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Ultra-low thermal expansion realized in giant negative thermal expansion materials through self-compensation

机译:通过自我补偿,超低热膨胀在巨大的负热膨胀材料中实现

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Materials with zero thermal expansion (ZTE) or precisely tailored thermal expansion are in urgent demand of modern industries. However, the overwhelming majority of materials show positive thermal expansion. To develop ZTE or negative thermal expansion (NTE) materials as compensators has become an important challenge. Here, we present the evidence for the realization of ultra-low thermal expansion in Mn–Co–Ge–In particles. The bulk with the Nisub2/subIn-type hexagonal structure undergoes giant NTE owing to a martensitic magnetostructural transition. The major finding is that the thermal expansion behavior can be totally controlled by modulating the crystallinity degree and phase transition from atomic scale. Self-compensation effect leads to ultra-low thermal expansion with a linear expansion coefficient as small as +0.68 × 10sup?6/sup/K over a wide temperature range around room temperature. The present study opens an avenue to reach ZTE particularly from the large class of giant NTE materials based on phase transition.
机译:具有零热膨胀(中兴)或精确定制的热膨胀的材料是现代行业的迫切需求。然而,绝大多数材料显示出正热膨胀。开发中兴或负热膨胀(NTE)材料作为补偿器已成为一个重要的挑战。在这里,我们提出了在MN-Co-Ge-in-in颗粒中实现超低热膨胀的证据。由于马氏体磁性结构转变,具有Ni 2 型六边形结构的块状物体。主要发现是通过调节原子尺度的结晶度和相位过渡来完全控制热膨胀行为。自补偿效果导致超低的热膨胀,线性膨胀系数小于室温宽温度范围内的+ 0.68×10 Δ6 / k。本研究开设了一个途径,尤其是基于相变的大类巨型NTE材料。

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