Observing and Modeling the Sequential Pairwise Reactions that Drive Solid-State Ceramic Synthesis.
basic_science · Level V
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- Record sourced from PubMed, PMID 33949743.
- Also identified by DOI 10.1002/adma.202100312.
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Abstract
Solid-state synthesis from powder precursors is the primary processing route to advanced multicomponent ceramic materials. Designing reaction conditions and precursors for ceramic synthesis can be a laborious, trial-and-error process, as heterogeneous mixtures of precursors often evolve through a complicated series of reaction intermediates. Here, ab initio thermodynamics is used to model which pair of precursors has the most reactive interface, enabling the understanding and anticipation of which non-equilibrium intermediates form in the early stages of a solid-state reaction. In situ X-ray diffraction and in situ electron microscopy are then used to observe how these initial intermediates influence phase evolution in the synthesis of the classic high-temperature superconductor YBa<sub>2</sub> Cu<sub>3</sub> O<sub>6+</sub> <sub>x</sub> <sub> </sub> (YBCO). The model developed herein rationalizes how the replacement of the traditional BaCO<sub>3</sub> precursor with BaO<sub>2</sub> redirects phase evolution through a low-temperature eutectic melt, facilitating the formation of YBCO in 30 min instead of 12+ h. Precursor selection plays an important role in tuning the thermodynamics of interfacial reactions and emerges as an important design parameter in planning kinetically favorable synthesis pathways to complex ceramic materials.