Chinese Journal of Organic Chemistry ›› 2023, Vol. 43 ›› Issue (4): 1472-1482.DOI: 10.6023/cjoc202209014 Previous Articles Next Articles
ARTICLES
收稿日期:
2022-09-12
修回日期:
2022-11-14
发布日期:
2022-12-07
通讯作者:
杨高升
基金资助:
Wenlong Chen, Huimin Li, Pengfei Yang, Dongcheng Zheng, Gaosheng Yang()
Received:
2022-09-12
Revised:
2022-11-14
Published:
2022-12-07
Contact:
Gaosheng Yang
Supported by:
Share
Wenlong Chen, Huimin Li, Pengfei Yang, Dongcheng Zheng, Gaosheng Yang. Reaction of 2-Aroylmethylenemalonates with Corey Ylide[J]. Chinese Journal of Organic Chemistry, 2023, 43(4): 1472-1482.
Entry | OS+Me3I-/equiv. | Base/equiv. | Solvent | T1/T2/℃ | Time/h | Product/(yieldb/%) | Selectivityc of 2a∶3a∶4a |
---|---|---|---|---|---|---|---|
1 | 1.2 | NaH/2.5 | DMF | 0/0~25 | 10 min | 2a/60 | 63∶37∶0 |
2 | 1.0 | NaH/2.5 | DMF | 0/0 | 25 min | 2a/73 | 80∶20∶0 |
3 | 1.0 | NaH/2.5 | DMF | 0/-23 | 1.0 | 2a/84 | 91∶9∶0 |
4 | 1.0 | NaH/2.5 | DMF | 0/-23 | 4.0 | 2a/25 | 29∶10∶61 |
5 | 2.0 | NaH/2.0 | DMF | 0/0~25 | 1.0 (0 ℃)+19.0 | 3a/45 | — |
6 | 2.2 | NaH/3.5 | DMF | 0/-23~0 | 1.0 (-23 ℃)+8.0 | 3a/87 | 9∶91∶0 |
7 | 2.2 | NaH/5.0 | DMF | 0/-23~0 | 1.0 (-23 ℃)+6.0 | 3a/93 | 0∶100∶0 |
8 | 2.2 | NaH/5.0 | DMF | 0/0 | 6.0 | 3a/85 | 0∶93∶7 |
9 | 2.2 | NaH/5.0 | CH2Cl2 | 0/-23~0 | 1.0 (-23 ℃)+9.0 | 4a/13 | 0∶0∶100 |
10 | 1.0 | K2CO3/1.1 | DMF | 25/25 | 22.0 | 4a/80 | 0∶0∶100 |
11 | 1.1 | K2CO3/2.5 | DMF | 25/0 | 4.0 | 4a/93 | 0∶0∶100 |
Entry | OS+Me3I-/equiv. | Base/equiv. | Solvent | T1/T2/℃ | Time/h | Product/(yieldb/%) | Selectivityc of 2a∶3a∶4a |
---|---|---|---|---|---|---|---|
1 | 1.2 | NaH/2.5 | DMF | 0/0~25 | 10 min | 2a/60 | 63∶37∶0 |
2 | 1.0 | NaH/2.5 | DMF | 0/0 | 25 min | 2a/73 | 80∶20∶0 |
3 | 1.0 | NaH/2.5 | DMF | 0/-23 | 1.0 | 2a/84 | 91∶9∶0 |
4 | 1.0 | NaH/2.5 | DMF | 0/-23 | 4.0 | 2a/25 | 29∶10∶61 |
5 | 2.0 | NaH/2.0 | DMF | 0/0~25 | 1.0 (0 ℃)+19.0 | 3a/45 | — |
6 | 2.2 | NaH/3.5 | DMF | 0/-23~0 | 1.0 (-23 ℃)+8.0 | 3a/87 | 9∶91∶0 |
7 | 2.2 | NaH/5.0 | DMF | 0/-23~0 | 1.0 (-23 ℃)+6.0 | 3a/93 | 0∶100∶0 |
8 | 2.2 | NaH/5.0 | DMF | 0/0 | 6.0 | 3a/85 | 0∶93∶7 |
9 | 2.2 | NaH/5.0 | CH2Cl2 | 0/-23~0 | 1.0 (-23 ℃)+9.0 | 4a/13 | 0∶0∶100 |
