Department of Materials Science and Engineering, University of California, Irvine, Irvine, CA, USA.
Irvine Materials Research Institute, University of California, Irvine, Irvine, CA, USA.
Nature. 2021 Jan;589(7840):65-69. doi: 10.1038/s41586-020-03049-y. Epub 2021 Jan 6.
Crystal defects affect the thermal and heat-transport properties of materials by scattering phonons and modifying phonon spectra. To appreciate how imperfections in solids influence thermal conductivity and diffusivity, it is thus essential to understand phonon-defect interactions. Sophisticated theories are available to explore such interactions, but experimental validation is limited because most phonon-detecting spectroscopic methods do not reach the high spatial resolution needed to resolve local vibrational spectra near individual defects. Here we demonstrate that space- and angle-resolved vibrational spectroscopy in a transmission electron microscope makes it possible to map the vibrational spectra of individual crystal defects. We detect a red shift of several millielectronvolts in the energy of acoustic vibration modes near a single stacking fault in cubic silicon carbide, together with substantial changes in their intensity, and find that these changes are confined to within a few nanometres of the stacking fault. These observations illustrate that the capabilities of a state-of-the-art transmission electron microscope open the door to the direct mapping of phonon propagation around defects, which is expected to provide useful guidance for engineering the thermal properties of materials.
晶体缺陷通过散射声子和改变声子谱来影响材料的热学和热输运性质。为了理解固体中的不完美如何影响热导率和扩散率,因此必须了解声子-缺陷相互作用。有复杂的理论可以探索这种相互作用,但实验验证受到限制,因为大多数声子探测光谱方法无法达到高空间分辨率,无法解析单个缺陷附近的局部振动光谱。在这里,我们证明了在透射电子显微镜中进行的空间和角度分辨振动光谱学使得有可能绘制单个晶体缺陷的振动光谱。我们在立方碳化硅中的单个堆垛层错附近检测到声振动模式的能量红移了几个毫电子伏特,以及它们强度的大幅变化,并发现这些变化仅限于堆垛层错的几纳米范围内。这些观察结果表明,最先进的透射电子显微镜的能力为直接绘制缺陷周围的声子传播图打开了大门,这有望为工程材料的热学性质提供有用的指导。