4.8 Article

Diindeno-fusion of an anthracene as a design strategy for stable organic biradicals

Journal

NATURE CHEMISTRY
Volume 8, Issue 8, Pages 753-759

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/nchem.2518

Keywords

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Funding

  1. US National Science Foundation [CHE-1301485]
  2. Spanish Government, MINECO [CTQ2012-33733, CTQ2011-26507]
  3. Junta de Andalucia [P09-FQM-4708]
  4. Generalitat Valenciana [PrometeoII/2014/076]
  5. Japan Society for the Promotion of Science (JSPS) Research Fellowship for Young Scientists [15J04949]
  6. JSPS [25248007]
  7. Strategic Programs for Innovative Research, Ministry of Education, Culture, Sports, Science & Technology, Japan
  8. Computational Materials Science Initiative, Japan
  9. Swedish Research Council [621-2011-4177]
  10. Swedish National Infrastructure for Computation (NSC, Linkoping)
  11. Biomolecular Mass Spectrometry Core of the Environmental Health Sciences Core Center at Oregon State University (NIH) [P30ES000210]
  12. [A24109002a]
  13. [15H00999]
  14. [A26107004a]
  15. Division Of Chemistry
  16. Direct For Mathematical & Physical Scien [1427987, 1301485] Funding Source: National Science Foundation
  17. Grants-in-Aid for Scientific Research [24109002, 15J04949, 26107004, 15H00999, 25248007] Funding Source: KAKEN

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The consequence of unpaired electrons in organic molecules has fascinated and confounded chemists for over a century. The study of open-shell molecules has been rekindled in recent years as new synthetic methods, improved spectroscopic techniques and powerful computational tools have been brought to bear on this field. Nonetheless, it is the intrinsic instability of the biradical species that limits the practicality of this research. Here we report the synthesis and characterization of a molecule based on the diindeno[b,i]anthracene framework that exhibits pronounced open-shell character yet possesses remarkable stability. The synthetic route is rapid, efficient and possible on the gram scale. The molecular structure was confirmed through single-crystal X-ray diffraction. From variable-temperature Raman spectroscopy and magnetic susceptibility measurements a thermally accessible triplet excited state was found. Organic field-effect transistor device data show an ambipolar performance with balanced electron and hole mobilities. Our results demonstrate the rational design and synthesis of an air-and temperature-stable biradical compound.

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