10 | 1.0 | K2CO3/1.1 | DMF | 25/25 | 22.0 | 4a/80 | 0∶0∶100 |
11 | 1.1 | K2CO3/2.5 | DMF | 25/0 | 4.0 | 4a/93 | 0∶0∶100 |
Entry | 1 | Ar | R | Time/h | Product | Yieldb/% |
---|---|---|---|---|---|---|
1 | 1a | Ph | Et | 1.0 | 2a | 84 |
2 | 1b | 4-MeC6H4 | Et | 2.5 | 2b | 79 |
3 | 1c | 4-MeOC6H4 | Et | 2.5 | 2c | 84 |
4 | 1d | 3-MeOC6H4 | Et | 2.5 | 2d | 86 |
5 | 1e | 2-MeOC6H4 | Et | 2.0 | 2e | 72 |
6c | 1f | 4-BrC6H4 | Et | 27 min | 2f | 80 |
7c | 1g | 4-ClC6H4 | Et | 20 min | 2g | 81 |
8c | 1h | 4-FC6H4 | Et | 25 min | 2h | 60 |
9c | 1i | 4-NO2C6H4 | Et | 15 min | 2i | 61 |
10c | 1j | 3-NO2C6H4 | Et | 15 min | 2j | 60 |
11c | 1k | 2-NO2C6H4 | Et | 15 min | 2k | 64 |
12c | 1l | 4-CF3C6H4 | Et | 17 min | 2l | 74 |
13 | 1m | Ph | Me | 1.0 | 2m | 76 |
14c | 1p | Me | Me | 5 min | 2p | 70 |
Entry | 1 | Ar | R | Time/h | Product | Yieldb/% |
---|---|---|---|---|---|---|
1 | 1a | Ph | Et | 1.0 | 2a | 84 |
2 | 1b | 4-MeC6H4 | Et | 2.5 | 2b | 79 |
3 | 1c | 4-MeOC6H4 | Et | 2.5 | 2c | 84 |
4 | 1d | 3-MeOC6H4 | Et | 2.5 | 2d | 86 |
5 | 1e | 2-MeOC6H4 | Et | 2.0 | 2e | 72 |
6c | 1f | 4-BrC6H4 | Et | 27 min | 2f | 80 |
7c | 1g | 4-ClC6H4 | Et | 20 min | 2g | 81 |
8c | 1h | 4-FC6H4 | Et | 25 min | 2h | 60 |
9c | 1i | 4-NO2C6H4 | Et | 15 min | 2i | 61 |
10c | 1j | 3-NO2C6H4 | Et | 15 min | 2j | 60 |
11c | 1k | 2-NO2C6H4 | Et | 15 min | 2k | 64 |
12c | 1l | 4-CF3C6H4 | Et | 17 min | 2l | 74 |
13 | 1m | Ph | Me | 1.0 | 2m | 76 |
14c | 1p | Me | Me | 5 min | 2p | 70 |
Entry | 1 | Ar | R | Time/h | Product | Yieldb/% |
---|---|---|---|---|---|---|
1 | 1a | Ph | Et | 1.0 (-23 ℃)+6 (0 ℃) | 3a | 93 |
2 | 1b | 4-MeC6H4 | Et | 1.1 (-23 ℃)+7 (0 ℃) | 3b | 90 |
3 | 1c | 4-MeOC6H4 | Et | 2.0 (-23 ℃)+12 (0 ℃) | 3c | 93 |
4 | 1d | 3-MeOC6H4 | Et | 2.3 (-23 ℃)+14 (0 ℃) | 3d | 89 |
5 | 1e | 2-MeOC6H4 | Et | 1.4 (-23 ℃)+8.5 (0 ℃) | 3e | 85 |
6 | 1f | 4-BrC6H4 | Et | 40 min (-23 ℃)+4.5 (0 ℃) | 3f | 91 |
7 | 1g | 4-ClC6H4 | Et | 40 min (-23 ℃)+4.5 (0 ℃) | 3g | 89 |
8 | 1h | 4-FC6H4 | Et | 30 min (-23 ℃)+3.5 (0 ℃) | 3h | 92 |
9 | 1i | 4-NO2C6H4 | Et | 1.1 (-23 ℃)+7 (0 ℃) | 3i' | 35 |
