References
<A NAME="RG03004ST-1A">1a</A>
Epsztein R.
The Formation and Transformations of Allenic and α-Acetylenic Carbanions, In Comprehensive
Carbanions Chemistry
Vol. B:
Buncel E.
Durst T.
Elsevier;
Amsterdam:
1984.
p.107-175
<A NAME="RG03004ST-1B">1b</A>
Yamamoto H.
Propargyl and Allenyl Organometallics, In Comprehensive Organic Synthesis
Vol. 2:
Trost BM.
Fleming I.
Pergamon Press;
London:
1991.
p.81-98
<A NAME="RG03004ST-2">2</A>
Ishiguro M.
Ikeda N.
Yamamoto H.
J. Org. Chem.
1982,
47:
2225
<A NAME="RG03004ST-3A">3a</A>
See ref.
[2]
<A NAME="RG03004ST-3B">3b</A>
Sweifel G.
Hahn G.
J. Org. Chem.
1984,
49:
4567
<A NAME="RG03004ST-3C">3c</A>
Normant J.
Poisson J.
Org Lett.
2001,
3:
1889
<A NAME="RG03004ST-3D">3d</A>
Chemla F.
Ferreira F.
Hebbe V.
Stercklen E.
Eur. J. Org. Chem.
2002,
1385
<A NAME="RG03004ST-3E">3e</A>
Scheidt K.
Banniste T.
Tasaka A.
Wendt M.
Savall B.
Fegley G.
J. Am. Chem. Soc.
2001,
124:
6981
<A NAME="RG03004ST-3F">3f</A>
Marshall J.
Yu R.
Perkins J.
J. Org. Chem.
1995,
60:
5550
<A NAME="RG03004ST-3G">3g</A>
Marshall J.
Adams N.
J. Org. Chem.
1997,
62:
8976
<A NAME="RG03004ST-3H">3h</A>
Marshall J.
Grant C.
J. Org. Chem.
1999,
64:
696
<A NAME="RG03004ST-4A">4a</A>
Marshall J.
Wang X.
J. Org. Chem.
1990,
55:
6246
<A NAME="RG03004ST-4B">4b</A>
Fleming I.
Wareson D.
J. Chem. Soc., Perkin Trans. 1
1984,
1809
<A NAME="RG03004ST-4C">4c</A>
Marshall J.
Maxson K.
J. Org. Chem.
2000,
65:
630
<A NAME="RG03004ST-5">5</A>
Bernaud F.
Vrancken E.
Mangeney P.
Org. Lett.
2003,
5:
2567
For recent reports on conjugate addition of triorganozincates see:
<A NAME="RG03004ST-6A">6a</A>
Ryu M.
Ikebe N.
Sonoda Yamato S.
Yamamura G.
Komatsu M.
Tetrahedron Lett.
2000,
41:
5689
<A NAME="RG03004ST-6B">6b</A>
Musser CA.
Richey HG.
J. Org. Chem.
2000,
65:
7750
<A NAME="RG03004ST-7">7</A>
Mori S.
Hirai A.
Nakamura M.
Nakamura E.
Tetrahedron
2000,
56:
2805
<A NAME="RG03004ST-8">8</A>
See ref.
[6b]
<A NAME="RG03004ST-9">9</A>
Lautens M.
Renaud JL.
Sheldon H.
J. Am. Chem. Soc.
2000,
122:
1804
<A NAME="RG03004ST-10">10</A>
Linton DJ.
Schooler P.
Wheatley AEH.
Coord. Chem. Rev.
2001,
223:
53
<A NAME="RG03004ST-11">11</A> A none selective attempt was performed with a Aznt-Bu2MeLi2 reagent prepared according:
Uchiyama M.
Kameda M.
Mishima O.
Yokoama N.
Koike M.
Kondo Y.
Sakamoto T.
J. Am. Chem. Soc.
1998,
120:
4934
<A NAME="RG03004ST-12">12</A> For a recent preparation of syn-β-hydroxypropargyl-oxazolidinones from optically active Ν-propargyl-oxazolidinones see:
Ranslow PBD.
Hegedus LS.
de Los Rios C.
