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BaAl4derivative phases in the sections {La,Ce}Ni2Si2–{La,Ce}Zn2Si2: phase relations, crystal structures and physical properties

机译:{La,Ce} Ni2Si2– {La,Ce} Zn2Si2部分中的BaAl4衍生物相:相关系,晶体结构和物理性质

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摘要

Phase relations and crystal structures have been evaluated within the sections LaNi2Si2–LaZn2Si2 and CeNi2Si2–CeZn2Si2 at 800 °C using electron microprobe analysis and X-ray powder and single crystal structure analyses. Although the systems La–Zn–Si and Ce–Zn–Si at 800 °C do not reveal compounds such as “LaZn2Si2” or “CeZn2Si2”, solid solutions {La,Ce}(Ni1−xZnx)2Si2 exist with the Ni/Zn substitution starting from {La,Ce}Ni2Si2 (ThCr2Si2-type; I4/mmm) up to x = 0.18 for Ce(Ni1−xZnx)2Si2 and x = 0.125 for La(Ni1−xZnx)2Si2. For higher Zn-contents 0.25 ≤ x ≤ 0.55 the solutions adopt the CaBe2Ge2-type (P4/nmm). The investigations are backed by single crystal X-ray diffraction data for Ce(Ni0.61Zn0.39)2Si2 (P4/nmm; a = 0.41022(1) nm, c = 0.98146(4) nm; RF = 0.012) and by Rietveld refinement for La(Ni0.56Zn0.44)2Si2 (P4/nmm; a = 0.41680(6) nm, c = 0.99364(4) nm; RF = 0.043). Interestingly, the Ce–Zn–Si system contains a ternary phase CeZn2(Si1−xZnx)2 of the ThCr2Si2 structure type (0.25 ≤ x ≤ 0.30 at 600 °C), which forms peritectically at T = 695 °C but does not include the composition “CeZn2Si2”. The primitive high temperature tetragonal phase with the CaBe2Ge2-type has also been observed for the first time in the Ce–Ni–Si system at CeNi2+xSi2−x, x = 0.33 (single crystal data, P4/nmm; a = 0.40150(2) nm, c = 0.95210(2) nm; RF = 0.0163). Physical properties (from 400 mK to 300 K) including specific heat, electrical resistivity and magnetic susceptibility have been elucidated for Ce(Ni0.61Zn0.39)2Si2 and La(Ni0.56Zn0.44)2Si2. Ce(Ni0.61Zn0.39)2Si2 exhibits a Kondo-type ground state. Low temperature specific heat data of La(Ni0.56Zn0.44)2Si2 suggest a spin fluctuation scenario with an enhanced value of the Sommerfeld constant.
机译:使用电子探针分析,X射线粉末分析和单晶结构分析,在800°C下评估了LaNi2Si2-LaZn2Si2和CeNi2Si2-CeZn2Si2部分的相关系和晶体结构。尽管在800°C时系统La–Zn–Si和Ce–Zn–Si不会显示“ LaZn2Si2”或“ CeZn2Si2”之类的化合物,但是固溶体{La,Ce}(Ni1-xZnx)2Si2与Ni /从{La,Ce} Ni2Si2(ThCr2Si2型; I4 / mmm)开始的Zn取代对于Ce(Ni1-xZnx)2Si2 x = 0.18,对于La(Ni1-xZnx)2Si2 x = 0.125。对于较高的Zn含量0.25≤x≤0.55,溶液采用CaBe2Ge2型(P4 / nmm)。 Ce(Ni0.61Zn0.39)2Si2(P4 / nmm; a = 0.41022(1)nm,c = 0.98146(4)nm; RF = 0.012)的单晶X射线衍射数据为研究提供了支持La(Ni0.56Zn0.44)2Si2(P4 / nmm; a = 0.41680(6)nm,c = 0.99364(4)nm; RF = 0.043)的精细化。有趣的是,Ce–Zn–Si系统包含ThCr2Si2结构类型的三元相CeZn2(Si1-xZnx)2(在600°C时为0.25≤x≤0.30),其在T = 695°C时呈周向形成,但不包括组成“ CeZn2Si2”。在Ce–Ni–Si系统中,也首次在CeNi2 + xSi2-x处观察到具有CaBe2Ge2型的原始高温四方相,x = 0.33(单晶数据,P4 / nmm; a = 0.40150( 2)nm,c = 0.95210(2)nm; RF = 0.0163)。已经阐明了Ce(Ni0.61Zn0.39)2Si2和La(Ni0.56Zn0.44)2Si2的物理性质(从400 mK到300 K),包括比热,电阻率和磁化率。 Ce(Ni0.61Zn0.39)2Si2具有近藤型基态。 La(Ni0.56Zn0.44)2Si2的低温比热数据表明,自旋涨落的情况下Sommerfeld常数值增大。

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