Surface morphology-induced spin-crossover-inactive high-spin state in a coordination framework
Shun Sakaida, Kazuya Otsubo, Ken‐ichi Otake, Shogo Kawaguchi, Mitsuhiko Maesato, Susumu Kitagawa, Hiroshi Kitagawa
Abstract
Shun Sakaida, Kazuya Otsubo, Ken‐ichi Otake, Shogo Kawaguchi, Mitsuhiko Maesato, Susumu Kitagawa, Hiroshi Kitagawa
Abstract
Here we report a surface morphology-induced spin state control in ultrathin films of a spin-crossover (SCO) material. The surface microstructure of film domains exhibited selectivity, to stabilize the SCO-active high-spin (HS) or SCO-inactive high-spin (HS2) states. To date, the latter has only been confirmed in the bulk counterpart at gigapascal pressure.
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Here we report a surface morphology-induced spin state control in ultrathin films of a spin-crossover (SCO) material. The surface microstructure of film domains exhibited selectivity, to stabilize the SCO-active high-spin (HS) or SCO-inactive high-spin (HS2) states. To date, the latter has only been confirmed in the bulk counterpart at gigapascal pressure.
Key concepts: Spin crossover, Spin states, Spin (aerodynamics), Morphology (biology), Materials science, Condensed matter physics, Microstructure, Chemical physics