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The thermodynamic scale of inorganic crystalline metastability

机译:无机晶体亚稳态的热力学尺度

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摘要

The space of metastable materials offers promising new design opportunities for next-generation technological materials, such as complex oxides, semiconductors, pharmaceuticals, steels, and beyond. Although metastable phases are ubiquitous in both nature and technology, only a heuristic understanding of their underlying thermodynamics exists. We report a large-scale data-mining study of the Materials Project, a high-throughput database of density functional theory–calculated energetics of Inorganic Crystal Structure Database structures, to explicitly quantify the thermodynamic scale of metastability for 29,902 observed inorganic crystalline phases. We reveal the influence of chemistry and composition on the accessible thermodynamic range of crystalline metastability for polymorphic and phase-separating compounds, yielding new physical insights that can guide the design of novel metastable materials. We further assert that not all low-energy metastable compounds can necessarily be synthesized, and propose a principle of ‘remnant metastability’—that observable metastable crystalline phases are generally remnants of thermodynamic conditions where they were once the lowest free-energy phase.
机译:亚稳材料的空间为下一代技术材料提供了有希望的新设计机会,例如复杂氧化物,半导体,制药,钢铁等。尽管在本质和技术上都存在亚稳态相,但仅存在对其潜在热力学的启发式理解。我们报告了材料项目的大规模数据挖掘研究,该项目是由密度泛函理论计算得出的无机晶体结构数据库结构的高通量数据库,旨在明确量化29,902个观察到的无机结晶相的亚稳热力学规模。我们揭示了化学和组成对多晶型和相分离化合物的结晶亚稳的可接近热力学范围的影响,产生了可指导新亚稳材料设计的新物理见解。我们进一步断言并非所有的低能亚稳态化合物都必须合成,并提出了“残余亚稳”原理-可观察到的亚稳态结晶相通常是热力学条件的残余物,它们曾经是最低的自由能相。

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