Immense magnetic response of exciplex light emission due to correlated spin-charge dynamics
arXiv:1601.03621 · doi:10.1103/PhysRevX.6.011011
Abstract
As carriers slowly move through a disordered energy landscape in organic semiconductors, tiny spatial variations in spin dynamics relieve spin blocking at transport bottlenecks or in the electron-hole recombination process that produces light. Large room-temperature magnetic-field effects (MFE) ensue in the conductivity and luminescence. Sources of variable spin dynamics generate much larger MFE if their spatial structure is correlated on the nanoscale with the energetic sites governing conductivity or luminescence such as in co-evaporated organic blends within which the electron resides on one molecule and the hole on the other (an exciplex). Here we show that exciplex recombination in blends exhibiting thermally-activated delayed fluorescence (TADF) produces MFE in excess of 60% at room temperature. In addition, effects greater than 4000% can be achieved by tuning the device's current-voltage response curve by device conditioning. These immense MFEs are both the largest reported values for their device type at room temperature. Our theory traces this MFE and its unusual temperature dependence to changes in spin mixing between triplet exciplexes and light-emitting singlet exciplexes. In contrast, spin mixing of excitons is energetically suppressed, and thus spin mixing produces comparatively weaker MFE in materials emitting light from excitons by affecting the precursor pairs. Demonstration of immense MFE in common organic blends provides a flexible and inexpensive pathway towards magnetic functionality and field sensitivity in current organic devices without patterning the constituent materials on the nanoscale. Magnetic fields increase the power efficiency of unconditioned devices by 30% at room temperature, also showing that magnetic fields may increase the efficiency of the TADF process.
12 pages, PRX in press
References in corpus (3)
Cited by in corpus (13)
- Site-selective measurement of coupled spin pairs in an organic semiconductor
- Optically and electrically excited intermediate electronic states in donor:acceptor based OLEDs
- A Model of Charge Transfer Excitons: Diffusion, Spin Dynamics, and Magnetic Field Effects
- Diffusion of exciplex. 1. Energy transfer from exciplex to exciplex-forming pair
- Quantum-limited biochemical magnetometers designed using the Fisher information and quantum reaction control
- Long-Lived Spin-Polarized Intermolecular Exciplex States in Thermally Activated Delayed Fluorescence-Based Organic Light-Emitting Diodes
- Manipulation of the electroluminescence of organic light-emitting diodes via fringe fields from patterned magnetic domains
- Magnetic fields: a tool for the study of organic solar cells
- Image of dynamic local exchange interactions in the dc magnetoresistance of spin-polarized current through a dopant
- Magnetically Tunable Organic Semiconductors with Superparamagnetic Nanoparticles
- Spontaneous exciton dissociation enables spin state interconversion in delayed fluorescence organic semiconductors
- Diffusion mechanism of exciplex. 2. Energy transfer mechanism
- Magnetic pulses enable multidimensional optical spectroscopy of dark states