10 | 1j | 3-NO2C6H4 | Et | 5 min (-23 ℃)+1 (0 ℃) | 3j | 73 |
11 | 1k | 2-NO2C6H4 | Et | 5 min (-23 ℃)+35 min (0 ℃) | 3k | 82 |
12 | 1l | 4-CF3C6H4 | Et | 10 min (-23 ℃)+1.5 (0 ℃) | 3l | 60 |
13c | 1m | Ph | Me | 1.0 (-23 ℃)+6 (0 ℃) | 3m | 81 (X-ray) |
14 | 1p | Me | Me | 5 min (-23 ℃)+40 min (0 ℃) | 3p | 46 |
Entry | 1 | Ar | R | Time/h | Product | Yieldb/% |
---|---|---|---|---|---|---|
1 | 1a | Ph | Et | 1.0 (-23 ℃)+6 (0 ℃) | 3a | 93 |
2 | 1b | 4-MeC6H4 | Et | 1.1 (-23 ℃)+7 (0 ℃) | 3b | 90 |
3 | 1c | 4-MeOC6H4 | Et | 2.0 (-23 ℃)+12 (0 ℃) | 3c | 93 |
4 | 1d | 3-MeOC6H4 | Et | 2.3 (-23 ℃)+14 (0 ℃) | 3d | 89 |
5 | 1e | 2-MeOC6H4 | Et | 1.4 (-23 ℃)+8.5 (0 ℃) | 3e | 85 |
6 | 1f | 4-BrC6H4 | Et | 40 min (-23 ℃)+4.5 (0 ℃) | 3f | 91 |
7 | 1g | 4-ClC6H4 | Et | 40 min (-23 ℃)+4.5 (0 ℃) | 3g | 89 |
8 | 1h | 4-FC6H4 | Et | 30 min (-23 ℃)+3.5 (0 ℃) | 3h | 92 |
9 | 1i | 4-NO2C6H4 | Et | 1.1 (-23 ℃)+7 (0 ℃) | 3i' | 35 |
10 | 1j | 3-NO2C6H4 | Et | 5 min (-23 ℃)+1 (0 ℃) | 3j | 73 |
11 | 1k | 2-NO2C6H4 | Et | 5 min (-23 ℃)+35 min (0 ℃) | 3k | 82 |
12 | 1l | 4-CF3C6H4 | Et | 10 min (-23 ℃)+1.5 (0 ℃) | 3l | 60 |
13c | 1m | Ph | Me | 1.0 (-23 ℃)+6 (0 ℃) | 3m | 81 (X-ray) |
14 | 1p | Me | Me | 5 min (-23 ℃)+40 min (0 ℃) | 3p | 46 |
Entry | 1 | Ar | R | Temp./℃ | t2/h | Product | Yieldb/% |
---|---|---|---|---|---|---|---|
1 | 1a | Ph | Et | 0 | 4 | 4a | 93 |
2 | 1b | 4-MeC6H4 | Et | 0 | 4 | 4b | 92 |
3 | 1c | 4-MeOC6H4 | Et | 0 | 10 | 4c | 94 |
4 | 1d | 3-MeOC6H4 | Et | 0 | 4 | 4d | 92 |
5 | 1e | 2-MeOC6H4 | Et | 0 | 6 | 4e | 95 |
6 | 1f | 4-BrC6H4 | Et | 0 | 4 | 4f | 92 |
7 | 1g | 4-ClC6H4 | Et | 0 | 3 | 4g | 90 |
8 | 1h | 4-FC6H4 | Et | 0 | 2 | 4h | 88 |
9c,d | 1i | 4-NO2C6H4 | Et | -23~0 | 3 | 4i | 85 |
10c,d | 1j | 3-NO2C6H4 | Et | -23~0 | 3 | 4j | 90 |
11c | 1k | 2-NO2C6H4 | Et | -23 | 52 | 4k | 91 |
12c,d | 1l | 4-CF3C6H4 | Et | -23~0 | 4 | 4l | 73 |
13 | 1m | Ph | Me | 0 | 4 | 4m | 92 |
14e | 1n | 3,4-(MeO)2C6H3 | Et | 0 | 32 | 4n | 94 (X-ray) |
15 | 1o | 3,4-(MeO)2C6H3 | Me | 0 | 40 | 4o | 94 |
16 | 1p | Me | Me | 0 | 40 min | 4p | 45 |
Entry | 1 | Ar | R | Temp./℃ | t2/h | Product | Yieldb/% |
