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Updated: May 2, 2026

Stable Aqueous Suspensions of Manganese Ferrite Clusters with Tunable Nanoscale Dimension and Composition
Published on: February 5, 2022
Ferromagnetism and Borromean binding in three-fermion clusters
1Hewlett-Packard Company, Printing and Personal Systems, Corvallis, Oregon 97330, USA.
Investigating a three-fermion system reveals instability in spin-1/2 trions, while spin-3/2 trions exhibit unique Borromean binding, transitioning to ferromagnetism in strong coupling.
Area of Science:
- Condensed matter physics
- Quantum mechanics
- Many-body systems
Background:
- Understanding emergent phenomena in quantum systems is crucial.
- Fermionic systems with competing interactions present complex behaviors.
- The formation and stability of few-body bound states are key research areas.
Purpose of the Study:
- To solve the three-particle spin-1/2 fermion problem on a 2D lattice.
- To investigate the binding conditions and stability of trions.
- To explore the system's behavior under varying interaction strengths and total spin.
Main Methods:
- Discretization of the Schrödinger equation in momentum space.
- Analysis of a three-particle system with on-site repulsion and nearest-neighbor attraction.
- Calculation of energies for bound complexes (trions).
Main Results:
- Identified a wide region of instability for spin-1/2 trions, decaying into a singlet pair and a free fermion.
- Attributed spin-1/2 trion instability to wave function node formation.
- Observed Borromean binding for spin-3/2 trions, forming without pre-existing bound pairs.
- Found a transition from spin-1/2 to a ferromagnetic spin-3/2 ground state in the strong coupling limit.
Conclusions:
- The study elucidates the delicate balance governing trion formation and stability.
- Borromean binding in the spin-3/2 sector highlights novel quantum phenomena.
- The observed ground state transition supports theoretical predictions like the Nagaoka theorem.
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