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Impact of Excited-State Antiaromaticity Relief in a Fundamental Benzene Photoreaction Leading to Substituted Bicyclo[3.1.0]hexenes

机译:兴奋状态抗硬化缓解在基本苯光学反应中的影响,导致取代的自旋 - 丙酮[3.1.0] hexenes

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摘要

Benzene exhibits a rich photochemistry which can provide access to complex molecular scaffolds that are difficult to access with reactions in the electronic ground state. While benzene is aromatic in its ground state, it is antiaromatic in its lowest ππ* excited states. Herein, we clarify to what extent relief of excited-state antiaromaticity (ESAA) triggers a fundamental benzene photoreaction: the photoinitiated nucleophilic addition of solvent to benzene in acidic media leading to substituted bicyclo[3.1.0]hex-2-enes. The reaction scope was probed experimentally, and it was found that silyl-substituted benzenes provide the most rapid access to bicyclo[3.1.0]hexene derivatives, formed as single isomers with three stereogenic centers in yields up to 75% in one step. Two major mechanism hypotheses, both involving ESAA relief, were explored through quantum chemical calculations and experiments. The first mechanism involves protonation of excited-state benzene and subsequent rearrangement to bicyclo[3.1.0]hexenium cation, trapped by a nucleophile, while the second involves photorearrangement of benzene to benzvalene followed by protonation and nucleophilic addition. Our studies reveal that the second mechanism is operative. We also clarify that similar ESAA relief leads to puckering of S_1state silabenzene and pyridinium ion, where the photorearrangement of the latter is of established synthetic utility. Finally, we identified causes for the limitations of the reaction, information that should be valuable in explorations of similar photoreactions. Taken together, we reveal how the ESAA in benzene and 6π-electron heterocydes trigger photochemical distortions that provide access to complex three-dimensional molecular scaffolds from simple reactants.
机译:苯展出丰富的光化学,可以提供对复杂的分子支架的通道,这些支架难以在电子地面处的反应中获得。虽然苯是芳香的地面状态,但它在最低的ππ*激发态中是抗半导体。在此,我们阐明了激发态抗硬化的程度诱导(ESAA)触发基本苯光学反应:在酸性介质中对苯的光引发亲核加入溶剂,其导致取代的双环[3.1.0]己二烯。实验探测反应范围,发现甲硅烷基取代的苯并提供了对双环[3.1.0]己烯衍生物的最快速进入,形成为单一异构体的单一异构体,在一步中的产率高达75%。通过量子化学计算和实验探索了涉及esaa浮雕的两个主要机制假设。第一种机制涉及激发态苯的质子化,随后的重排至与亲核试剂捕获的双环阳离子,而第二个涉及苯甲烯的光rament,然后是质子化和亲核的添加。我们的研究表明,第二种机制是可操作的。我们还澄清了类似的esaa浮雕导致S_1State氧化苄烯和吡啶鎓离子的褶皱,其中后者的光randement是已建立的合成效用。最后,我们确定了对反应的局限性的原因,在类似光电反应的探索中应该有价值的信息。我们一起揭示了苯苯和6π-电子杂物中的eSAA如何引发光化学的扭曲,从而可以从简单的反应物中获得复杂的三维分子支架的访问。

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  • 来源
    《Journal of the American Chemical Society》 |2020年第25期|10942-10954|共13页
  • 作者单位

    Department of Chemistry - Angstroem Laboratory Uppsala University SE-751 20 Uppsala Sweden Institute of Organic Chemistry and Biochemistry Czech Academy of Sciences 16610 Prague 6 Czech Republic;

    Department of Chemistry - Angstroem Laboratory Uppsala University SE-751 20 Uppsala Sweden;

    Department of Chemistry - Angstroem Laboratory Uppsala University SE-751 20 Uppsala Sweden;

    Medicinal Chemistry Research and Early Development Cardiovascular Renal and Metabolism BioPharmaceuticals R&D AstraZeneca Gothenburg Sweden;

    Department of Chemistry - Angstroem Laboratory Uppsala University SE-751 20 Uppsala Sweden;

    Department of Chemistry - Angstroem Laboratory Uppsala University SE-751 20 Uppsala Sweden;

    Department of Chemistry and Biochemistry Florida State University Tallahassee Florida 32306-4390 United States;

    Department of Chemistry - BMC Uppsala University SE-751 23 Uppsala Sweden;

    Department of Chemistry - Angstroem Laboratory Uppsala University SE-751 20 Uppsala Sweden;

    Department of Chemistry - BMC and Uppsala Center for Computational Chemistry - UC3 Uppsala University SE-751 23 Uppsala Sweden;

    Department of Chemistry - Angstroem Laboratory Uppsala University SE-751 20 Uppsala Sweden;

    Medicinal Chemistry Research and Early Development Respiratory Inflammation and Autoimmune BioPharmaceuticals R&D AstraZeneca Gothenburg Sweden;

    Medicinal Chemistry Research and Early Development Respiratory Inflammation and Autoimmune BioPharmaceuticals R&D AstraZeneca Gothenburg Sweden;

    Medicinal Chemistry Research and Early Development Cardiovascular Renal and Metabolism BioPharmaceuticals R&D AstraZeneca Gothenburg Sweden;

    Department of Chemistry - Angstroem Laboratory Uppsala University SE-751 20 Uppsala Sweden;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 22:16:45

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