info:eu-repo/semantics/article
Engineering the Eigenstates of Coupled Spin- 1/2 Atoms on a Surface
Fecha
2017-11Registro en:
Yang, Kai; Bae, Yujeong; Paul, William; Natterer, Fabian D.; Willke, Philip; et al.; Engineering the Eigenstates of Coupled Spin- 1/2 Atoms on a Surface; American Physical Society; Physical Review Letters; 119; 22; 11-2017; 1-5; 227206
0031-9007
1079-7114
CONICET Digital
CONICET
Autor
Yang, Kai
Bae, Yujeong
Paul, William
Natterer, Fabian D.
Willke, Philip
Lado, Jose Luis
Ferrón, Alejandro
Choi, Taeyoung
Fernandez Rossier, Joaquín
Heinrich, Andreas J.
Lutz, Christopher P.
Resumen
Quantum spin networks having engineered geometries and interactions are eagerly pursued for quantum simulation and access to emergent quantum phenomena such as spin liquids. Spin-1/2 centers are particularly desirable, because they readily manifest coherent quantum fluctuations. Here we introduce a controllable spin-1/2 architecture consisting of titanium atoms on a magnesium oxide surface. We tailor the spin interactions by atomic-precision positioning using a scanning tunneling microscope (STM) and subsequently perform electron spin resonance on individual atoms to drive transitions into and out of quantum eigenstates of the coupled-spin system. Interactions between the atoms are mapped over a range of distances extending from highly anisotropic dipole coupling to strong exchange coupling. The local magnetic field of the magnetic STM tip serves to precisely tune the superposition states of a pair of spins. The precise control of the spin-spin interactions and ability to probe the states of the coupled-spin network by addressing individual spins will enable the exploration of quantum many-body systems based on networks of spin-1/2 atoms on surfaces.