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The Role of Local Triplet Excited States and D‐A Relative Orientation in Thermally Activated Delayed Fluorescence: Photophysics and Devices

Advanced Science · 2016 · Vol. 3(12) · pp. 1600080–1600080
Fernando B. DiasJosé SantosDavid R. GravesPrzemysław DataRoberto S. NobuyasuMark A. FoxAndrei S. BatsanovTiago PalmeiraMário N. Berberan‐SantosMartin R. BryceAndrew P. Monkman

Abstract

Here, a comprehensive photophysical investigation of a the emitter molecule <b>DPTZ-DBTO2</b>, showing thermally activated delayed fluorescence (TADF), with near-orthogonal electron donor (D) and acceptor (A) units is reported. It is shown that <b>DPTZ-DBTO2</b> has minimal singlet-triplet energy splitting due to its near-rigid molecular geometry. However, the electronic coupling between the local triplet (<sup>3</sup>LE) and the charge transfer states, singlet and triplet, (<sup>1</sup>CT, <sup>3</sup>CT), and the effect of dynamic rocking of the D-A units about the orthogonal geometry are crucial for efficient TADF to be achieved. In solvents with low polarity, the guest emissive singlet <sup>1</sup>CT state couples directly to the near-degenerate <sup>3</sup>LE, efficiently harvesting the triplet states by a spin orbit coupling charge transfer mechanism (SOCT). However, in solvents with higher polarity the emissive CT state in <b>DPTZ-DBTO2</b> shifts below (the static) <sup>3</sup>LE, leading to decreased TADF efficiencies. The relatively large energy difference between the <sup>1</sup>CT and <sup>3</sup>LE states and the extremely low efficiency of the <sup>1</sup>CT to <sup>3</sup>CT hyperfine coupling is responsible for the reduction in TADF efficiency. Both the electronic coupling between <sup>1</sup>CT and <sup>3</sup>LE, and the (dynamic) orientation of the D-A units are thus critical elements that dictate reverse intersystem crossing processes and thus high efficiency in TADF.

Organic Light-Emitting Diodes ResearchPhotochemistry and Electron Transfer StudiesLuminescence and Fluorescent MaterialsExcited stateFluorescenceOrientation (vector space)PhotochemistryMaterials scienceOptoelectronicsChemistryAtomic physicsPhysicsOptics

Funding

  • University of Oxford
  • Coordenação de Aperfeiçoamento de Pessoal de Nível Superior
  • Ministerstwo Edukacji i Nauki
  • Engineering and Physical Sciences Research Council
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The Role of Local Triplet Excited States and D‐A Relative Orientation in Thermally Activated Delayed Fluorescence: Photophysics and Devices · Scinovex