Chen Huaiyu, Hill Megan O, Borgström Magnus T, Wallentin Jesper
Synchrotron Radiation Research and NanoLund, Department of Physics, Lund University, 22100 Lund, Sweden.
MAX IV Laboratory, Lund University, 22100 Lund, Sweden.
ACS Appl Nano Mater. 2025 Jan 28;8(5):2310-2318. doi: 10.1021/acsanm.4c06406. eCollection 2025 Feb 7.
Imaging the strain in nanoscale heterostructures is challenging since it requires a combination of high strain sensitivity and spatial resolution. Here, we show that three-dimensional (3D) Bragg coherent diffraction imaging (BCDI) can be used to image the strain in a single InP segment within an axially heterostructured GaInP-InP nanowire. We use a 350 nm-diameter X-ray beam, which is smaller than the nanowire but larger than the 180 nm long InP segment. The intense nanofocused beam induced angular distortions, but these are successfully removed by a correction algorithm. Additionally, we show that data from multiple scans can be merged despite scan-to-scan variations. The reconstruction of the merged data set has a spatial resolution of approximately 14 nm, revealing the 3D morphology of the InP segment and its internal strain distribution. The measured strain shows qualitative agreement with finite element method simulations, but with slightly larger magnitude, which indicates a higher Ga composition than the nominal value. The 3D strain map suggests that the nanowire can accommodate the theoretically predicted lattice mismatch without exceeding the coherency limit. Continued development of robust BCDI measurements and reconstructions enables future studies of strain fields and coherency limits in axial nanowire heterostructures, which are critical for designing next-generation optoelectronic devices.
对纳米级异质结构中的应变进行成像具有挑战性,因为这需要高应变灵敏度和空间分辨率相结合。在这里,我们展示了三维(3D)布拉格相干衍射成像(BCDI)可用于对轴向异质结构的GaInP-InP纳米线内的单个InP段中的应变进行成像。我们使用直径为350 nm的X射线束,该束小于纳米线但大于180 nm长的InP段。强烈的纳米聚焦束会引起角度畸变,但通过校正算法可成功消除这些畸变。此外,我们表明,尽管每次扫描存在变化,但来自多次扫描的数据仍可合并。合并数据集的重建具有约14 nm的空间分辨率,揭示了InP段的三维形态及其内部应变分布。测量的应变与有限元方法模拟在定性上一致,但幅度略大,这表明Ga成分高于标称值。三维应变图表明,纳米线可以在不超过相干极限的情况下适应理论预测的晶格失配。强大的BCDI测量和重建技术的持续发展,使得未来能够对轴向纳米线异质结构中的应变场和相干极限进行研究,这对于设计下一代光电器件至关重要。