Quantum spin-engineering in on-surface molecular ferrimagnets

W Wantong Huang M Máté Stark P Paul Greule K Kwan Ho Au-Yeung D Daria Sostina J José Reina Gálvez C Christoph Sürgers W Wolfgang Wernsdorfer C Christoph Wolf P Philip Willke

Abstract

Abstract The design and control of atomic-scale spin structures constitute major challenges for spin-based quantum technology platforms, including quantum dots, color centers, and molecular spins. Here, we showcase a strategy for designing the quantum properties of molecular spin qubits by combining tip-assisted on-surface assembly with electron spin resonance scanning tunneling microscopy (ESR-STM): We fabricate magnetic dimer complexes that consist of an iron phthalocyanine (FePc) molecule and an organometallic half-sandwich complex formed by the FePc ligand and an attached iron atom, Fe(C 6 H 6 ). The total complex forms a mixed-spin (1/2,1) quantum ferrimagnet with a well-separated correlated ground state doublet, which we utilize for coherent control. As a result of the correlation, the quantum ferrimagnet shows an improved spin lifetime ( > 1.5 μs) as it is partially protected against inelastic electron scattering. Lastly, the ferrimagnet units also enable intermolecular coupling, that can be used to realize both ferromagnetic or antiferromagnetic structures. Thus, quantum ferrimagnets provide a versatile platform to improve coherent control in general and to study complex magnetic interactions.

Article Details

Volume / Issue Vol. 16, Issue 1
Published June 05, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (10)

W

Wantong Huang

M

Máté Stark

P

Paul Greule

K

Kwan Ho Au-Yeung

D

Daria Sostina

J

José Reina Gálvez

C

Christoph Sürgers

W

Wolfgang Wernsdorfer

C

Christoph Wolf

P

Philip Willke