TADF Material Design: Photophysical Background and Case Studies Focusing on CuI and AgI Complexes1. Issue 24 (19th December 2017)
- Record Type:
- Journal Article
- Title:
- TADF Material Design: Photophysical Background and Case Studies Focusing on CuI and AgI Complexes1. Issue 24 (19th December 2017)
- Main Title:
- TADF Material Design: Photophysical Background and Case Studies Focusing on CuI and AgI Complexes1
- Authors:
- Yersin, Hartmut
Czerwieniec, Rafal
Shafikov, Marsel Z.
Suleymanova, Alfiya F. - Abstract:
- Abstract: The development of organic light emitting diodes (OLEDs) and the use of emitting molecules have strongly stimulated scientific research of emitting compounds. In particular, for OLEDs it is required to harvest all singlet and triplet excitons that are generated in the emission layer. This can be achieved using the so‐called triplet harvesting mechanism. However, the materials to be applied are based on high‐cost rare metals and therefore, it has been proposed already more than one decade ago by our group to use the effect of thermally activated delayed fluorescence (TADF) to harvest all generated excitons in the lowest excited singlet state S1 . In this situation, the resulting emission is an S1 →S0 fluorescence, though a delayed one. Hence, this mechanism represents the singlet harvesting mechanism. Using this effect, high‐cost and strong SOC‐carrying rare metals are not required. This mechanism can very effectively be realized by use of Cu I or Ag I complexes and even by purely organic molecules. In this investigation, we focus on photoluminescence properties and on crucial requirements for designing Cu I and Ag I materials that exhibit short TADF decay times at high emission quantum yields. The decay times should be as short as possible to minimize non‐radiative quenching and, in particular, chemical reactions that frequently occur in the excited state. Thus, a short TADF decay time can strongly increase the material's long‐term stability. Here, we study crucialAbstract: The development of organic light emitting diodes (OLEDs) and the use of emitting molecules have strongly stimulated scientific research of emitting compounds. In particular, for OLEDs it is required to harvest all singlet and triplet excitons that are generated in the emission layer. This can be achieved using the so‐called triplet harvesting mechanism. However, the materials to be applied are based on high‐cost rare metals and therefore, it has been proposed already more than one decade ago by our group to use the effect of thermally activated delayed fluorescence (TADF) to harvest all generated excitons in the lowest excited singlet state S1 . In this situation, the resulting emission is an S1 →S0 fluorescence, though a delayed one. Hence, this mechanism represents the singlet harvesting mechanism. Using this effect, high‐cost and strong SOC‐carrying rare metals are not required. This mechanism can very effectively be realized by use of Cu I or Ag I complexes and even by purely organic molecules. In this investigation, we focus on photoluminescence properties and on crucial requirements for designing Cu I and Ag I materials that exhibit short TADF decay times at high emission quantum yields. The decay times should be as short as possible to minimize non‐radiative quenching and, in particular, chemical reactions that frequently occur in the excited state. Thus, a short TADF decay time can strongly increase the material's long‐term stability. Here, we study crucial parameters and analyze their impact on the TADF decay time. For example, the energy separation Δ E (S1 –T1 ) between the lowest excited singlet state S1 and the triplet state T1 should be small. Accordingly, we present detailed photophysical properties of two case‐study materials designed to exhibit a large Δ E (S1 –T1 ) value of 1000 cm −1 (120 meV) and, for comparison, a small one of 370 cm −1 (46 meV). From these studies—extended by investigations of many other Cu I TADF compounds—we can conclude that just small Δ E (S1 –T1 ) is not a sufficient requirement for short TADF decay times. High allowedness of the transition from the emitting S1 state to the electronic ground state S0, expressed by the radiative rate k r (S1 →S0 ) or the oscillator strength f (S1 →S0 ), is also very important. However, mostly small Δ E (S1 –T1 ) is related to small k r (S1 →S0 ). This relation results from an experimental investigation of a large number of Cu I complexes and basic quantum mechanical considerations. As a consequence, a reduction of τ (TADF) to below a few μs might be problematic. However, new materials can be designed for which this disadvantage is not prevailing. A new TADF compound, Ag(dbp)(P2 ‐nCB) (with dbp=2, 9‐di‐ n‐butyl ‐1, 10‐phenanthroline and P2 ‐nCB= bis ‐(diphenylphosphine)‐ nido ‐carborane) seems to represent such an example. Accordingly, this material shows TADF record properties, such as short TADF decay time at high emission quantum yield. These properties are based (i) on geometry optimizations of the Ag I complex for a fast radiative S1 →S0 rate and (ii) on restricting the extent of geometry reorganizations after excitation for reducing non‐radiative relaxation and emission quenching. Indeed, we could design a TADF material with breakthrough properties showing τ (TADF)=1.4 μs at 100 % emission quantum yield. Abstract : TADF materials design : Numerous copper(I) and silver(I) complexes display thermally activated delayed fluorescence (TADF) at ambient temperature. The TADF efficiency depends on photophysical parameters, in particular, on the energy separation between the singlet S1 and triplet T1 excited states and the S1 →S0 ground state transition rate as well as on the compound's stiffness with respect to geometry changes upon excitation. This review discusses trends and presents strategies for the development of TADF benchmark compounds. Thus, novel OLED emitter materials with improved properties become available. … (more)
- Is Part Of:
- Chemphyschem. Volume 18:Issue 24(2017)
- Journal:
- Chemphyschem
- Issue:
- Volume 18:Issue 24(2017)
- Issue Display:
- Volume 18, Issue 24 (2017)
- Year:
- 2017
- Volume:
- 18
- Issue:
- 24
- Issue Sort Value:
- 2017-0018-0024-0000
- Page Start:
- 3508
- Page End:
- 3535
- Publication Date:
- 2017-12-19
- Subjects:
- copper(I) complexes -- high fluorescence rates -- silver(I) complexes -- singlet harvesting -- thermally activated delayed fluorescence
Chemistry, Physical and theoretical -- Periodicals
541.05 - Journal URLs:
- http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1439-7641 ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1002/cphc.201700872 ↗
- Languages:
- English
- ISSNs:
- 1439-4235
- Deposit Type:
- Legaldeposit
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- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 3172.310500
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- 5542.xml