有机化学 ›› 2023, Vol. 43 ›› Issue (3): 1136-1145.DOI: 10.6023/cjoc202211013 上一篇 下一篇
研究论文
收稿日期:
2022-11-10
修回日期:
2023-01-10
发布日期:
2023-01-18
通讯作者:
张霄
作者简介:
基金资助:
Rui Wanga, Lang Gaoa, Cen Zhoub, Xiao Zhanga()
Received:
2022-11-10
Revised:
2023-01-10
Published:
2023-01-18
Contact:
Xiao Zhang
About author:
Supported by:
文章分享
以苯基吩噻嗪多孔有机聚合物作为无金属、可回收的异相光催化剂, 在可见光的作用下实现了非活化末端烯烃的氯代三氟甲基化和碘代全氟烷基化反应, 高效地合成了一系列具有重要价值的含氟化合物.
王睿, 高朗, 周岑, 张霄. 苯基吩噻嗪多孔有机聚合物催化的非活化末端烯烃的卤代全氟烷基化反应[J]. 有机化学, 2023, 43(3): 1136-1145.
Rui Wang, Lang Gao, Cen Zhou, Xiao Zhang. Haloperfluoroalkylation of Unactivated Terminal Alkenes over Phenylphenothiazine-Based Porous Organic Polymers[J]. Chinese Journal of Organic Chemistry, 2023, 43(3): 1136-1145.
Entry | Catalyst | Base | Solvent | Yieldb/% of 3a |
---|---|---|---|---|
1 | PTH-POP1 | K2HPO4 | CH3CN | 96 (88)c |
2 | PTH-POP2 | K2HPO4 | CH3CN | 95 |
3 | PTH-POP1 | Na2HPO4 | CH3CN | 94 |
4 | PTH-POP1 | NaHCO3 | CH3CN | 57 |
5 | PTH-POP1 | Et3N | CH3CN | 47 |
6 | PTH-POP1 | DBU | CH3CN | 22 |
7 | PTH-POP1 | — | CH3CN | 89 |
8 | PTH-POP1 | K2HPO4 | DMF | 37 |
9 | PTH-POP1 | K2HPO4 | Acetone | 79 |
10 | PTH-POP1 | K2HPO4 | THF | 39 |
11 | PTH-POP1 | K2HPO4 | DCE | 94 |
12d | — | K2HPO4 | CH3CN | 0 |
13e | PTH-POP1 | K2HPO4 | CH3CN | 0 |
Entry | Catalyst | Base | Solvent | Yieldb/% of 3a |
---|---|---|---|---|
1 | PTH-POP1 | K2HPO4 | CH3CN | 96 (88)c |
2 | PTH-POP2 | K2HPO4 | CH3CN | 95 |
3 | PTH-POP1 | Na2HPO4 | CH3CN | 94 |
4 | PTH-POP1 | NaHCO3 | CH3CN | 57 |
5 | PTH-POP1 | Et3N | CH3CN | 47 |
6 | PTH-POP1 | DBU | CH3CN | 22 |
7 | PTH-POP1 | — | CH3CN | 89 |
8 | PTH-POP1 | K2HPO4 | DMF | 37 |
9 | PTH-POP1 | K2HPO4 | Acetone | 79 |
10 | PTH-POP1 | K2HPO4 | THF | 39 |
11 | PTH-POP1 | K2HPO4 | DCE | 94 |
12d | — | K2HPO4 | CH3CN | 0 |
13e | PTH-POP1 | K2HPO4 | CH3CN | 0 |
Entry | Catalyst | Reductant | Solvent | Yieldb/% of 5a |
---|---|---|---|---|
1 | PTH-POP1 | Sodium ascorbate | CH3CN/CH3OH | 99 (86)c |
2 | PTH-POP2 | Sodium ascorbate | CH3CN/CH3OH | 97 |
3 | PTH-POP1 | DIPEA | CH3CN/CH3OH | 79 |
4 | PTH-POP1 | Et3N | CH3CN/CH3OH | 96 |
5d | PTH-POP1 | — | CH3CN/CH3OH | 5 |
6e | — | Sodium ascorbate | CH3CN/CH3OH | 2 |
7f | PTH-POP1 | Sodium ascorbate | CH3CN/CH3OH | 0 |
Entry | Catalyst | Reductant | Solvent | Yieldb/% of 5a |
---|---|---|---|---|
1 | PTH-POP1 | Sodium ascorbate | CH3CN/CH3OH | 99 (86)c |
2 | PTH-POP2 | Sodium ascorbate | CH3CN/CH3OH | 97 |
3 | PTH-POP1 | DIPEA | CH3CN/CH3OH | 79 |
4 | PTH-POP1 | Et3N | CH3CN/CH3OH | 96 |
5d | PTH-POP1 | — | CH3CN/CH3OH | 5 |
6e | — | Sodium ascorbate | CH3CN/CH3OH | 2 |
7f | PTH-POP1 | Sodium ascorbate | CH3CN/CH3OH | 0 |
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