• Title/Summary/Keyword: O-아릴화반응

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Diversification of 4,5-disubstituted Pyrrolo[3,2-d]-pyrimidines by Microwave Assisted Metal Catalyzed Reaction (마이크로파와 금속 촉매를 이용한 Pyrrolo[3,2-d]-pyrimidine 유도체의 다양화)

  • Jeong Seob, Byeon;Eul Kgun, Yum;Yeong-Joon, Kim
    • Journal of the Korean Chemical Society
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    • v.66 no.6
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    • pp.442-450
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    • 2022
  • Diverse pyrrolo[3,2-d]pyrimidines that are expected to exhibit bioactivity were synthesized through O-arylation and Suzuki coupling reactions. Microwave-assisted O-arylation was successfully performed using a Cu metal catalyst, so that 4 position of pyrrolo[3,2-d]pyrimidine could be substituted with phenol group. In addition, 4-aryl substituted pyrrolo[3,2-d]pyrimidines were synthesized with good to excellent yields by microwave-assisted Suzuki coupling reaction using a Pd metal catalyst. By using microwaves as reaction conditions for diversification of derivatives, it was possible to dramatically overcome the disadvantages of traditional heat reactions of long reaction times and heat transfer efficiency problems. The result of this study can be used to be diversify pyrrolo[3,2-d]pyrimidine derivatives, which are expected to play an important role in the drug discovery research.

Asymmetric Ring Opening Reaction of Racemic Epoxides by Polymeric Chiral Salen Catalyst containing Metal Salts (금속염 함유 고분자형 키랄 살렌촉매에 의한 라세믹 에폭사이드의 광학선택적 비대칭 고리열림반응)

  • Lee, Kwang Yeon;Rahul, B. Kawthekar;Kim, Geon-Joong
    • Applied Chemistry for Engineering
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    • v.18 no.6
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    • pp.562-567
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    • 2007
  • The stereoselective synthesis of chiral terminal epoxide is of immense academic and industrial interest due to their use as versatile starting materials as well as chiral intermediates. In this study, new polymeric chiral Co(salen) complexes bearing tallium (III)chloride and iron (III)chloride (ferric chloride) have been synthesized and characterized. Their catalytic activity and selectivity have been demonstrated for the asymmetric ring opening of various terminal epoxides using water and phenol derivatives as nucleophiles. The easily prepared polymeric complexes exhibited very high enantioselectivity for the asymmetric ring opening of epoxides with $H_2O$ and phenol nucleophiles, providing enantiomerically enriched terminal epoxides (> 98% ee). The system described in this work is very efficient for the synthesis of chiral epoxide, 1,2-diol and ${\alpha}$-aryloxy alcohol intermediates.