Reentrant glass transition leading to ultrastable metallic glass

IF 21.1 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Qing Du , Xiongjun Liu , Huiyang Fan , Qiaoshi Zeng , Yuan Wu , Hui Wang , Debaditya Chatterjee , Yang Ren , Yubin Ke , Paul M. Voyles , Zhaoping Lu , Evan Ma
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引用次数: 38

Abstract

Polyamorphs are often observed in amorphous matters, and a representative example is the reentrant glass transition in colloid systems. For metallic amorphous alloys, however, the cases reported so far are limited to metallic glasses (MGs) that undergo electronic transitions under gigapascal applied pressure, or the presence of two liquids at the same composition. Here we report the first observation of a reentrant glass transition in MGs. This unusual reentrant glass transition transforms an MG from its as-quenched state (Glass I) to an ultrastable state (Glass II), mediated by the supercooled liquid of Glass I. Specifically, upon heating to above its glass transition temperature under ambient pressure, Glass I first transitions into its supercooled liquid, which then transforms into a new Glass II, accompanied by an exothermic peak in calorimetric scan, together with a precipitous drop in volume, electrical resistance and specific heat, as well as clear evidence of local structural ordering on the short-to-medium-range scale revealed via in-situ synchrotron X-ray scattering. Atomistic simulations indicate enhanced ordering of locally favored motifs to establish correlations in the medium range that resemble those in equilibrium crystalline compounds. The resulting lower-energy Glass II has its own glass transition temperature higher than that of Glass I by as much as 50 degrees. This route thus delivers a thermodynamically and kinetically ultrastable MG that can be easily retained to ambient conditions.

Abstract Image

可重入玻璃过渡导致超稳定的金属玻璃
在无定形物质中经常观察到多晶,一个典型的例子是胶体体系中的可重入玻璃化转变。然而,对于金属非晶合金,迄今为止报道的案例仅限于金属玻璃(mg),它们在千兆帕的施加压力下发生电子跃迁,或者存在两种相同成分的液体。在这里,我们报告了mggs中首次观察到的可重入玻璃化转变。这种不寻常的可重入玻璃转变将MG从其淬火状态(玻璃I)转变为超稳定状态(玻璃II),由玻璃I的过冷液体调节。具体而言,在环境压力下加热到高于其玻璃转变温度时,玻璃I首先转变为过冷液体,然后转变为新的玻璃II,伴随着热扫描中的放热峰值,以及急剧下降的体积。电阻和比热,以及通过原位同步加速器x射线散射揭示的中短程尺度上局部结构有序的明确证据。原子模拟表明,增强了局部有利基序的排序,在中等范围内建立了类似于平衡晶体化合物的相关性。由此产生的低能玻璃II本身的玻璃化转变温度比玻璃I高50度。因此,这条路线提供了一种热力学和动力学上超稳定的MG,可以很容易地保留在环境条件下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Materials Today
Materials Today 工程技术-材料科学:综合
CiteScore
36.30
自引率
1.20%
发文量
237
审稿时长
23 days
期刊介绍: Materials Today is the leading journal in the Materials Today family, focusing on the latest and most impactful work in the materials science community. With a reputation for excellence in news and reviews, the journal has now expanded its coverage to include original research and aims to be at the forefront of the field. We welcome comprehensive articles, short communications, and review articles from established leaders in the rapidly evolving fields of materials science and related disciplines. We strive to provide authors with rigorous peer review, fast publication, and maximum exposure for their work. While we only accept the most significant manuscripts, our speedy evaluation process ensures that there are no unnecessary publication delays.
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