Oxygen ionic conductivity through zirconia (ZrO2) is essential to the performance of solid oxide fuel cells, thermal barrier coatings, and zirconium alloys for nuclear fuel cladding. Since sulfur (S) atoms can replace oxygen atoms at ZrO2 surface or even induce formation of homogeneous zirconium oxysulfide (ZrOS) structure at high S partial pressure, we study defect migration and formation in both cubic zirconia (c-ZrO2) and ZrOS under different electron and element chemical potentials using density functional theory. Our calculations show that S addition to zirconia, either by doping or through gas diffusion, increases both the formation energy and migration barrier of doubly positively charged oxygen vacancies. Since the charged oxygen va...
In this work, we quantify oxygen self-diffusion in monoclinic-phase zirconium oxide as a function of...
Classical molecular dynamics simulation has been used to study ionic transport inscandia-stabilized ...
Zirconium doping in cerium oxide, as a result of intentional material engineering or unintentional i...
Electrolytes with high ionic conductivity at lower temperatures are the prerequisite for the success...
Electrolytes with high ionic conductivity at lower temperatures are the prerequisite for the success...
Based on ab initio and classical molecular-dynamics simulations, we investigate the role of vacancy-...
Zirconia (ZrO2) is of great importance as a support for systems where high ionic conductivity and me...
In this work, we quantify oxygen self-diffusion in monoclinic-phase zirconium oxide as a function of...
The interest in the search of cheap and powerful energy sources increases with technology developmen...
Yttria-stabilized zirconia s high oxygen diffusivity and corresponding high ionic conductivity, and ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...
We have used molecular dynamics simulations and energy minimization calculations to examine defect e...
For the development of solid oxide fuel cells (SOFC) and high-temperature electrolysis an electrolyt...
Yttria-stabilized zirconia (YSZ) is widely used as an electrolyte in solid oxide fuel cells. Much of...
The electronic and ionic conductivities of ZrO2 were determined as a func-tion of temperature, oxyge...
In this work, we quantify oxygen self-diffusion in monoclinic-phase zirconium oxide as a function of...
Classical molecular dynamics simulation has been used to study ionic transport inscandia-stabilized ...
Zirconium doping in cerium oxide, as a result of intentional material engineering or unintentional i...
Electrolytes with high ionic conductivity at lower temperatures are the prerequisite for the success...
Electrolytes with high ionic conductivity at lower temperatures are the prerequisite for the success...
Based on ab initio and classical molecular-dynamics simulations, we investigate the role of vacancy-...
Zirconia (ZrO2) is of great importance as a support for systems where high ionic conductivity and me...
In this work, we quantify oxygen self-diffusion in monoclinic-phase zirconium oxide as a function of...
The interest in the search of cheap and powerful energy sources increases with technology developmen...
Yttria-stabilized zirconia s high oxygen diffusivity and corresponding high ionic conductivity, and ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...
We have used molecular dynamics simulations and energy minimization calculations to examine defect e...
For the development of solid oxide fuel cells (SOFC) and high-temperature electrolysis an electrolyt...
Yttria-stabilized zirconia (YSZ) is widely used as an electrolyte in solid oxide fuel cells. Much of...
The electronic and ionic conductivities of ZrO2 were determined as a func-tion of temperature, oxyge...
In this work, we quantify oxygen self-diffusion in monoclinic-phase zirconium oxide as a function of...
Classical molecular dynamics simulation has been used to study ionic transport inscandia-stabilized ...
Zirconium doping in cerium oxide, as a result of intentional material engineering or unintentional i...