Semantic Scholar Open Access 2018 232 sitasi

Physical descriptor for the Gibbs energy of inorganic crystalline solids and temperature-dependent materials chemistry

Christopher J. Bartel Samantha L. Millican Ann M. Deml John R. Rumptz W. Tumas +5 lainnya

Abstrak

The Gibbs energy, G, determines the equilibrium conditions of chemical reactions and materials stability. Despite this fundamental and ubiquitous role, G has been tabulated for only a small fraction of known inorganic compounds, impeding a comprehensive perspective on the effects of temperature and composition on materials stability and synthesizability. Here, we use the SISSO (sure independence screening and sparsifying operator) approach to identify a simple and accurate descriptor to predict G for stoichiometric inorganic compounds with ~50 meV atom−1 (~1 kcal mol−1) resolution, and with minimal computational cost, for temperatures ranging from 300–1800 K. We then apply this descriptor to ~30,000 known materials curated from the Inorganic Crystal Structure Database (ICSD). Using the resulting predicted thermochemical data, we generate thousands of temperature-dependent phase diagrams to provide insights into the effects of temperature and composition on materials synthesizability and stability and to establish the temperature-dependent scale of metastability for inorganic compounds. Materials databases currently neglect the temperature effect on compound thermodynamics. Here the authors introduce a Gibbs energy descriptor enabling the high-throughput prediction of temperature-dependent thermodynamics across a wide range of compositions and temperatures for inorganic solids.

Penulis (10)

C

Christopher J. Bartel

S

Samantha L. Millican

A

Ann M. Deml

J

John R. Rumptz

W

W. Tumas

A

A. Weimer

S

S. Lany

V

V. Stevanović

C

C. Musgrave

A

A. Holder

Format Sitasi

Bartel, C.J., Millican, S.L., Deml, A.M., Rumptz, J.R., Tumas, W., Weimer, A. et al. (2018). Physical descriptor for the Gibbs energy of inorganic crystalline solids and temperature-dependent materials chemistry. https://doi.org/10.1038/s41467-018-06682-4

Akses Cepat

Lihat di Sumber doi.org/10.1038/s41467-018-06682-4
Informasi Jurnal
Tahun Terbit
2018
Bahasa
en
Total Sitasi
232×
Sumber Database
Semantic Scholar
DOI
10.1038/s41467-018-06682-4
Akses
Open Access ✓