Abstract
Doping magnetic transition metal ions (e.g., Mn2+) into colloidal quantum dots endows novel optical and magnetic properties to the host materials. CsPbBr3quantum dots (QDs) are emerging light-emitting materials with high structural and chemical flexibility in the visible spectral regime. However, efficiently doping Mn2+ions in CsPbBr3QDs remains challenging, especially when size confinement and ensemble uniformity are needed for understanding the underexplored exciton-dopant exchange interaction. Here, we introduce a doping mechanism based on electrostatic surface Mn2+adsorption that enables efficient Mn2+incorporation in strongly confined CsPbBr3QDs. The resultant QDs are found to have a Cs-deficient stoichiometry compared to their undoped counterparts. A redox reaction-based purification method was developed to remove Mn2+cations that are tightly adsorbed on the surface to determine the concentration of lattice-incorporated Mn2+. Our synthesis enables a Mn2+doping/alloying concentration of up to ∼44% with a Mn2+photoluminescence efficiency exceeding 90%. This allows for the determination of the intrinsic exciton-to-dopant energy transfer rate.
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CITATION STYLE
Hidayatova, L., Mi, C., Akhmedov, N. G., Liu, Y., Shafiq, A. K., Afshari, H., … Dong, Y. (2025). Efficient Mn2+Doping in Non-Stoichiometric Cesium Lead Bromide Perovskite Quantum Dots. Journal of the American Chemical Society, 147(38), 35069–35080. https://doi.org/10.1021/jacs.5c12086
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