【2h】

Breaking the icosahedra in boron carbide

机译:在碳化硼中打破二十面体

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摘要

Findings of laser-assisted atom probe tomography experiments on boron carbide elucidate an approach for characterizing the atomic structure and interatomic bonding of molecules associated with extraordinary structural stability. The discovery of crystallographic planes in these boron carbide datasets substantiates that crystallinity is maintained to the point of field evaporation, and characterization of individual ionization events gives unexpected evidence of the destruction of individual icosahedra. Statistical analyses of the ions created during the field evaporation process have been used to deduce relative atomic bond strengths and show that the icosahedra in boron carbide are not as stable as anticipated. Combined with quantum mechanics simulations, this result provides insight into the structural instability and amorphization of boron carbide. The temporal, spatial, and compositional information provided by atom probe tomography makes it a unique platform for elucidating the relative stability and interactions of primary building blocks in hierarchically crystalline materials.
机译:在碳化硼上进行的激光辅助原子探针层析成像实验的发现阐明了一种表征与异常结构稳定性相关的分子的原子结构和原子间键合的方法。在这些碳化硼数据集中发现的结晶平面证实了结晶度一直保持到场蒸发点,而且对单个电离事件的表征提供了对单个二十面体破坏的出乎意料的证据。对场蒸发过程中产生的离子的统计分析已用于推导相对的原子键强度,并表明碳化硼中的二十面体并不如预期的那样稳定。结合量子力学模拟,该结果提供了对碳化硼结构不稳定性和非晶化的深入了解。原子探针层析成像技术提供的时间,空间和成分信息使其成为阐明分层晶体材料中主要构件的相对稳定性和相互作用的独特平台。

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