On-Surface Design of a 2D Cobalt-Organic Network Preserving Large Orbital Magnetic Moment.
Cristina Martín-FuentesSofia de Oliveira ParreirasJosé I UrgelVíctor Rubio-GiménezBeatriz Muñiz CanoDaniel MorenoKoen LauwaetManuel ValvidaresMiguel Angel ValbuenaPierluigi GargianiWolfgang KuchJulio CamareroJosé M GallegoRodolfo MirandaJosé I MartínezCarlos Martí-GastaldoDavid EcijaPublished in: Journal of the American Chemical Society (2022)
The design of antiferromagnetic nanomaterials preserving large orbital magnetic moments is important to protect their functionalities against magnetic perturbations. Here, we exploit an archetype H 6 HOTP species for conductive metal-organic frameworks to design a Co-HOTP one-atom-thick metal-organic architecture on a Au(111) surface. Our multidisciplinary scanning probe microscopy, X-ray absorption spectroscopy, X-ray linear dichroism, and X-ray magnetic circular dichroism study, combined with density functional theory simulations, reveals the formation of a unique network design based on threefold Co +2 coordination with deprotonated ligands, which displays a large orbital magnetic moment with an orbital to effective spin moment ratio of 0.8, an in-plane easy axis of magnetization, and large magnetic anisotropy. Our simulations suggest an antiferromagnetic ground state, which is compatible with the experimental findings. Such a Co-HOTP metal-organic network exemplifies how on-surface chemistry can enable the design of field-robust antiferromagnetic materials.
Keyphrases
- molecularly imprinted
- high resolution
- density functional theory
- molecular dynamics
- single molecule
- electron microscopy
- reduced graphene oxide
- computed tomography
- optical coherence tomography
- solid phase extraction
- quantum dots
- dual energy
- water soluble
- mass spectrometry
- living cells
- single cell
- tandem mass spectrometry
- sensitive detection
- label free