4.8 Article

Controlling the structure and photophysics of fluorophore dimers using multiple cucurbit[8]uril clampings

Journal

CHEMICAL SCIENCE
Volume 11, Issue 3, Pages 812-825

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9sc04587b

Keywords

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Funding

  1. Leverhulme Trust (project: Natural material innovation for sustainable living)
  2. Marie Curie FP7 SASSYPOL ITN programme [607602]
  3. EPSRC Programme Grant (NOtCH) [EP/L027151/1]
  4. ERC-2016 Consolidator Grant (CAM-RIG) [726470]
  5. U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences [DE-FG02-99ER14999]
  6. EPSRC [EP/L027151/1, EP/M508007/1, EP/R013012/1, EP/N020669/1]
  7. BBSRC [BB/N007700/1]
  8. ERC [757850 BioNet]
  9. BBSRC [BB/N007700/1] Funding Source: UKRI
  10. EPSRC [EP/R013012/1, EP/N020669/1, EP/L027151/1] Funding Source: UKRI
  11. European Research Council (ERC) [726470] Funding Source: European Research Council (ERC)

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A modular strategy has been employed to develop a new class of fluorescent molecules, which generates discrete, dimeric stacked fluorophores upon complexation with multiple cucurbit[8]uril macrocycles. The multiple constraints result in a static complex (remaining as a single entity for more than 30 ms) and facilitate fluorophore coupling in the ground state, showing a significant bathochromic shift in absorption and emission. This modular design is surprisingly applicable and flexible and has been validated through an investigation of nine different fluorophore cores ranging in size, shape, and geometric variation of their clamping modules. All fluorescent dimers evaluated can be photo-excited to atypical excimer-like states with elongated excited lifetimes (up to 37 ns) and substantially high quantum yields (up to 1). This strategy offers a straightforward preparation of discrete fluorophore dimers, providing promising model systems with explicitly stable dimeric structures and tunable photophysical features, which can be utilized to study various intermolecular processes.

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