Synlett 2011(16): 2363-2368  
DOI: 10.1055/s-0030-1261227
LETTER
© Georg Thieme Verlag Stuttgart ˙ New York

Ligand-Promoted, Copper Nanoparticles Catalyzed Oxidation of Propargylic Alcohols with TBHP or Air as Oxidant

Chengyan Han, Min Yu, Weijiang Sun, Xiaoquan Yao*
Department of Applied Chemistry, School of Material Science and Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, P. R. of China
Fax: +86(25)52112626; e-Mail: yaoxq@nuaa.edu.cn;
Further Information

Publication History

Received 30 May 2011
Publication Date:
08 September 2011 (online)

Abstract

A highly efficient oxidation of propargylic alcohols to ynones was catalyzed by copper nanoparticles (Cu Nps) with TBHP as an oxidant at room temperature. With bipyridine as the ligand, the reaction was accelerated significantly and led in good to excellent yields to a variety of propargylic alcohols. Furthermore, with Cu Nps as the catalyst, molecular oxygen in air could be utilized as oxidant effectively in the presence of bpy ligand.

    References and Notes

  • 1a Kundu NG. Das B. Spears CP. Majumdar A. Kang SI. J. Med. Chem.  1990,  33:  1975 
  • 1b Kundu NG. Mahanty JS. Spears CP. Bioorg. Med. Chem. Lett.  1996,  6:  1497 
  • 1c Penning TM. Covey DF. Talalay P. Biochem. J.  1981,  193:  217 
  • 1d Midland MM. Nguyen NH. J. Org. Chem.  1981,  46:  4107 
  • For some recent examples, see:
  • 2a Kel’in AV. Gevorgyan V. J. Org. Chem.  2002,  67:  95 
  • 2b Hoven BGV. Ali BE. Alper H. J. Org. Chem.  2000,  65:  4131 
  • 2c Grotjahn DB. Van S. Combs D. Lev DA. Schneider C. Rideout M. Meyer C. Hernandez G. Mejorado L. J. Org. Chem.  2002,  67:  9200 
  • 2d Karpov AS. Müller TJJ. Org. Lett.  2003,  5:  3451 
  • 2e Savarin CG. Murry JA. Dormer PG. Org. Lett.  2002,  4:  2071 
  • 2f Xing Y. O’Doherty GA. Org. Lett.  2009,  11:  1107 
  • 2g Kim N.-J. Moon H. Park T. Yun H. Jung J.-W. Chang D.-J. Kim D.-D. Suh Y.-G. J. Org. Chem.  2010,  75:  7458 
  • 2h Trygstad TM. Pang Y. Forsyth CJ. J. Org. Chem.  2009,  74:  910 
  • 2i Rooke DA. Ferreira EM. J. Am. Chem. Soc.  2010,  132:  11926 
  • Palladium-catalyzed cross-coupling of terminal alkynes and acyl chloride provides an effective method to synthesize ynones. For some selected examples, see:
  • 3a Tohda Y. Sonogashira K. Hagihara N. Synthesis  1977,  777 
  • 3b Chen L. Li C.-J. Org. Lett.  2004,  6:  3151 
  • 3c Alonso DA. Nájera C. Pacheco MC. J. Org. Chem.  2004,  69:  1615 
  • 3d Palimkr SS. Kumar PH. Jogdand NR. Daniel T. Lahoti RJ. Srinivasan KV. Tetrahedron Lett.  2006,  47:  5527 
  • 4 Shen Y.-L. Wu W.-T. Liu Q. Wu G.-L. Wu L.-M. J. Chem. Res.  2006,  8:  545 
  • 5 Novokshonova IA. Novokshonova VV. Medvedeva AS. Synthesis  2008,  3797 
  • 6 For a recent example, see: Bao WL. Wang Q. Zheng YF. Chin. Chem. Lett.  2004,  15:  1029 
  • 7 Schmieder-Van De Vondervoort L. Bouttemy S. Padron JM. Le Bras J. Muzart J. Alsters PL. Synlett.  2002,  243 
  • 8 Blay G. Cardona L. Fernández I. Pedro JR. Synthesis  2007,  3329 
  • 9a Maeda Y. Kakiuchi N. Matsumura S. Nishimura T. Uemura S. Tetrahedron Lett.  2001,  42:  8877 
  • 9b Maeda Y. Kakiuchi N. Matsumura S. Nishimura T. Kawamura T. Uemura S. J. Org. Chem.  2002,  67:  6718 
  • For recent reviews, see:
  • 10a Astruc D. Lu F. Aranzaes JM. Angew. Chem. Int. Ed.  2005,  44:  7852 
  • 10b Corma A. Garcia H. Chem. Soc. Rev.  2008,  37:  2096 
  • 10c Gu Y. Li G. Adv. Synth. Catal.  2009,  351:  817 
  • 11a Mitsudome T. Mikami Y. Ebata K. Mizugaki T. Jitsukawa K. Kaneda K. Chem. Commun.  2008,  4804 
  • 11b Pande S. Saha A. Jana S. Sarkar S. Basu M. Pradhan M. Sinha AK. Saha S. Pal A. Pal T. Org. Lett.  2008,  10:  5179 
  • For a phosphine ligand stabilized Au(0) nanoparticle catalyzed diboration, see:
  • 12a Ramirez J. Sanau M. Fernandez E. Angew. Chem. Int. Ed.  2008,  47:  5194 
  • Very recently, we reported a ligand-promoted, silver nano-particals catalyzed reaction. See:
  • 12b Yu M. Lin M. Han C. Zhu L. Li C.-J. Yao X. Tetrahedron Lett.  2010,  51:  6722 
  • 17 For a recent review about the aerobic oxidation of alcohols, see: Schultz MJ. Sigman MS. Tetrahedron  2006,  62:  8227 
  • 19 Yamaguchi K. Mizuno N. Chem. Eur. J.  2003,  9:  4353 
  • 21 For a similar model, see: Chaudhuri P. Hess M. Müller HK. Bill E. Weyhermüller T. Wieghardt K. J. Am. Chem. Soc.  1999,  121:  9599 
13