J. Org. Chem.
2004,
69:
105
<A NAME="RG03004ST-13">13</A>
Analytical data for syn-aminoalcohols: Compound 2a: 1H NMR (400 MHz, CDCl3): δ = 7.32 (m, 10 H), 3.88 (d, J = 13.4 Hz, 2 H), 3.78 (br s, 1 H), 3.69 (d, J = 9.0 Hz, 1 H), 3.54 (dd, J = 4.0 Hz, J = 9.0 Hz, 1 H), 3.41 (d, J = 13.4 Hz, 2 H), 1.87 (m, 1 H), 0.65 (d, J = 6.8 Hz, 3 H), 1.02 (d, J = 6.8 Hz, 3 H), 0.26 (s, 9 H). 13C NMR (200 MHz, CDCl3): δ = 138.7, 129.5, 128.8, 128.6, 100.7, 92.6, 73.5, 56.2, 55.3, 30.2, 20.8, 15.1,
0.6. Elemental analysis: C24H33NOSi requires C, 76.37; H, 8.28; N, 3.71%. Found: C, 76.22; H, 8.41; N, 3.69. Compound
2b: 1H NMR (400 MHz, CDCl3): δ = 7.33 (m, 10 H), 3.92 (br d, J = 14.0 Hz, 2 H), 3.72 (d, J = 7.0 Hz, 1 H), 3.40 (m, 3 H), 2.50 (br s, 1 H), 0.86 (s, 9 H), 0.27 (s, 9 H). 13C NMR (200 MHz, CDCl3): δ = 137.9, 129.1, 128.4, 127.3, 101.7, 92.4, 75.8, 54.5, 34.5, 26.1, 0.0. Elemental
analysis: C25H35NOSi requires C, 76.28; H, 8.96; N, 3.56%. Found: C, 76.20; H, 9.09; N, 3.54. Compound
2c: 1H NMR (400 MHz, CDCl3): δ = 7.30 (m, 15 H), 4.59 (d, J = 8.0 Hz, 1 H), 4.01 (d, J = 16.0 Hz, 2 H), 3.50 (d, J = 8.0 Hz, 1 H), 3.37 (d, J = 16.0 Hz, 2 H), 0.20 (s, 9 H). 13C NMR (200 MHz, CDCl3): δ = 140.4, 138.0, 129.2, 127.8, 127.5, 127.1, 99.4, 92.1, 72.4, 60.8, 55.0, 0.0.
Elemental analysis: C27H31NOSi requires C, 78.40; H, 7.55; N, 3.39%. Found: C, 78.82; H, 7.72; N, 3.63. Compound
2d: 1H NMR (400 MHz, CDCl3): δ = 7.39 (m, 10 H), 3.87 (d, J = 13.0 Hz, 2 H), 3.61 (td, J = 8.0 Hz, J = 4.0 Hz, 1 H), 3.41 (d, J = 13.0 Hz, 2 H), 3.2 (d, J = 8.0 Hz, 1 H), 1.75 (m, 1 H), 1.55 (m, 1 H), 1.30 (m, 6 H), 0.94 (m, 6 H), 0.20
(s, 9 H). 13C NMR (200 MHz, CDCl3): δ = 138.1, 128.9, 128.3, 127.2, 100.1, 92.1, 69.3, 58.6, 55.8, 54.8, 33.6, 31.6,
25.2, 22.3, 13.8, 0.0. Elemental analysis C26H36NOSi requires C, 76.60; H, 9.15; N, 3.44%. Found: C, 76.54; H, 9.17; N, 3.47. Compound
2e: 1H NMR (400 MHz, CDCl3,): δ = 7.32 (m, 10 H), 3.92 (d, J = 13.4 Hz, 2 H), 3.79 (br s, 1 H), 3.55 (bd, 1 H), 3.45 (d, J = 13.4 Hz, 2 H), 1.80-0.87 (m, 11 H), 0.29 (s, 9 H). 13C NMR (200 MHz, CDCl3): δ = 138.3, 129.1, 128.5, 127.4, 100.5, 92.3, 73.0, 55.4, 54.9, 40.0, 30.7, 26.8,
26.5, 26.3, 25.3, 0.3. Elemental analysis: C27H40NOSi requires C, 7.27; H, 8.89; N, 3.34%. Found: C, 77.13; H, 8.84; N, 3.49. Compound
2f: 1H NMR (400 MHz, CDCl3): δ = 7.31 (m, 10 H), 5.78 (dq, J = 6.6 Hz, 1 H), 5.32 (ddd, J = 7.3 Hz, J = 16.0 Hz, J = 1.6 Hz, 1 H), 4.01 (dd, J = 7.0 Hz, J = 9.7 Hz, 1 H), 3.88 (d, J = 13.4 Hz, 2 H), 3.43 (d, J = 13.4 Hz, 2 H), 3.23 (d, J = 9.0 Hz, 1 H), 1.70 (dd, J = 6.6 Hz, J = 1.2 Hz, 3 H), 0.24 (s, 9 H). 13C NMR (200 MHz, CDCl3): δ = 138.2, 129.6, 129.4, 129.2, 128.6, 127.4, 99.9, 92.6, 71.1, 58.8, 55.0, 17.8,
0.2. Elemental analysis: C24H32NOSi requires C, 76.22; H, 8.28; N, 3.71%. Found: C, 76.26; H, 8.33; N, 3.74.