论文标题

PT取代的Ni2Mn1.4in0.6磁形状记忆Heusler合金改善了晶体学兼容性和磁化可逆性

Improved crystallographic compatibility and magnetocaloric reversibility in Pt substituted Ni2Mn1.4In0.6 magnetic shape memory Heusler alloy

论文作者

Dubey, K. K., Devi, P., Singh, Anupam K., Singh, Sanjay

论文摘要

我们在这里提出了改进的晶体学/几何兼容性和通过使用不同方案的磁性熵变化,使用10%PT取代的NI2MN1.4IN0.6磁性记忆合金,通过测量磁熵变化。 PT的取代将大约50%的热滞后降低至Ni2Mn1.4in0.6。通过奥氏体和马氏体相的晶体兼容性研究了还原热滞后的起源。转换矩阵的计算中的特征值被证明为0.9982,非常接近1(偏差仅为0.18%),这表明在NI1.9PT0.1MN1.1MN1.4IN0.6中,奥斯丁岩和马氏体相之间的晶体兼容性。该合金系统中两个阶段之间的热滞后和晶体学的兼容性非常小,表明奥氏体和马氏体相之间的无应力过渡层(即完美的习惯平面),预计这将提供可逆的马氏体相变,因此也可以具有可逆的磁相位效应(MCE)。在三种不同的测量方案(即等温测量方案(即等温测量协议)下使用磁化曲线)的等温熵变化(ΔSISO)的计算值(ΔSISO)的计算值发现在当前合金系统中表明可逆MCE几乎相同。我们的工作提供了设计新的磁性记忆赫斯勒合金以进行磁制冷的途径,并建议将上述任何测量方案用于计算满足几何兼容条件的材料的ΔSISO。

We present here the improved crystallographic/geometric compatibility and magnetocaloric reversibility by measurement of magnetic entropy change using different protocols in 10% Pt substituted Ni2Mn1.4In0.6 magnetic shape memory alloy. The substitution of Pt reduces the thermal hysteresis about 50% to the Ni2Mn1.4In0.6. The origin of the reduced thermal hysteresis is investigated by the crystallographic compatibility of the austenite and martensite phases. The calculated middle eigenvalue of the transformation matrix turned out to be 0.9982, which is very close to 1 (deviation is only 0.18%) suggests for the crystallographic compatibility between the austenite and martensite phases in Ni1.9Pt0.1Mn1.4In0.6. A very small thermal hysteresis and crystallographic compatibility between two phases in this alloy system indicate a stress-free transition layer (i.e. perfect habit plane) between the austenite and martensite phase, which is expected to give reversible martensite phase transition and therefore reversible magnetocaloric effect (MCE) as well. The calculated value of the isothermal entropy change (ΔSiso) using the magnetization curve under three different measurement protocols (i.e. isothermal, loop, and isofield measurement protocol) is found to be nearly same indicating a reversible MCE in the present alloy system. Our work provides a path to design new magnetic shape memory Heusler alloys for magnetic refrigeration and also suggest that any of the above measurement protocol can be used for the calculation of ΔSiso for materials satisfying geometrical compatibility condition.

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