---|---|---|---|---|---|---|---|
1 | 1a | Ph | Et | 0 | 4 | 4a | 93 |
2 | 1b | 4-MeC6H4 | Et | 0 | 4 | 4b | 92 |
3 | 1c | 4-MeOC6H4 | Et | 0 | 10 | 4c | 94 |
4 | 1d | 3-MeOC6H4 | Et | 0 | 4 | 4d | 92 |
5 | 1e | 2-MeOC6H4 | Et | 0 | 6 | 4e | 95 |
6 | 1f | 4-BrC6H4 | Et | 0 | 4 | 4f | 92 |
7 | 1g | 4-ClC6H4 | Et | 0 | 3 | 4g | 90 |
8 | 1h | 4-FC6H4 | Et | 0 | 2 | 4h | 88 |
9c,d | 1i | 4-NO2C6H4 | Et | -23~0 | 3 | 4i | 85 |
10c,d | 1j | 3-NO2C6H4 | Et | -23~0 | 3 | 4j | 90 |
11c | 1k | 2-NO2C6H4 | Et | -23 | 52 | 4k | 91 |
12c,d | 1l | 4-CF3C6H4 | Et | -23~0 | 4 | 4l | 73 |
13 | 1m | Ph | Me | 0 | 4 | 4m | 92 |
14e | 1n | 3,4-(MeO)2C6H3 | Et | 0 | 32 | 4n | 94 (X-ray) |
15 | 1o | 3,4-(MeO)2C6H3 | Me | 0 | 40 | 4o | 94 |
16 | 1p | Me | Me | 0 | 40 min | 4p | 45 |
[2] |
Kou, K. G. M.; Li, B. X.; Lee, J. C.; Gallego, G. M.; Lebold, T. P.; DiPasquale, A. G.; Sarpong, R. J. Am. Chem. Soc. 2016, 138, 10830.
doi: 10.1021/jacs.6b07268 |
[3] |
Carson, C. A.; Kerr, M. A. Org. Lett. 2009, 777.
|
[4] |
Xu, N.; Chen, H. Chin. J. Org. Chem. 2015, 35, 1033. (in Chinese)
doi: 10.6023/cjoc201502029 |
(许男徽, 陈河如, 有机化学, 2015, 35, 1033.)
doi: 10.6023/cjoc201502029 |
|
[5] |
Tomanik, M.; Economou, C.; Frischling, M. C.; Xue, M.; Marks, V. A.; Mercado, B. Q.; Herzon, S. B. J. Org. Chem. 2020, 85, 8952.
doi: 10.1021/acs.joc.0c00891 pmid: 32615040 |
[6] |
Gehling, V. S.; McGrath, J. P.; Duplessis, M.; Khanna, A.; Brucelle, F.; Vaswani, R. G.; Côté, A.; Stuckey, J.; Watson, V.; Cummings, R. T.; Balasubramanian, S.; Iyer, P.; Sawant, P.; Good, A. C.; Albrecht, B. K.; Harmange, J.-C.; Audia, J. E.; Bellon, S. F.; Trojer, P.; Levell, J. R. ACS Med. Chem. Lett. 2020, 11, 1213.
doi: 10.1021/acsmedchemlett.0c00060 pmid: 32551003 |
[7] |
Chagarovsky, A. O.; Budynina, E. M.; Ivanova, O. A.; Villemson, E. V.; Rybakov, V. B.; Trushkov, I. V.; Melnikov, M. Y. Org. Lett. 2014, 16, 2830.
doi: 10.1021/ol500877c pmid: 24819312 |
[8] |
Mishra, U. K.; Patel, K.; Ramasastry, S. S. V. Org. Lett. 2019, 21, 175.
doi: 10.1021/acs.orglett.8b03537 pmid: 30543443 |
[9] |
(a) Miyazawa, K.; Koike, T.; Akita, M. Chem.-Eur. J. 2015, 21, 11677.
