Class-II MV YBaFe$_{2}$O$_{5}$ Structure: AB2C5D_oP9_47_a_l_gjk_b-001

Picture of Structure; Click for Big Picture
Prototype BaFe$_{2}$O$_{5}$Y
AFLOW prototype label AB2C5D_oP9_47_a_l_gjk_b-001
ICSD 281205
CCDC 1721779
Pearson symbol oP9
Space group number 47
Space group symbol $Pmmm$
AFLOW prototype command aflow --proto=AB2C5D_oP9_47_a_l_gjk_b-001
--params=$a, \allowbreak b/a, \allowbreak c/a, \allowbreak x_{4}, \allowbreak x_{5}, \allowbreak x_{6}$

Other compounds with this structure

EuBaCo$_{2}$O$_{5}$,  EuBaFe$_{2}$O$_{5}$,  GdBaFe$_{2}$O$_{5}$,  NdBaFe$_{2}$O$_{5}$,  TbBaFe$_{2}$O$_{5}$


  • YBaFe$_{2}$O$_{5}$ is a mixed-valence compound which undergoes several magnetic transitions as it cools (Woodward, 2003):
    • At high temperatures it is characterized as a Class-III MV (mixed valence) paramagnetic compound with equivalent iron atoms. It exists in a double perovskite structure in tetragonal space group $P4/mmm$ #123. This appears to be related to YBaCuFeO$_{5}$, but we have no experimental confirmation of that.
    • Below 430K the system distorts into orthorhombic space group $Pmmm$ #47 and becomes antiferromagnetic. (this structure) Below 335K the iron atoms become multivalent, splitting into Fe$^{2.5\pm\delta}$ sites. This is known as a Class-II MV structure.
    • Below 308K the iron atoms are fully ordered with charges Fe$^{2+}$ and Fe$^{3+}$, forming a Class-I MV structure. The space group changes to $Pmma$ #51.
    .
  • Here we use the data taken by (Woodward, 2003) at 320K.
  • If we allow an uncertainty of 0.1Å in the atomic positions the space group changes to $P4/mmm$ and is nearly identical with the structure of YBaCuFeO$_{5}$ with the copper atoms removed and the iron sites fully occupied.

\[ \begin{array}{ccc} \mathbf{a_{1}}&=&a \,\mathbf{\hat{x}}\\\mathbf{a_{2}}&=&b \,\mathbf{\hat{y}}\\\mathbf{a_{3}}&=&c \,\mathbf{\hat{z}} \end{array}\]

Basis vectors

Lattice coordinates Cartesian coordinates Wyckoff position Atom type
$\mathbf{B_{1}}$ = $0$ = $0$ (1a) Ba I
$\mathbf{B_{2}}$ = $\frac{1}{2} \, \mathbf{a}_{1}$ = $\frac{1}{2}a \,\mathbf{\hat{x}}$ (1b) Y I
$\mathbf{B_{3}}$ = $\frac{1}{2} \, \mathbf{a}_{2}+\frac{1}{2} \, \mathbf{a}_{3}$ = $\frac{1}{2}b \,\mathbf{\hat{y}}+\frac{1}{2}c \,\mathbf{\hat{z}}$ (1g) O I
$\mathbf{B_{4}}$ = $x_{4} \, \mathbf{a}_{1}+\frac{1}{2} \, \mathbf{a}_{3}$ = $a x_{4} \,\mathbf{\hat{x}}+\frac{1}{2}c \,\mathbf{\hat{z}}$ (2j) O II
$\mathbf{B_{5}}$ = $- x_{4} \, \mathbf{a}_{1}+\frac{1}{2} \, \mathbf{a}_{3}$ = $- a x_{4} \,\mathbf{\hat{x}}+\frac{1}{2}c \,\mathbf{\hat{z}}$ (2j) O II
$\mathbf{B_{6}}$ = $x_{5} \, \mathbf{a}_{1}+\frac{1}{2} \, \mathbf{a}_{2}$ = $a x_{5} \,\mathbf{\hat{x}}+\frac{1}{2}b \,\mathbf{\hat{y}}$ (2k) O III
$\mathbf{B_{7}}$ = $- x_{5} \, \mathbf{a}_{1}+\frac{1}{2} \, \mathbf{a}_{2}$ = $- a x_{5} \,\mathbf{\hat{x}}+\frac{1}{2}b \,\mathbf{\hat{y}}$ (2k) O III
$\mathbf{B_{8}}$ = $x_{6} \, \mathbf{a}_{1}+\frac{1}{2} \, \mathbf{a}_{2}+\frac{1}{2} \, \mathbf{a}_{3}$ = $a x_{6} \,\mathbf{\hat{x}}+\frac{1}{2}b \,\mathbf{\hat{y}}+\frac{1}{2}c \,\mathbf{\hat{z}}$ (2l) Fe I
$\mathbf{B_{9}}$ = $- x_{6} \, \mathbf{a}_{1}+\frac{1}{2} \, \mathbf{a}_{2}+\frac{1}{2} \, \mathbf{a}_{3}$ = $- a x_{6} \,\mathbf{\hat{x}}+\frac{1}{2}b \,\mathbf{\hat{y}}+\frac{1}{2}c \,\mathbf{\hat{z}}$ (2l) Fe I

References

  • P. M. Woodward and P. Karen, Mixed Valence YBaFe$_{2}$O$_{5}$, Inorg. Chem. 42, 1121–1129 (2003), doi:10.1021/ic026022z.

First cited in

  • N. Anderson, M. J. Mehl, H. Eckert, S. Divilov, X. Campilongo, S. Curtarolo, The AFLOW Library of Crystallographic Prototypes: Part 5. Submitted to Computational Materials Science (2026).

Geometry files


Prototype Generator

aflow --proto=AB2C5D_oP9_47_a_l_gjk_b --params=$a,b/a,c/a,x_{4},x_{5},x_{6}$

Species:

Running:

Output: