Chiral two-dimensional conjugated metal-organic frameworks with high spin polarization

S Shiyi Feng (Center for Advancing Electronics Dresden & Faculty of Chemistry and Food Chemistry) Y Yang Lu C Chenchen Wang M Morteza Torabi (Center for Advancing Electronics Dresden & Faculty of Chemistry and Food Chemistry) X Xing Huang F Florian Auras (Cavendish Laboratory, Department of Physics) R Ran He (Leibniz Institute for Solid State and Materials Research IFW Dresden) L Lukas Sporrer P Paul-Alexander Laval-Schmidt X Xizheng Wu X Xia Wang L Li Wan D Dongxu Wang B Bernd Plietker M Mike Hambsch M Markus Löffler S Stefan C. B. Mannsfeld C Claudia Felser X Xinliang Feng

Abstract

Abstract Two-dimensional conjugated metal-organic frameworks have garnered significant research interest as emerging candidates for organic 2D crystal materials. In classical 2D crystals, chirality can give rise to unique physical phenomena; however, the precise implantation of chirality into 2D c-MOFs has yet to be demonstrated. Here, we demonstrate an example of chiral 2D c-MOFs obtained through the side chain-induced chirality amplification strategy to achieve tunable chiral expression, enabling notable chirality amplification. Chiral substitutions induce distortions in the 2,3,7,8,12,13-hexaiminotriindole conjugated ligand along distinct orientations, effectively transferring their chirality to the conjugated backbone. The resulting frameworks exhibit tunable chirality through steric control, where chiral naphthylethyl substitution increases the distortion angle from 2.3° to 7.0°, leading to pronounced chirality amplification. Furthermore, the chiral 2D c-MOFs demonstrate exceptional spin polarization measured by magnetic-conductive atomic force microscopy (mc-AFM), achieving a value as high as 96.9%, placing them among the highest-performing materials reported to date. This work opens new avenues for the design of chiral 2D crystal materials with potential applications in chiral spintronics.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 27, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (19)

S

Shiyi Feng

Center for Advancing Electronics Dresden & Faculty of Chemistry and Food Chemistry

Y

Yang Lu

C

Chenchen Wang

M

Morteza Torabi

Center for Advancing Electronics Dresden & Faculty of Chemistry and Food Chemistry

X

Xing Huang

F

Florian Auras

Cavendish Laboratory, Department of Physics

R

Ran He

Leibniz Institute for Solid State and Materials Research IFW Dresden

L

Lukas Sporrer

P

Paul-Alexander Laval-Schmidt

X

Xizheng Wu

X

Xia Wang

L

Li Wan

D

Dongxu Wang

B

Bernd Plietker

M

Mike Hambsch

M

Markus Löffler

S

Stefan C. B. Mannsfeld

C

Claudia Felser

X

Xinliang Feng