doi: 10.1002/chem.201501590 pmid: 26179746 |
(b) Arai, Y.; Tomita, R.; Ando, G.; Koike, T.; Akita, M. Chem.-Eur. J. 2016, 22, 1262.
doi: 10.1002/chem.201504838 pmid: 26179746 |
|
(c) Gupta, A.; Kholiya, R.; Rawat, D. S. Asian J. Org. Chem. 2017, 6, 993.
doi: 10.1002/ajoc.v6.8 pmid: 26179746 |
|
(d) Chen, C.; Shen, X.; Chen, J.; Hong, X.; Lu, Z. Org. Lett. 2017, 19, 5422.
doi: 10.1021/acs.orglett.7b02691 pmid: 26179746 |
|
[10] |
(a) Novikov, R. A.; Timofeev, V. P.; Tomilov, Y. V. J. Org. Chem. 2012, 77, 5993.
doi: 10.1021/jo300720d pmid: 18543924 |
(b) Dey, R.; Kumar, P.; Banerjee, P. J. Org. Chem. 2018, 83, 5438.
doi: 10.1021/acs.joc.8b00332 pmid: 18543924 |
|
(c) Ivanov, K. L.; Villemson, E. V.; Budynina, E. M.; Ivanova, O. A.; Trushkov, I. V.; Melnikov, M. Y. Chem.-Eur. J. 2015, 21, 4975.
doi: 10.1002/chem.201405551 pmid: 18543924 |
|
(d) Novikov, R. A.; Tarasova, A. V.; Korolev, V. A.; Timofeev, V. P.; Tomilov, Y. V. Angew. Chem., Int. Ed. 2014, 53, 3187.
doi: 10.1002/anie.201306186 pmid: 18543924 |
|
(e) Pohlhaus, P. D.; Sanders, S. D.; Parsons, A. T.; Li, W.; Johnson, J. S. J. Am. Chem. Soc. 2008, 130, 8642.
doi: 10.1021/ja8015928 pmid: 18543924 |
|
[1] |
(a) Corey, E. J.; Chaykovsky, M. J. Am. Chem. Soc. 1962, 84, 867.
doi: 10.1021/ja00864a040 |
(b) Corey, E. J.; Chaykovsky, M. J. Am. Chem. Soc. 1964, 86, 1640.
doi: 10.1021/ja01062a040 |
|
(c) Corey, E. J.; Chaykovsky, M. J. Am. Chem. Soc. 1965, 87, 1353.
doi: 10.1021/ja01084a034 |
|
[11] |
(a) Qi, C.; Chen, W.; Yang, G. Chin. J. Synth. Chem. 2021, 29, 969. (in Chinese)
|
(齐春, 陈文龙, 杨高升, 合成化学, 2021, 29, 969.)
|
|
(b) Ouali, M. S.; Vaultier, M.; Carrie, R. Synthesis 1977, 626.
|
|
[12] |
(a) Miao, C.-B.; Zhang, M.; Tian, Z.-Y.; Xi, H.-T.; Sun, X.-Q.; Yang, H.-T. J. Org. Chem. 2011, 76, 9809.
doi: 10.1021/jo201879t |
(b) Okimoto, M.; Yamamori, H.; Ohashi, K.; Hoshi, M.; Yoshida, T. Synlett 2013, 24, 1568.
doi: 10.1055/s-00000083 |
|
(c) Warner, D. T. J. Org. Chem. 1959, 24, 1536.
