Rare earth silicate apatites are one-dimensional channel structures that show potential as electrolytes for solid oxide fuel cells (SOFC) due to their high ionic conductivity at intermediate temperatures (500–700 °C). This advantageous property can be attributed to the presence of both interstitial oxygen and cation vacancies, that create diffusion paths which computational studies suggest are less tortuous and have lower activation energies for migration than in stoichiometric compounds. In this work, neutron diffraction of Nd<sub>(28+<i>x</i>)/3</sub>Al<sub><i>x</i></sub>Si<sub>6–<i>x</i></sub>O<sub>26</sub> (0 ≤ <i>x</i> ≤ 1.5) single crystals identified the locations of oxygen interstitials, and allowed the deduction of a dual-path cond...
Lanthanoid silicate apatite solid electrolytes contain one-dimensional channels. These materials dis...
Neodymium silicate apatites are promising intermediate temperature (500°C–700°C) electrolytes for so...
Neodymium silicate apatites are promising intermediate temperature (500°C-700°C) electrolytes for so...
Rare earth silicate apatites are one-dimensional channel structures that show potential as electroly...
Rare earth silicate apatites are one-dimensional channel structures that show potential as electroly...
et al.Rare earth silicate apatites are one-dimensional channel structures that show potential as ele...
Rare earth silicate apatites are one-dimensional channelstructures that show potential as electrolyt...
To better understand the oxide ion conduction mechanism of rare earth silicate apatites as intermedi...
To better understand the oxide ion conduction mechanism of rare earth silicate apatites as intermedi...
Lanthanoid silicates (Ln9.33Si6O26) adopt the hexagonal apatite structure and show potential as soli...
Lanthanoid silicates (Ln9.33Si6O26) adopt the hexagonal apatite structure and are under investigatio...
Lanthanoid silicate apatite solid electrolytes contain one-dimensional channels. These materials dis...
Lanthanoid silicate apatite solid electrolytes contain one-dimensional channels. These materials dis...
Neodymium silicate apatites are promising intermediate temperature (500°C–700°C) electrolytes for so...
Neodymium silicate apatites are promising intermediate temperature (500°C-700°C) electrolytes for so...
Rare earth silicate apatites are one-dimensional channel structures that show potential as electroly...
Rare earth silicate apatites are one-dimensional channel structures that show potential as electroly...
et al.Rare earth silicate apatites are one-dimensional channel structures that show potential as ele...
Rare earth silicate apatites are one-dimensional channelstructures that show potential as electrolyt...
To better understand the oxide ion conduction mechanism of rare earth silicate apatites as intermedi...
To better understand the oxide ion conduction mechanism of rare earth silicate apatites as intermedi...
Lanthanoid silicates (Ln9.33Si6O26) adopt the hexagonal apatite structure and show potential as soli...
Lanthanoid silicates (Ln9.33Si6O26) adopt the hexagonal apatite structure and are under investigatio...
Lanthanoid silicate apatite solid electrolytes contain one-dimensional channels. These materials dis...
Lanthanoid silicate apatite solid electrolytes contain one-dimensional channels. These materials dis...
Neodymium silicate apatites are promising intermediate temperature (500°C–700°C) electrolytes for so...
Neodymium silicate apatites are promising intermediate temperature (500°C-700°C) electrolytes for so...