The diameter of Cu Nps is ca. 20-30 nm. The detailed procedure about the synthesis of Cu Nps is described in the Supporting Information.

14

The in situ formed Cu2O on the surface of Cu Nps was proposed as the catalytic active species in the reaction. However, when pure Cu2O Nps were utilized as catalyst, similar catalytic activity but lower selectivity was observed.

15

Typical Procedure for the Cu Nps Catalyzed Oxidation of Propargylic Alcohols with TBHP as Oxidant (Entry 1, Table 2): 1,3-Diphenyl-2-propyn-1-ol (1a, 0.2 mmol), Cu NPs (1.3 mg, 10 mol%), bipyridine (3.2 mg, 10 mol%), TBHP (55 µL, 2.0 equiv, 70% in H2O), and CH2Cl2 (1.5 mL) were added into a 20-mL Schlenk tube under air. The mixture was stirred at r.t. for 2 h. Then, the reaction was stopped, and the reaction mixture was purified by flash column chromatography on silica gel (hexanes-EtOAc, 30:1). Compound 2a was obtained in >98% yield.

16

From crude ¹H NMR and TLC, there are no overoxidized by-products observed.

18

Typical Procedure for the Cu Nps Catalyzed Aerobic Oxidation of Propargylic Alcohols (Entry 1, Table 5): 1,3-Diphenyl-2-propyn-1-ol (1a, 0.2 mmol), Cu Nps (1.3 mg, 10 mol%), bipyridine (3.2 mg, 10 mol%) were mixed with toluene (1.5 mL) in a 20-mL Schlenk tube under air. The mixture was stirred at 80 ˚C for 8 h. Then, the reaction was stopped, and the reaction mixture was purified by flash column chromatography on silica gel (hexanes-EtOAc, 30:1). Compound 2a was obtained in 80% yield.

20

This result also indicated the possibility of recycling the catalyst. In fact, the Cu Nps catalyst could be separated and recovered conveniently by centrifugation, and then, be reused directly without additional bpy ligand. With 1d as the substrate, ca. 80% yield was still obtained in the third reaction with prolonged reaction time. To improve recycle capability, the effects of particle size and particle support are currently under investigations.