4.6 Article

Controlled transition dipole alignment of energy donor and energy acceptor molecules in doped organic crystals, and the effect on intermolecular Forster energy transfer

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 15, Issue 10, Pages 3527-3534

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c3cp43800g

Keywords

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Funding

  1. Natural Science Foundation of China [20834006, 50873043, 91233113]
  2. Ministry of Science and Technology of China [2009CB623605, 2013CB834705]
  3. Guangdong Natural Science Foundation [S2012030006232]
  4. Introduced Innovative R&D Team of Guangdong [201101C0105067115]
  5. PCSIRT

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The orientation factor kappa(2) ranging from 0 to 4, which depends on the relative orientation of the transition dipoles of the energy donor (D) and the energy acceptor (A) in space, is one of the pivotal factors deciding the efficiency and directionality of resonance energy transfer (RET) in a D-A molecular system. In this work, tetracene (Tc) and pentacene (Pc) are successfully doped in a trans-1,4-distyrylbenzene (DSB) crystalline lattice to form definite D-A mutually perpendicular transition dipole orientations. The cross D-A dipole arrangement results in an extremely small orientation factor, which is about two orders smaller than that in the disordered films. The energy transfer properties from the host (DSB) to the guest (Tc/Pc) were investigated in detail by steady-state as well as time-resolved fluorescence spectroscopy. Our experimental research results show that the small value of kappa(2) allows less or partial energy transfer from the host (DSB) to the guest (Tc) in a wide range of guest concentration, with the Forster distance of around 1.5 nm. By controlling the doping concentrations in the Tc and Pc doubly doped DSB crystals, we demonstrate, as an example, for the first time the application of the restricted energy transfer by D-A cross transition dipole arrangement for preparation of a large-size, white-emissive organic crystal with the CIE coordinates of (0.36, 0.37) approaching an ideal white light. In contrast, Tc is also doped in an anthracene crystalline lattice to form head-to-tail D-A transition dipole alignment, which is proved to be highly effective to promote the intermolecular energy transfer. In this doped system, the orientation factor is relatively large and the Forster distance is around 7 nm.

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