Unravelling nonclassical beam damage mechanisms in metal-organic frameworks by low-dose electron microscopy.

IF 14.7 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Nature Communications Pub Date : 2025-01-02 DOI:10.1038/s41467-024-55632-w
Xiaoqiu Xu, Liwei Xia, Changlin Zheng, Yikuan Liu, Dongyang Yu, Jingjing Li, Shigui Zhong, Cuiyu Li, Huijun Song, Yunzhou Liu, Tulai Sun, Yonghe Li, Yu Han, Jia Zhao, Qiang Lin, Xiaonian Li, Yihan Zhu
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Abstract

Recent advances in direct electron detectors and low-dose imaging techniques have opened up captivating possibilities for real-space visualization of radiation-induced structural dynamics. This has significantly contributed to our understanding of electron-beam radiation damage in materials, serving as the foundation for modern electron microscopy. In light of these developments, the exploration of more precise and specific beam damage mechanisms, along with the development of associated descriptive models, has expanded the theoretical framework of radiation damage beyond classical mechanisms. We unravel, in this work, the nonclassical beam damage mechanisms of an open-framework material, i.e. UiO-66(Hf) metal-organic framework, by integrating low-dose electron microscopy and ab initio simulations of radiation induced structural dynamics. The physical origins of radiation damage phenomena, spanning across multiple scales including morphological, lattice, and molecular levels, have been unequivocally unveiled. Based on these observations, potential alternative mechanisms including reversible radiolysis and radiolysis-enhanced knock-on displacement are proposed, which account for their respective dynamic crystalline-to-amorphous interconversion and site-specific ligand knockout events occurring during continuous beam radiation. The current study propels the fundamental understanding of beam damage mechanisms from dynamic and correlated perspectives. Moreover, it fuels technical innovations, such as low-dose ultrafast electron microscopy, enabling imaging of beam-sensitive materials with uncompromised spatial resolution.

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用低剂量电子显微镜揭示金属有机骨架中的非经典光束损伤机制。
直接电子探测器和低剂量成像技术的最新进展为辐射引起的结构动力学的实时空间可视化开辟了迷人的可能性。这极大地促进了我们对材料中电子束辐射损伤的理解,为现代电子显微镜的发展奠定了基础。鉴于这些发展,探索更精确和具体的光束损伤机制,以及相关描述性模型的发展,已经扩展了辐射损伤的理论框架,超出了经典机制。在这项工作中,我们揭示了开放框架材料,即UiO-66(Hf)金属有机框架的非经典光束损伤机制,通过集成低剂量电子显微镜和从头算模拟辐射诱导结构动力学。辐射损伤现象的物理起源,跨越多个尺度,包括形态,晶格和分子水平,已经明确揭示。基于这些观察结果,提出了潜在的替代机制,包括可逆辐射溶解和辐射溶解增强的敲除位移,这解释了在连续光束辐射中发生的各自的动态晶体到非晶态的相互转换和位点特异性配体敲除事件。目前的研究从动力学和相关的角度推动了对梁损伤机制的基本理解。此外,它还推动了技术创新,例如低剂量超快电子显微镜,使光束敏感材料的成像具有不妥协的空间分辨率。
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来源期刊
Nature Communications
Nature Communications Biological Science Disciplines-
CiteScore
24.90
自引率
2.40%
发文量
6928
审稿时长
3.7 months
期刊介绍: Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.
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