4.6 Article

Spectroscopic and Theoretical Identification of Two Thermal Isomerization Pathways for Bistable Chiral Overcrowded Alkenes

期刊

CHEMISTRY-A EUROPEAN JOURNAL
卷 22, 期 38, 页码 13478-+

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/chem.201602276

关键词

bistable switches; computational chemistry; molecular switches; photoisomerization; thermal isomerization

资金

  1. Netherlands Organization for Scientific Research (NWO-CW)
  2. Foundation for Fundamental Research on Matter (FOM, a subsidiary of NWO)
  3. Zernike Institute for Advanced Materials
  4. Royal Netherlands Academy of Arts and Sciences (KNAW)
  5. European Research Council [227897]
  6. Ministry of Education, Culture and Science [024.001.035]
  7. University of Groningen

向作者/读者索取更多资源

Chiroptical molecular switches play an important role in responsive materials and dynamic molecular systems. Here we present the synthesis of four chiral overcrowded alkenes and the experimental and computational study of their photochemical and thermal behavior. By irradiation with UV light, metastable diastereoisomers with opposite helicity were generated through high yielding E-Z isomerizations. Kinetic studies on metastable 1-4 using CD spectroscopy and HPLC analysis revealed two pathways at higher temperatures for the thermal isomerization, namely a thermal E-Z isomerization (TEZI) and a thermal helix inversion (THI). These processes were also studied computationally whereby a new strategy was developed for calculating the TEZI barrier for second-generation overcrowded alkenes. To demonstrate that these overcrowded alkenes can be employed as bistable switches, photochromic cycling was performed, which showed that the alkenes display good selectivity and fatigue resistance over multiple irradiation cycles. In particular, switch 3 displayed the best performance in forward and backward photoswitching, while 1 excelled in thermal stability of the photogenerated metastable form. Overall, the alkenes studied showed a remarkable and unprecedented combination of switching properties including dynamic helicity, reversibility, selectivity, fatigue resistance, and thermal stability.

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