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Single-shot 3D coherent diffractive imaging of core-shell nanoparticles with elemental specificity

机译:具有元素特异性核心壳纳米粒子的单次3D相干衍射成像

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We report 3D coherent diffractive imaging (CDI) of Au/Pd core-shell nanoparticles with 6.1?nm spatial resolution with elemental specificity. We measured single-shot diffraction patterns of the nanoparticles using intense x-ray free electron laser pulses. By exploiting the curvature of the Ewald sphere and the symmetry of the nanoparticle, we reconstructed the 3D electron density of 34 core-shell structures from these diffraction patterns. To extract 3D structural information beyond the diffraction signal, we implemented a super-resolution technique by taking advantage of CDI’s quantitative reconstruction capabilities. We used high-resolution model fitting to determine the Au core size and the Pd shell thickness to be 65.0?±?1.0?nm and 4.0?±?0.5?nm, respectively. We also identified the 3D elemental distribution inside the nanoparticles with an accuracy of 3%. To further examine the model fitting procedure, we simulated noisy diffraction patterns from a Au/Pd core-shell model and a solid Au model and confirmed the validity of the method. We anticipate this super-resolution CDI method can be generally used for quantitative 3D imaging of symmetrical nanostructures with elemental specificity.
机译:我们报告了Au / Pd核心壳纳米粒子的3D相干衍射成像(CDI),具有具有元素特异性的6.1μm空间分辨率。我们使用强烈的X射线自由电子激光脉冲测量纳米颗粒的单次衍射图案。通过利用eWALD球体的曲率和纳米颗粒的对称性,我们从这些衍射图案重建了34个芯壳结构的3D电子密度。为了提取超出衍射信号的3D结构信息,我们通过利用CDI的定量重建能力来实现超分辨率技术。我们使用高分辨率模型拟合来确定Au核心尺寸和Pd壳厚度为65.0≤≤1.0≤1.0?±0.5?0.5?nm。我们还确定了纳米颗粒内的3D元素分布,精度为3%。为了进一步检查模型拟合程序,我们模拟了来自Au / Pd核心壳模型的噪声衍射模式和固体AU模型,并确认了该方法的有效性。我们预期该超分辨率CDI方法通常可用于具有元素特异性的对称纳米结构的定量3D成像。

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