Layer-by-Layer Assembly of a [Fe-(pyrazine){Pd(CN)4}] Spin Crossover Thin Film.
Kayleigh A McElveenGuanhua HaoPrescott Earl EvansThilini K EkanayakaAlpha T N'DiayeWai Kiat ChinRebecca Y LaiPublished in: Journal of physics. Condensed matter : an Institute of Physics journal (2024)
[Fe-(pyrazine){Pd(CN)4}] (pyrazine = pz) thin films were fabricated using a layer-by-layer assembly approach, a method known to be tunable, versatile, and scalable, since thin films are better-suited for industrial applications. In this study, [Fe-(pz){Pd(CN)4}] powder was synthesized, and the results obtained from a vibrating sample magnetometer verified the presence of an abrupt hysteresis loop with widths of 45 K centered around 300 K, indicating good cooperativity. Super conducting quantum interference device magnetometry results indicated a slow spin transition with temperature but with evidence of hysteresis for thin film samples. X-ray absorption analysis provided further support of the SCO behavior but differs from the magnetometry because the spin state transition at the surface differs from the bulk of the thin film. X-ray photoelectron spectroscopy provides some insight into issues with the film deposition process and multiplex fitting was used to further support the claim that the surface of the film is different than the bulk of the film.
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Keyphrases
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- reduced graphene oxide
- ionic liquid
- metal organic framework
- molecular dynamics
- squamous cell carcinoma
- heavy metals
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- randomized controlled trial
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- contrast enhanced