Enhanced Stability and Linearly Polarized Emission from CsPbI$_3$ Perovskite Nanoplatelets through A-site Cation Engineering
Woo Hyeon Jeong, Junzhi Ye, Jongbeom Kim, Rui Xu, Xinyu Shen, Chia-Yu Chang, Eilidh L. Quinn, Myoung Hoon Song, Peter Nellist, Henry J. Snaith, Yunwei Zhang, Bo Ram Lee, Robert L. Z. Hoye

TL;DR
This study improves the stability and polarization of CsPbI3 nanoplatelets by alloying FA, enabling better optoelectronic performance for applications like displays and bioimaging.
Contribution
It demonstrates that controlled FA incorporation enhances stability, optical properties, and linear polarization in CsPbI3 nanoplatelets, addressing key limitations of previous materials.
Findings
FA alloying increases PL quantum yield from 53% to 61%
Stability in air extends from ~2 days to over 7 days
Linear polarization degree improves from 5.1% to 9.4%
Abstract
The anisotropy of perovskite nanoplatelets (PeNPLs) opens up many opportunities in optoelectronics, including enabling the emission of linearly polarized light. But the limited stability of PeNPLs is a pressing challenge, especially for red-emitting CsPbI. Herein, we address this limitation by alloying FA into the perovskite cuboctahedral site. Unlike Cs/FA alloying in bulk thin films or nonconfined nanocubes, FA incorporation in nanoplatelets requires meticulous control over the reaction conditions, given that nanoplatelets are obtained in kinetically-driven growth regimes instead of thermodynamically-driven conditions. Through in-situ photoluminescence (PL) measurements, we find that excess FA leads to uncontrolled growth, where phase-impurities and nanoplatelets of multiple thicknesses co-exist. Restricting the FA content to up to 25% Cs substitution enables monodisperse PeNPLs,…
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