2009•Physical Review BRequires access

Structural and magnetic phase transitions in Na1−δFeAs

Shiliang Li, Clarina dela Cruz, Qingzhen Huang, G. F. Chen, Tian‐Long Xia, J. L. Luo, Nanlin Wang, Pengcheng Dai

Open publisher page 149 citations

Abstract

We use neutron scattering to study the spin and lattice structures of single crystal and powder samples of ${\text{Na}}_{1\ensuremath{-}\ensuremath{\delta}}\text{FeAs}$ $({T}_{c}=23\text{ }\text{K})$. Upon cooling from room temperature, the system goes through a series of phase transitions: first changing the crystal symmetry from tetragonal to orthorhombic at 49 K, then ordering antiferromagnetically with a spin structure similar to that of LaFeAsO and a small moment $(0.09\ifmmode\pm\else\textpm\fi{}0.04{\ensuremath{\mu}}_{B})$, and finally becoming superconducting below about 23 K. These results confirm that antiferromagnetic order is ubiquitous for the parent compounds of the iron arsenide superconductors and suggest that the separated structural and magnetic phase-transition temperatures are due to the reduction in the $c$-axis exchange coupling of the system.

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What this paper is about

We use neutron scattering to study the spin and lattice structures of single crystal and powder samples of ${\text{Na}}_{1\ensuremath{-}\ensuremath{\delta}}\text{FeAs}$ $({T}_{c}=23\text{ }\text{K})$. Upon cooling from room temperature, the system goes through a series of phase transitions: first changing the crystal symmetry from tetragonal to orthorhombic at 49 K, then ordering antiferromagnetically with a spin structure similar to that of LaFeAsO and a small moment $(0.09\ifmmode\pm\else\textpm\fi{}0.04{\ensuremath{\mu}}_{B})$, and finally becoming superconducting below about 23 K. These results confirm that antiferromagnetic order is ubiquitous for the parent compounds of the iron arsenide superconductors and suggest that the separated structural and magnetic phase-transition temperatures are due to the reduction in the $c$-axis exchange coupling of the system.

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Available abstract

We use neutron scattering to study the spin and lattice structures of single crystal and powder samples of ${\text{Na}}_{1\ensuremath{-}\ensuremath{\delta}}\text{FeAs}$ $({T}_{c}=23\text{ }\text{K})$. Upon cooling from room temperature, the system goes through a series of phase transitions: first changing the crystal symmetry from tetragonal to orthorhombic at 49 K, then ordering antiferromagnetically with a spin structure similar to that of LaFeAsO and a small moment $(0.09\ifmmode\pm\else\textpm\fi{}0.04{\ensuremath{\mu}}_{B})$, and finally becoming superconducting below about 23 K. These results confirm that antiferromagnetic order is ubiquitous for the parent compounds of the iron arsenide superconductors and suggest that the separated structural and magnetic phase-transition temperatures are due to the reduction in the $c$-axis exchange coupling of the system.

Key concepts: Tetragonal crystal system, Antiferromagnetism, Condensed matter physics, Orthorhombic crystal system, Superconductivity, Materials science, Crystallography, Crystal structure

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