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Superconductivity in the YIr2Si2 and LaIr2Si2 Polymorphs

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arxiv 1205.6667 v2 pith:AATZSX6U submitted 2012-05-30 cond-mat.supr-con

Superconductivity in the YIr2Si2 and LaIr2Si2 Polymorphs

classification cond-mat.supr-con
keywords superconductivitycompoundslair2si2structuretemperatureyir2si2belowcrystal
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We report on existence of superconductivity in YIr2Si2 and LaIr2Si2 compounds in relation to crystal structure. The two compounds crystallize in two structural polymorphs, both tetragonal. The high temperature polymorph (HTP) adopts the CaBe2Ge2-structure type (space group P4/nmm) while the low temperature polymorph (LTP) is of the ThCr2Si2 type (I4/mmm). By studying polycrystals prepared by arc melting we have observed that the rapidly cooled samples retain the HTP even at room temperature (RT) and below. Annealing such samples at 900C followed by slow cooling to RT provides the LTP. Both, the HTP and LTP were subsequently studied with respect to magnetism and superconductivity by electrical resistivity, magnetization, AC susceptibility and specific heat measurements. The HTP and LTP of both compounds respectively, behave as Pauli paramagnets. Superconductivity has been found exclusively in the HTP of both compounds below Tsc (= 2.52 K in YIr2Si2 and 1.24 K in LaIr2Si2). The relations of magnetism and superconductivity with the electronic and crystal structure are discussed with comparing experimental data with the results of first principles electronic structure calculations.

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