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Quantum Chemistry Spin Qubits Silicon Quantum Computing

Core-Shell Confined Perovskite Quantum Dots for Enhanced Circularly Polarized Luminescence and Stability.

PubMed
Authors: Chen Y, Quan X, Li D, Yang Y, Wei J, Yang Y, Lan X, Zhang X, Pang Q, Zhou C, Zhou L, Chen P

Year

2026

Paper ID

35624

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

160

Citations

N/A

Abstract

Intrinsically chiral active optical materials are currently a subject of intense research. While chiral ligand modification is an effective strategy for imparting chirality to perovskite quantum dots (PQDs), it faces challenges related to a limited luminescence dissymmetry factor and stability. Herein, this work reports a one-pot synthesis of R-/S-CsPbBr@SiO PQDs. The chiral characteristics of R-/S-CsPbBr@SiO PQDs originate from the surface anchoring of R-/S-2-phenylglycinol (R-/S-Phe), which triggers chiral lattice distortion of the [PbBr] octahedra and strong electronic coupling. Notably, the silica shell acts not just as a protective barrier but as a spatial confinement matrix that facilitates a higher density of chiral ligand loading, thereby amplifying the dissymmetry factor = -1.14 × 10 by nearly an order of magnitude compared to bare counterparts. The encapsulated PQDs simultaneously achieve a high photoluminescence quantum yield of 84 ± 1%, exceptional water stability, and intense circularly polarized luminescence. This work offers a strategy for enhancing the chiroptical signals in multifunctional chiral metal halides.

Why This Paper Matters

  • This paper contributes to the Quantum Chemistry research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • Intrinsically chiral active optical materials are currently a subject of intense research.

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