| Literature DB >> 34762333 |
Andrea Francesca Quivelli1, Manuela Marinò1, Paola Vitale1, Joaquín García-Álvarez2, Filippo M Perna1, Vito Capriati1.
Abstract
An efficient and novel protocol was developed for a Cu-catalyzed Ullmann-type aryl alkyl ether synthesis by reacting various (hetero)aryl halides (Cl, Br, I) with alcohols as active components of environmentally benign choline chloride-based eutectic mixtures. Under optimized conditions, the reaction proceeded under mild conditions (80 °C) in air, in the absence of additional ligands, with a catalyst [CuI or CuII species] loading up to 5 mol% and K2 CO3 as the base, providing the desired aryloxy derivatives in up to 98 % yield. The potential application of the methodology was demonstrated in the valorization of cheap, easily available, and naturally occurring polyols (e. g., glycerol) for the synthesis of some pharmacologically active aryloxypropanediols (Guaiphenesin, Mephenesin, and Chlorphenesin) on a 2 g scale in 70-96 % yield. Catalyst, base, and deep eutectic solvent could easily and successfully be recycled up to seven times with an E-factor as low as 5.76.Entities:
Keywords: copper; cross-coupling; deep eutectic solvents; ethers; sustainable chemistry
Mesh:
Substances:
Year: 2021 PMID: 34762333 PMCID: PMC9299726 DOI: 10.1002/cssc.202102211
Source DB: PubMed Journal: ChemSusChem ISSN: 1864-5631 Impact factor: 9.140
Scheme 1(a) Ligand‐based CuI‐catalyzed C−O coupling reactions of aryl halides with alcohols in toluene under Ar. (b) Ligand‐free CuII‐catalyzed C−O coupling reactions of aryl halides with aliphatic diols under Ar. (c) Unprecedented ligand‐free CuI‐ or CuII‐catalyzed C−O coupling reactions between aryl halides and alcohol‐based DESs in air.
Optimization of Ullmann‐type C−O bond formation between halobenzene 1 and Gly of the corresponding eutectic mixture to give adducts 2 a and 3 a.[a]
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Entry |
Solvent |
Catalyst (mol %) |
Base (equiv.) |
|
|
|
|
1 |
ChCl/Gly[d] |
CuI (10) |
K2CO3 (2) |
60 |
–[e] |
– |
|
2 |
ChCl/Gly[d] |
CuI (10) |
K2CO3 (2) |
80 |
98 |
77 : 23 |
|
3 |
ChCl/Gly[d] |
CuI (5) |
K2CO3 (1) |
80 |
98 |
80 : 20 |
|
4 |
ChCl/Gly[f] |
CuI (5) |
K2CO3 (1) |
80 |
98 |
80 : 20 |
|
5 |
ChCl/Gly[g] |
CuI (5) |
K2CO3 (1) |
100 |
30[e] |
80 : 20 |
|
6 |
ChCl/Gly[d] |
CuI (5) |
– |
80 |
NR[h] |
– |
|
7 |
ChCl/Gly[d] |
– |
K2CO3 (1) |
100 |
NR[h] |
– |
|
8 |
ChCl/Gly[d] |
CuI (5) |
Cs2CO3 (1) |
80 |
98 |
78 : 22 |
|
9 |
ChCl/Gly[d] |
CuI (5) |
|
80 |
98 |
77 : 23 |
|
10 |
ChCl/Gly[d] |
CuO (5) |
K2CO3 (1) |
80 |
90 |
78 : 22 |
|
11 |
ChCl/Gly[d] |
CuCl2 (5) |
K2CO3 (1) |
80 |
98 |
80 : 20 |
|
12 |
ChCl/Gly[d] |
Pd(OAc)2 (5) |
K2CO3 (1) |
100 |
–[i] |
– |
|
13 |
Gly |
CuI (5) |
K2CO3 (1) |
100 |
75 |
76 : 24 |
|
14 |
ChCl/Gly[j] |
CuI (5) |
K2CO3 (1) |
80 |
96 |
80 : 20 |
|
15 |
ChCl/Gly[k] |
CuI (5) |
K2CO3 (1) |
80 |
98 |
80 : 20 |
|
16 |
Pro/Gly |
CuI (5) |
K2CO3 (1) |
100 |
– |
– |
|
17 |
betaine/Gly |
CuI (5) |
K2CO3 (1) |
100 |
20[l] |
78 : 22 |
[a] Reaction conditions: 1.0 g DES or 1 mL Gly per 1.0 mmol of 1 a–c; DES: ChCl/Gly (1 : 2, 1 : 1, or 1 : 3 mol mol−1); l‐proline (Pro)/Gly (2 : 5 mol mol−1); betaine/Gly (1 : 2 mol mol−1). [b] The yields reported are for products isolated and purified by column chromatography. [c] Calculated by 1H NMR spectroscopy of the crude reaction mixture using an internal standard technique (NMR internal standard: CH2Br2). [d] X=Br. [e] Reaction time: 24 h. [f] X=I. [g] X=Cl. [h] NR=no reaction. [i] Biphenyl was the only adduct isolated (98 % yield). [j] 1 : 1 mol mol−1. [k] 1 : 3 mol mol−1. [l] After 24 h: 55 % yield.
Scheme 2Possible catalytic cycle for the Ullmann C−O coupling reaction promoted by ChCl/Gly.
Scheme 3Synthesis of aryl alkyl ethers 2 via copper‐catalyzed cross‐coupling reactions of (hetero)aryl halides 1 (1 mmol) with alcohols of ChCl‐based eutectic mixtures (1 g). The yields reported are for products isolated and purified by column chromatography. Products 2 b–d and 2 o–q from DES ChCl/Gly (1 : 2 mol mol−1). Products 2 e–i from DES ChCl/ethylene glycol (1 : 2 mol mol−1). Products 2 j–l, from DES ChCl/1,3‐propanediol (1 : 2 mol mol−1). Products 2 m,n from DES ChCl/L‐lactic acid (1 : 2 mol mol−1). In the case of products 2 b,c,j,m–q, the same yield was obtained when using CuCl2 as the catalyst.
Figure 1Recycling of CuI, DES, and base in the coupling reaction between 1‐iodo‐2‐methoxybenzene (1 j) and Gly from ChCl/Gly in the synthesis of Guaiphenesin (2 o). Yields were determined by 1H NMR spectroscopy using CH2Br2 as the internal standard.