Magnetic dipolar interaction between correlated triplets created by singlet fission in tetracene crystals
arXiv:1503.01513 · doi:10.1038/ncomms9602
Abstract
Singlet fission (SF) can potentially break the Shockley-Queisser efficiency limit in single-junction solar cells by splitting one photo-excited singlet exciton (S1) into two triplets (2T1) in organic semiconductors. A dark multi-exciton (ME) state has been proposed as the intermediate connecting S1 to 2T1. However, the exact nature of this ME state, especially how the doubly-excited triplets interact, remains elusive. Here, we report a quantitative study on the magnetic dipolar interaction between SF-induced correlated triplets in tetracene crystals by monitoring quantum beats relevant to the ME sublevels at room temperature. The resonances of ME sublevels approached by tuning an external magnetic field are observed to be avoided, which agrees well with the theoretical predictions considering a magnetic dipolar interaction of ~ 0.008 GHz. Our work paves a way to quantify the magnetic dipolar interaction in organic materials and marks an important step towards understanding the underlying physics of the ME state.
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Cited by in corpus (4)
- Vibronic exciton theory of singlet fission. I. Linear absorption and the anatomy of the correlated triplet pair state
- Beating maps of singlet fission: Full-quantum simulation of coherent two-dimensional electronic spectroscopy in organic aggregates
- Optical readout of singlet fission biexcitons with photoluminescence detected magnetic resonance
- Transport-Induced Decoherence of the Entangled Triplet Exciton Pair