Phase transitions and transport phenomena in Li0.25Cu1.75Se superionic compound
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- Type
- article
- Published
- 2004-12-01
- Cited by
- 11
- References
- 16
- OpenAlex
- https://openalex.org/W2105933276
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:97342232
Keywords
Monoclinic crystal system, Seebeck coefficient, Crystallography, Ionic conductivity, Lithium (medication)
References
- The thermoelectric power of cells with ionic compounds involving ionic and electronic conduction
- Ionic conductivity and chemical diffusion in LixCu2−xSe superionic alloys
- Single crystal neutron diffraction analysis of the cation distribution in the high-temperature phases α-Cu2−xS, α-Cu2−xSe, and α-Ag2Se
- EXAFS and XANES Studies of Superionic Cu2-xSe
- On the Theory of Mixed Conduction with Special Reference to Conduction in Silver Sulfide Group Semiconductors
- Superstructural ordering in low-temperature phase of superionic Cu2Se
- Automatic Three‐Dimensional Fourier Synthesis
- X-ray study of the average structures of Cu2Se and Cu1.8S in the room temperature and the high temperature phases
- On the stoichiometry, space group and polymorphism of TlCu7S4
- EXAFS investigation of mobile-ion density: Cul and Cu2Se contrasted
- Ionic conductivity and chemical diffusion in superionic LixCu2−xS (0 ≤ x ≤ 0.25)
- Physical properties and phase transitions of β Cu2−xSe (0.20≤x≤0.25)
- Vacancy Ordering as the Cause for the Electrical Resistivity Anomalies and Superlattice Modulations inACu7−xS4(A=Tl, K, Rb)
- Bellidoite; a new copper selenide
- The crystal structures of Cu1•8Se, Cu3Se2, α- and γCuSe, CuSe2, and CuSe2II
- Bench-Top Synthesis of Solid-State Copper(I) Sulfides, KCu7-xS4 (x = 0.0, 0.12, 0.34), via Nonaqueous Electrochemistry
Cited by
- Enhancing the thermoelectric performance of β-Cu2Se by incorporating SnSe
- Ionic conduction and chemical diffusion in solid solutions of superionic conductors Cu2X-Me2X (Me = Ag, Li; X = S, Se)
- Grain size effect on diffusion processes in superionic phases Cu1.75Se, Li0.25 Cu1.75Se, and Li0.25 Cu1.75S
- Influence of grain sizes on the ionic conductivity and the chemical diffusion coefficient in copper selenide
- Thermodynamic properties of solid solutions of superionic copper, silver, and lithium chalcogenides
- Enhanced thermoelectric properties of β-Cu2Se by incorporating CuGaSe2
- Enhanced stability and thermoelectric figure-of-merit in copper selenide by lithium doping
- Enhancing thermoelectric performance of Cu2Se by doping Te.
- Electrophysical and thermal properties of NaxCu2-xS (x = 0.05, 0.075, 0.10) and Na0.125Cu1.75S semiconductor alloys
- Some Thermoelectric Phenomena in Copper Chalcogenides Replaced by Lithium and Sodium Alkaline Metals
- Chemical diffusion and ionic conductivity in nonstoichiometric nanocrystalline superionic NaxCu1.75S (x = 0.1, 0.15, 0.2, 0.25) materials
- First-Principles Assisted the Design of High Entropy Thermoelectric Materials Based on Half-Heusler Alloys
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