Phonon-driven wavefunction localization enhances room-temperature single-photon purity in large hybrid lead halide perovskite quantum dots

L Leon G. Feld (Department of Chemistry and Applied Biosciences) S Simon C. Boehme (Institute of Inorganic Chemistry, Department of Chemistry and Applied Biosciences) S Sebastian Sabisch (Department of Chemistry and Applied Biosciences) N Nadav Frenkel N Nuri Yazdani (Materials and Device Engineering Group, Institute for Electronics, Department of Information Technology and Electrical Engineering) V Viktoriia Morad (Department of Chemistry and Applied Biosciences) C Chenglian Zhu T Taehee Kim (Laboratory of Inorganic Chemistry, Department of Chemistry and Applied Biosciences) S Stefano Canossa (Department of Chemistry and Applied Biosciences) M Mariia Svyrydenko R Rui Tao (Institute of Inorganic Chemistry, Department of Chemistry and Applied Biosciences) M Maryna I. Bodnarchuk (Institute of Inorganic Chemistry, Department of Chemistry and Applied Biosciences) G Gur Lubin M Miri Kazes V Vanessa Wood (Materials and Device Engineering Group, Institute for Electronics, Department of Information Technology and Electrical Engineering) D Dan Oron (Department of Molecular Chemistry and Materials Science, Weizmann Institute of Science) G Gabriele Rainò (Laboratory of Inorganic Chemistry, Department of Chemistry and Applied Biosciences) M Maksym V. Kovalenko

Abstract

Abstract In lead halide perovskites (APbX 3 ), the effect of the A-site cation on optical and electronic properties has initially been thought to be marginal. Yet, evidence of beneficial effects on solar-cell performance and light emission is accumulating. Here, we report that the A-site cation in soft APbBr 3 colloidal quantum dots (QDs) controls the phonon-induced localization of the exciton wavefunction. Insights from ab-initio molecular-dynamics simulations and single-particle fluorescence spectroscopy demonstrate that anharmonic crystal vibrations and the resulting disorder act as an additional confinement potential. Avoiding the trade-off between single-photon purity and optical stability faced by downsizing conventional QDs into the strong confinement regime, dynamical phonon-induced confinement in large organic-inorganic perovskite QDs enables bright (10 6 photons/s), stable ( > 1 h), and pure (> 95%) single-photon emission tunable across a wide spectral range (495-745 nm). Strong electron-phonon interaction in soft perovskite QDs provides an unconventional route toward developing scalable room-temperature quantum-light sources.

Article Details

Volume / Issue Vol. 17, Issue 1
Published January 23, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (18)

L

Leon G. Feld

Department of Chemistry and Applied Biosciences

S

Simon C. Boehme

Institute of Inorganic Chemistry, Department of Chemistry and Applied Biosciences

S

Sebastian Sabisch

Department of Chemistry and Applied Biosciences

N

Nadav Frenkel

N

Nuri Yazdani

Materials and Device Engineering Group, Institute for Electronics, Department of Information Technology and Electrical Engineering

V

Viktoriia Morad

Department of Chemistry and Applied Biosciences

C

Chenglian Zhu

T

Taehee Kim

Laboratory of Inorganic Chemistry, Department of Chemistry and Applied Biosciences

S

Stefano Canossa

Department of Chemistry and Applied Biosciences

M

Mariia Svyrydenko

R

Rui Tao

Institute of Inorganic Chemistry, Department of Chemistry and Applied Biosciences

M

Maryna I. Bodnarchuk

Institute of Inorganic Chemistry, Department of Chemistry and Applied Biosciences

G

Gur Lubin

M

Miri Kazes

V

Vanessa Wood

Materials and Device Engineering Group, Institute for Electronics, Department of Information Technology and Electrical Engineering

D

Dan Oron

Department of Molecular Chemistry and Materials Science, Weizmann Institute of Science

G

Gabriele Rainò

Laboratory of Inorganic Chemistry, Department of Chemistry and Applied Biosciences

M

Maksym V. Kovalenko