TY - JOUR
T1 - Polar Solvent-Assisted Chiral Ligand and Cation Exchange for Bright, Strongly Circularly Polarized Emission in CsPbBr3 Perovskite Nanoplatelets
AU - Wang, Tyler
AU - Li, Zhengjie
AU - Ge, Mingwei
AU - Shi, Jinquan
AU - Bekenstein, Yehonadav
AU - Ung, Gaël
AU - Liu, Mengxia
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025/12/12
Y1 - 2025/12/12
N2 - Chiral semiconducting nanomaterials have recently garnered much interest, as their highly favorable chiroptical properties make them exceptional candidates for applications spanning optical communication, 3D displays, and secure encryption. However, their pronounced sensitivity to size, shape, and surface chemistry renders current processing methods highly inconsistent and uncontrollable, limiting further exploration toward these goals. Here, a method is devised to carefully induce and tune the chirality in (Formula presented.) perovskite nanoplatelets (NPLs) through a polar solvent-assisted chiral ligand exchange while minimizing structural damage to the NPL lattices. Through solvent-engineering, the anisotropic NPLs can also be coerced to self-assemble into highly oriented superlattices, allowing for further control over the chiral NPLs' transition dipole moments. Together, these methods enable circularly polarized luminescence with dissymmetry factors as high as gCPL = 3.4 × 10−2, representing an order of magnitude improvement over their solution-state counterparts. Further, through simultaneous cation exchange with divalent transition metal ions, the quantum yield is successfully boosted by over an order of magnitude and enhance the solution gCPL, demonstrating the versatility of this strategy. These results illustrate this highly general approach for finely tuning the chiroptical properties of perovskite nanomaterials through a single facile and efficient exchange step.
AB - Chiral semiconducting nanomaterials have recently garnered much interest, as their highly favorable chiroptical properties make them exceptional candidates for applications spanning optical communication, 3D displays, and secure encryption. However, their pronounced sensitivity to size, shape, and surface chemistry renders current processing methods highly inconsistent and uncontrollable, limiting further exploration toward these goals. Here, a method is devised to carefully induce and tune the chirality in (Formula presented.) perovskite nanoplatelets (NPLs) through a polar solvent-assisted chiral ligand exchange while minimizing structural damage to the NPL lattices. Through solvent-engineering, the anisotropic NPLs can also be coerced to self-assemble into highly oriented superlattices, allowing for further control over the chiral NPLs' transition dipole moments. Together, these methods enable circularly polarized luminescence with dissymmetry factors as high as gCPL = 3.4 × 10−2, representing an order of magnitude improvement over their solution-state counterparts. Further, through simultaneous cation exchange with divalent transition metal ions, the quantum yield is successfully boosted by over an order of magnitude and enhance the solution gCPL, demonstrating the versatility of this strategy. These results illustrate this highly general approach for finely tuning the chiroptical properties of perovskite nanomaterials through a single facile and efficient exchange step.
KW - cation exchange
KW - chiral
KW - nanoplatelets
KW - perovskite
KW - polarized emission
UR - https://www.scopus.com/pages/publications/105019979669
U2 - 10.1002/adom.202502519
DO - 10.1002/adom.202502519
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AN - SCOPUS:105019979669
SN - 2195-1071
VL - 13
JO - Advanced Optical Materials
JF - Advanced Optical Materials
IS - 35
M1 - e02519
ER -