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Deciphering the Relevance of Quantum Confinement in the Optoelectronics of CsPbBr<sub>3</sub> Perovskite Nanostructures

Leepsa Mishra, Ranjan Kumar Behera, Aradhana Panigrahi, Priyanka Dubey, Soumi Dutta, Manas Kumar Sarangi

2023The Journal of Physical Chemistry Letters14 citationsDOI

Abstract

Perovskites (PVKs) have emerged as an exciting class of semiconducting materials owing to their magnificent photophysical properties and been used in solar cells, light-emitting diodes, photodetectors, etc. The growth of multidimensional nanostructures has revealed many exciting alterations in their optoelectronic properties compared to those of their bulk counterparts. In this work, we have spotlighted the influence of quantum confinement in CsPbBr 3 PVKs like the quantum dot (PQD), nanoplatelet (PNPL), and nanorod (PNR) on their charge transfer (CT) dynamics with 1,4-naphthoquinone (NPQ). The energy band alignment facilitates the transfer of both electrons and holes in the PNPL to NPQ, enhancing its CT rate, while only electron transfer in the PQD and PNR diminishes CT. The tunneling current across a metal–nanostructure–metal junction for the PNPL is observed to be higher than others. The higher exciton binding energy in the PNPL results in efficient charge transport by enhancing the mobility of the excited-state carrier and its lifetime compared to those of the PNR and PQD.

Topics & Concepts

Perovskite (structure)Quantum dotRelevance (law)NanostructureOptoelectronicsMaterials sciencePhysicsNanotechnologyChemistryPolitical scienceCrystallographyLawPerovskite Materials and Applications2D Materials and ApplicationsOptical properties and cooling technologies in crystalline materials
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