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Bi Alloying into Rare Earth Double Perovskites Enhances Synthesizability and Visible Light Absorption.

Paul F NewhouseLan ZhouMitsutaro UmeharaDavid A BoydEdwin SoedarmadjiJoel A HaberJohn M Gregoire
Published in: ACS combinatorial science (2020)
A high throughput combinatorial synthesis utilizing inkjet printing of precursor inks was used to rapidly evaluate Bi-alloying into double perovskite oxides for enhanced visible light absorption. The fast visual screening of photo image scans of the library plates identifies 4-metal oxide compositions displaying an increase in light absorption, which subsequent UV-vis spectroscopy indicates is due to bandgap reduction. Structural characterization by X-ray diffraction (XRD) and Raman spectroscopy demonstrates that the visually darker composition range contains Bi-alloyed Sm2MnNiO6 (double perovskite structure), of the form (Bi,Sm)2MnNiO6. Bi alloying not only increases the visible absorption but also facilitates crystallization of this structure at the relatively low annealing temperature of 615 °C. Investigation of additional seven combinations of a rare earth (RE) and a transition metal (TM) with Bi and Mn indicates that Bi-alloying on the RE site occurs with similar effect in the family of rare earth oxide double perovskites.
Keyphrases
  • visible light
  • high throughput
  • raman spectroscopy
  • transition metal
  • high resolution
  • deep learning
  • genome wide
  • magnetic resonance imaging
  • magnetic resonance
  • single molecule
  • dna methylation
  • dual energy