents, polar aprotic solvents (DMF), worked for the synthesis of 3aa, producing the coupling product in 31% yield (Table 1, entry 10). No appreciable increase in yield was obtained with other solvents, such as 1,4-dioxane, THF, Et2O, CH3CN and EtOH (Table 1, entries 11-15). Finally, the control reaction in the absence of sIPr-Pd-Allyl-Cl and base failed to give the desired product in high yield, indicating that the palladium catalyst and base were crucial to this Sonogashira coupling reaction. More important, this transformation is very practical as phosphine is not required and the water soluble NHC-Pd catalyst loading was only 0.5 mol% with water as solvent.
With these results in hand, we next investigated the substrate scope of this Sonogashira reaction. As shown in Table 2, for alkynes, a series of functional groups, such as methyl, n-butyl, methoxy, n-pentoxyl cyano and amino contained in the phenyl-ring were compatible with the present Pd-NHC/H2O catalytic system. The desired products were excellent in isolated yields (3aa-3ga), which indicated that the present reaction has good functional group tolerance. In general, electron-donating and electron-withdrawing groups contained in the phenyl ring were tolerated well, giving the corresponding products in 85%-94%. Furthermore, when 4- ethynylbenzonitrile was subjected to this procedure, 85% yield was isolated. It is worth noting that the tolerance of the cyano group on the aromatic ring in this protocol offers an opportunity for subsequent transformations, which facilitates the expedient synthesis of diarylalkynes. In addition, the challenging 3- ethynylaniline 1g successfully underwent this reaction to provide the desired product 3ga in 88% yield.
As summarized in Table 3, the Sonogashira reaction catalyzed by the complex sIPr-Pd-allyl-Cl was found to be general with aryl iodides bearing a variety of substituents. Aryl iodides containing various electron-rich and electron-deficient functional groups reacted smoothly to give the corresponding products in high yields (3aa>-3ae). Typical functional groups, such as methyl, methoxyl and halide groups, were compatible with the reaction conditions. Notably, the free phenolic hydroxyl group, 4-iodophenol, was also suitable for this reaction, affording the corresponding product 3ae in good yield under the standard conditions.
To examine the recyclability of our water soluble Pd-NHC catalyst with a lower catalyst loading, the reuse investigation was performed with the model Sonogashira reaction of 1a with 2a and sIPr-Pd-Allyl-Cl for 6 h at 60 °C. After the completion of reaction, ether was added to the reaction tube, and the upper organic phase containing the product was easily separated by simple liquid-liquid extraction to produce 3aa. The residual aqueous catalyst phase remained because of the obvious solubility difference of the SO3Na salt functionalized sIPr-Pd-Allyl-Cl in ether and water and was reused for the next run. It is shown in Fig. 1 that our water soluble catalyst can be used at least four times with the fourth run giving 83% isolated yield of 3aa.
A reaction mechanism for the Sonogashira reaction is shown in Scheme 3. Initial oxidative addition of aryl iodide to Pd(0) provides arylpalladium complex I, which was formed in situ from the reduction of the catalyst precursor of Pd-NHC [25, 26]. Because of a tightly bound NHC as the resting ligand, the active species was stabilized during catalysis. Subsequent coordination of a terminal alkyne to the complex I and alkyne insertion into the carbon-palladium bond generated complex III in the presence of a base. Finally, reductive elimination from complex III gave product 3 and the active Pd(0) for the next catalytic cycle.
We disclosed an efficient and facile water soluble phosphine-free Pd-NHC catalytic system for the direct formation of a range of diarylalkynes from commercially available alkynes and aryl iodides using the Sonogashira reaction under mild conditions. A water soluble Pd-NHC complex was prepared and its catalytic activity in the Sonogashira reaction was examined. The Pd-NHC catalyst can be easily recycled and it was reused four times with only a slight loss of catalytic activity. Further investigation on the application of the water soluble Pd-NHC catalytic system in other carbonylation reactions are currently underway in our laboratory.