Yu Chengyi, Lin Kun, Jiang Suihe, Cao Yili, Li Wenjie, Wang Yilin, Chen Yan, An Ke, You Li, Kato Kenichi, Li Qiang, Chen Jun, Deng Jinxia, Xing Xianran
Beijing Advanced Innovation Center for Materials Genome Engineering, Institute of Solid State Chemistry, Department of Physical Chemistry, University of Science and Technology Beijing, Beijing, China.
Neutron Scattering Division, Oak Ridge National Laboratory, Oak Ridge, TN, USA.
Nat Commun. 2021 Aug 4;12(1):4701. doi: 10.1038/s41467-021-25036-1.
Zero thermal expansion (ZTE) alloys possess unique dimensional stability, high thermal and electrical conductivities. Their practical application under heat and stress is however limited by their inherent brittleness because ZTE and plasticity are generally exclusive in a single-phase material. Besides, the performance of ZTE alloys is highly sensitive to change of compositions, so conventional synthesis methods such as alloying or the design of multiphase to improve its thermal and mechanical properties are usually inapplicable. In this study, by adopting a one-step eutectic reaction method, we overcome this challenge. A natural dual-phase composite with ZTE and plasticity was synthesized by melting 4 atom% holmium with pure iron. The dual-phase alloy shows moderate plasticity and strength, axial zero thermal expansion, and stable thermal cycling performance as well as low cost. By using synchrotron X-ray diffraction, in-situ neutron diffraction and microscopy, the critical mechanism of dual-phase synergy on both thermal expansion regulation and mechanical property enhancement is revealed. These results demonstrate that eutectic reaction is likely to be a universal and effective method for the design of high-performance intermetallic-compound-based ZTE alloys.
零热膨胀(ZTE)合金具有独特的尺寸稳定性、高导热性和导电性。然而,由于在单相材料中ZTE和塑性通常是相互排斥的,其固有脆性限制了它们在热和应力条件下的实际应用。此外,ZTE合金的性能对成分变化高度敏感,因此通常不适用于通过合金化或多相设计等传统合成方法来改善其热性能和机械性能。在本研究中,通过采用一步共晶反应法,我们克服了这一挑战。通过将4原子%的钬与纯铁熔化,合成了一种具有ZTE和塑性的天然双相复合材料。该双相合金具有适度的塑性和强度、轴向零热膨胀、稳定的热循环性能以及低成本。通过使用同步加速器X射线衍射、原位中子衍射和显微镜,揭示了双相协同作用对热膨胀调节和机械性能增强的关键机制。这些结果表明,共晶反应可能是设计高性能金属间化合物基ZTE合金的一种通用且有效的方法。