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Observing crystal nucleation in four dimensions using atomic electron tomography

机译:采用原子上断层扫描观察四维晶体成核

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摘要

Nucleation plays a critical role in many physical and biological phenomena that range from crystallization, melting and evaporation to the formation of clouds and the initiation of neurodegenerative diseases(1-3). However, nucleation is a challenging process to study experimentally, especially in its early stages, when several atoms or molecules start to form a new phase from a parent phase. A number of experimental and computational methods have been used to investigate nucleation processes(4-17), but experimental determination of the three-dimensional atomic structure and the dynamics of early-stage nuclei has been unachievable. Here we use atomic electron tomography to study early-stage nucleation in four dimensions (that is, including time) at atomic resolution. Using FePt nanoparticles as a model system, we find that early-stage nuclei are irregularly shaped, each has a core of one to a few atoms with the maximum order parameter, and the order parameter gradient points from the core to the boundary of the nucleus. We capture the structure and dynamics of the same nuclei undergoing growth, fluctuation, dissolution, merging and/or division, which are regulated by the order parameter distribution and its gradient. These experimental observations are corroborated by molecular dynamics simulations of heterogeneous and homogeneous nucleation in liquid-solid phase transitions of Pt. Our experimental and molecular dynamics results indicate that a theory beyond classical nucleation theory(1,2,18) is needed to describe early-stage nucleation at the atomic scale. We anticipate that the reported approach will open the door to the study of many fundamental problems in materials science, nanoscience, condensed matter physics and chemistry, such as phase transition, atomic diffusion, grain boundary dynamics, interface motion, defect dynamics and surface reconstruction with four-dimensional atomic resolution.
机译:成核在许多物理和生物学现象中起着关键作用,该现象范围从结晶,熔化和蒸发到形成云的形成和神经退行性疾病的开始(1-3)。然而,成核是实验研究的具有挑战性的过程,特别是在其早期阶段,当几个原子或分子开始从亲本相开始形成新阶段。已经使用许多实验和计算方法来研究成核过程(4-17),但实验测定三维原子结构和早期核的动态也是不可成熟的。在这里,我们使用原子色断层扫描来研究原子分辨率的四个维度(即包括时间)的早期成核。使用纳米颗粒作为模型系统,我们发现早期核的形状不规则,每个核心都具有一个到几个原子的核心,具有最大阶参数,以及从核心的顺序参数梯度点到核的边界。我们捕获了经历增长,波动,溶解,合并和/或分割的相同核的结构和动态,这些核是由订单参数分布及其梯度调节的。通过PT的液体固相转变中的异质和均匀成核的分子动力学模拟来证实这些实验观察。我们的实验和分子动力学结果表明,需要超越古典成核理论(1,2,18)的理论来描述原子尺度的早期成核。我们预计报告的方法将对材料科学,纳米科学,凝聚物物理和化学的许多基本问题的研究,如相转移,原子扩散,晶界动态,接口运动,缺陷动态和表面重建等四维原子分辨率。

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  • 来源
    《Nature》 |2019年第7762期|500-503|共4页
  • 作者单位

    Univ Calif Los Angeles Dept Phys & Astron Los Angeles CA 90095 USA|Univ Calif Los Angeles Calif NanoSyst Inst Los Angeles CA 90095 USA;

    Univ Calif Los Angeles Dept Phys & Astron Los Angeles CA 90095 USA|Univ Calif Los Angeles Calif NanoSyst Inst Los Angeles CA 90095 USA|Korea Adv Inst Sci & Technol Dept Phys Daejeon South Korea;

    Univ Calif Los Angeles Dept Phys & Astron Los Angeles CA 90095 USA|Univ Calif Los Angeles Calif NanoSyst Inst Los Angeles CA 90095 USA;

    Univ Calif Los Angeles Dept Phys & Astron Los Angeles CA 90095 USA|Univ Calif Los Angeles Calif NanoSyst Inst Los Angeles CA 90095 USA;

    Univ Calif Los Angeles Dept Phys & Astron Los Angeles CA 90095 USA|Univ Calif Los Angeles Calif NanoSyst Inst Los Angeles CA 90095 USA;

    Univ Calif Los Angeles Dept Phys & Astron Los Angeles CA 90095 USA|Univ Calif Los Angeles Calif NanoSyst Inst Los Angeles CA 90095 USA;

    Lawrence Berkeley Natl Lab Natl Ctr Electron Microscopy Mol Foundry Berkeley CA USA;

    SUNY Buffalo Univ Buffalo Dept Phys Buffalo NY USA;

    Lawrence Berkeley Natl Lab Natl Ctr Electron Microscopy Mol Foundry Berkeley CA USA;

    Univ Colorado Dept Chem & Biol Engn Boulder CO 80309 USA;

    Univ Colorado Dept Chem & Biol Engn Boulder CO 80309 USA;

    Univ Nevada Dept Chem & Mat Engn Reno NV 89557 USA;

    Lawrence Berkeley Natl Lab Natl Ctr Electron Microscopy Mol Foundry Berkeley CA USA;

    Univ Calif Los Angeles Dept Phys & Astron Los Angeles CA 90095 USA|Univ Calif Los Angeles Calif NanoSyst Inst Los Angeles CA 90095 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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