无定形固体
硼
材料科学
非晶态金属
多形性
化学物理
从头算
纳米技术
分子动力学
同步加速器
从头算量子化学方法
X射线晶体学
衍射
结晶学
散射
原子力显微镜
对分布函数
扩散
扩展X射线吸收精细结构
小角X射线散射
透射电子显微镜
作者
Honglin Li,Chuhao Liu,Yongfeng Guo,Xiaoshan Luo,Yijie Chen,Guangsheng Liu,Yu Li,Zhenyu Wang,Jianzhuo Wu,Shouwei Zuo,Zhen Luo,Cheng Peng,Qinyu Jiang,Jialu Li,Cheng Ma,Zhuohang Xie,Jian Yi Lv,Yufei Ding,Jian Zhang,Mufan Li
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-09-25
卷期号:12 (39): eaef4658-eaef4658
标识
DOI:10.1126/sciadv.aef4658
摘要
Engineering short-range atomic order offers a promising route to design amorphous solids. Here, we establish a boron-assisted amorphization strategy using ApolloX, a theory-guided, short-range-order-constrained generative framework for identifying low-energy configurations in compositionally complex multielement systems. Using FeCoNiMoBO x as a model platform, ApolloX generates candidate amorphous structures across varied boron contents. Ab initio molecular dynamics simulations reveal that increasing the boron content suppresses atomic diffusion and crystallization, accompanied by the stabilization of BO 3 -centered local motifs that favor amorphous structure formation. Guided by these predictions, we synthesize three FeCoNiMoBO x compositions with distinct boron contents and use synchrotron scattering and electron microscopy to confirm their compositional fidelity, structural homogeneity, and targeted amorphous characteristics, thereby validating the predicted boron-dependent structural evolution. We further extend this strategy to a broader library of multimetal BO x compositions spanning diverse metal combinations and boron loadings. These results identify boron incorporation as an effective and generalizable means of enhancing amorphization and establish a theory-guided framework for the discovery of compositionally complex amorphous materials.
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