Exciton-to-Dopant Energy Transfer in Mn-Doped Cesium Lead Halide Perovskite Nanocrystals.
basic_science · Level V
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Abstract
We report the one-pot synthesis of colloidal Mn-doped cesium lead halide (CsPbX<sub>3</sub>) perovskite nanocrystals and efficient intraparticle energy transfer between the exciton and dopant ions resulting in intense sensitized Mn luminescence. Mn-doped CsPbCl<sub>3</sub> and CsPb(Cl/Br)<sub>3</sub> nanocrystals maintained the same lattice structure and crystallinity as their undoped counterparts with nearly identical lattice parameters at ∼0.2% doping concentrations and no signature of phase separation. The strong sensitized luminescence from d-d transition of Mn<sup>2+</sup> ions upon band-edge excitation of the CsPbX<sub>3</sub> host is indicative of sufficiently strong exchange coupling between the charge carriers of the host and dopant d electrons mediating the energy transfer, essential for obtaining unique properties of magnetically doped quantum dots. Highly homogeneous spectral characteristics of Mn luminescence from an ensemble of Mn-doped CsPbX<sub>3</sub> nanocrystals and well-defined electron paramagnetic resonance spectra of Mn<sup>2+</sup> in host CsPbX<sub>3</sub> nanocrystal lattices suggest relatively uniform doping sites, likely from substitutional doping at Pb<sup>2+</sup>. These observations indicate that CsPbX<sub>3</sub> nanocrystals, possessing many superior optical and electronic characteristics, can be utilized as a new platform for magnetically doped quantum dots expanding the range of optical, electronic, and magnetic functionality.