doi: 10.1021/jo01092a039 |
[1] | Xing Wang, Qianqian Song, Xuling Chen, Pengfei Li, Yunkun Qi, Wenjun Li. Organocatalytic Regio- and Enantioselective aza-1,8-Conjugate Additions of Isoxazol-5(4H)-ones to 6-Methide-6H-indoles [J]. Chinese Journal of Organic Chemistry, 2022, 42(6): 1722-1734. |
[2] | Donglin Wang, Linglong Kan, Yudao Ma, Lei Liu. NaOtBu-Catalyzed Hydrophosphonylation of δ-CN-δ-aryl-disubstituted para-Quinone Methides with Phosphine Oxides [J]. Chinese Journal of Organic Chemistry, 2021, 41(8): 3192-3203. |
[3] | Tongfei Zhang, Yibo Chen, Zhenbo Gao. Cu(OTf)2 Catalyzed Conjugate Addition of Mercaptans to Enones [J]. Chinese Journal of Organic Chemistry, 2021, 41(6): 2424-2434. |
[4] | Yuhe Qiu, Kanghui Lu, Bangchi Wei, Zhenkai Qian, Zhengjie He. PIII-Mediated Intramolecular Cyclopropanation and Synthesis of Cyclopropa[c]coumarins [J]. Chinese Journal of Organic Chemistry, 2021, 41(10): 4066-4074. |
[5] | Yu Shuyan, Gao Lihong, Lan Hongbing, Qian Hengyu, Yin Zhigang, Shang Yongjia. Recent Progress in the Reactions of Aurone-Derived Azadienes [J]. Chinese Journal of Organic Chemistry, 2020, 40(9): 2714-2724. |
[6] | Wang Lin, Wang Nan, Qi Yue, Sun Shutao, Liu Xigong, Li Wei, Liu Lei. Synthesis of Sterically Hindered α-Aminonitriles through 1,6-Aza-conjugate Addition of Anilines to δ-Cyano Substituted para-Quinone Methides [J]. Chinese Journal of Organic Chemistry, 2020, 40(11): 3934-3943. |
[7] | Lu Shengle, Tu Xianxia, Liu Weishun, Shen Liting, Mao Shanjian, Deng Guisheng. Transition Metal-Free-Catalyzed Regioselective Reversal in the Cyclization of 2-Diazo-3,5-dioxo-6-ynoates/ynones/ynamide: Synthesis of Diazo γ-Pyrones and Diazo 3(2H)-Furanones [J]. Chin. J. Org. Chem., 2018, 38(7): 1663-1672. |
[8] | Zhu Xinju, Niu Junlong, Zhao Xuemei, Hao Xinqi, Song Maoping. Synthesis of Chiral Bis(imidazoline) Ligands with Biphenyl Backbone and Their Application in the Asymmetric Cyclopropanation Reaction [J]. Chin. J. Org. Chem., 2018, 38(1): 118-123. |
[9] | Liu Teng, Liu Jianjun, He Chixian, Cheng Feixiang. Recent Progress on Polyconjugated Nitrodienynes/Nitroenynes:Synthesis and Applications [J]. Chin. J. Org. Chem., 2017, 37(10): 2609-2618. |
[10] | Xing Aiping, Tian Mi, Wang Lailai. Novel Chiral C3-Symmetric Monophosphite Ligands: Synthsis and Catalytic Performance in Asymmetric Hydroformylation and 1,4-Conjugate Addition [J]. Chin. J. Org. Chem., 2016, 36(12): 2912-2919. |
[11] | Tang Fengxiang, Ye Jiuyong. Recent Advances in Copper-Catalyzed Asymmetric Conjugate Addition of Grignard Reagents [J]. Chin. J. Org. Chem., 2015, 35(7): 1414-1427. |
[12] | Xu Nanhui, Chen Heru. An Efficient Total Synthesis of Ethyl 7-(Hydroxyimino)cyclopropa-[b]chromen-1a-carboxylate and Their Derivatives [J]. Chin. J. Org. Chem., 2015, 35(5): 1033-1039. |
[13] | Lin Jing, Cheng Yu, Kang Tairan, He Long, Liu Quanzhong. Intramolecular Conjugate Additions of Unsaturated Ketimine Ylides for the Structurally Enriched 3,4-Dihydro-2H-pyrrole Derivatives [J]. Chin. J. Org. Chem., 2014, 34(4): 735-740. |
[14] | Cai Shaojun, Xiao Longqiang, Liao Liqiong, Liu Lijian. Catalyst-Free Cyclopropanation of Alkenes with Diazocompounds under Microwave Irradiation [J]. Chin. J. Org. Chem., 2013, 33(12): 2602-2606. |
[15] | Ni Chengyan, Li Wenke, He Long, Liu Quanzhong, Kang Tairan. Enantioselective Conjugate Addition of Diethylzinc to Vinylogous Imines Generated in situ from Sulfonyl Indoles [J]. Chin. J. Org. Chem., 2012, 32(12): 2322-2327. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||