Chiral Metal Halide Perovskites for Spin‐Polarized Light‐Emitting Diodes

A Ashish Gaurav (Inorganic Chemistry Laboratory University of Oxford Oxford UK) J Jihyun Kim (Department of Chemistry) N Nadesh Fiuza‐Maneiro (CINBIO, Universidade de Vigo, Department of Physical Chemistry Campus Universitario As Lagoas‐Marcosende Universidade Devigo Vigo Spain) H Hongki Kim H Hae‐Jun Seok (Inorganic Chemistry Laboratory, Department of Chemistry University of Oxford Oxford UK) S Sergio Gómez‐Graña (CINBIO, Universidade de Vigo, Department of Physical Chemistry Campus Universitario As Lagoas‐Marcosende Universidade Devigo Vigo Spain) R Robert L. Z. Hoye L Lakshminarayana Polavarapu (CINBIO, Universidade de Vigo, Department of Physical Chemistry Campus Universitario As Lagoas‐Marcosende Universidade Devigo Vigo Spain) M Matthew J. Fuchter

Abstract

ABSTRACT With the growing importance of displays, reducing their power consumption has become crucial for developing energy‐efficient photonic–electronic platforms. Conventional light emitting diodes (LEDs) rely on external polarizers and waveplates to control light polarization in displays, but these optics cause at least half of the incident energy of the LEDs to be lost, demanding higher drive currents and accelerating degradation. Generating circularly polarized light (CPL) directly at the source offers a low‐power alternative by eliminating such optical losses and enabling direct spin–photon interfaces. Recently, chiral metal halide perovskites (MHPs) have emerged as efficient, solution‐processable semiconductors that intrinsically couple light polarization and spin. Their strong spin–orbit coupling and broken inversion symmetry enable spin‐selective charge transport via the chiral‐induced spin selectivity effect, allowing both spin manipulation and its impact on emission to be observed within the same layer. In colloidal nanocrystal form they can emit CPL with high photoluminescence quantum yield, making them promising candidates for chiral light emission, although their use is still limited by low polarization anisotropy. This perspective discusses intrinsic and extrinsic routes to achieve circularly polarized electroluminescence (CP‐EL) using chiral MHPs, highlights progress in low‐dimensional films and chiral‐ligand nanocrystals, and discusses prospects for room‐temperature spin control and filter‐free, spin‐LEDs for next‐generation energy‐efficient optoelectronic displays.

Article Details

Volume / Issue Vol. 38, Issue 23
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

A

Ashish Gaurav

Inorganic Chemistry Laboratory University of Oxford Oxford UK

J

Jihyun Kim

Department of Chemistry

N

Nadesh Fiuza‐Maneiro

CINBIO, Universidade de Vigo, Department of Physical Chemistry Campus Universitario As Lagoas‐Marcosende Universidade Devigo Vigo Spain

H

Hongki Kim

H

Hae‐Jun Seok

Inorganic Chemistry Laboratory, Department of Chemistry University of Oxford Oxford UK

S

Sergio Gómez‐Graña

CINBIO, Universidade de Vigo, Department of Physical Chemistry Campus Universitario As Lagoas‐Marcosende Universidade Devigo Vigo Spain

R

Robert L. Z. Hoye

L

Lakshminarayana Polavarapu

CINBIO, Universidade de Vigo, Department of Physical Chemistry Campus Universitario As Lagoas‐Marcosende Universidade Devigo Vigo Spain

M

Matthew J. Fuchter