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"Quantifying Lattice Strains in Elastically Deformed Covalent Crystals", a paper in Physical Review Letters

Professor Lu Yang of the Department of Mechanical Engineering and his team, as well as his collaborators conducted the research “Quantifying Lattice Strains in Elastically Deformed Covalent Crystals”. The research findings were published in Physical Review Letters on June 11, 2026.

  

Quantifying Lattice Strains in Elastically Deformed Covalent Crystals

Jiayi Li, Heyi Wang, Juzheng Chen, Qian Zhang, Fanling Meng, Yiling Lian, Man Kit Cheng, Pak San Yip, Kefan Guo, Wenjun Liang, Yu Deng, Yang Lu

Article in Physical Review Letters

https://journals.aps.org/prl/abstract/10.1103/3pvs-gdp8 

Abstract

Covalent semiconductor crystals such as silicon and diamond have demonstrated ultralarge elastic strains at micro and nanoscales, enabling desired figures of merit for strain engineered electronic and optoelectronic devices. However, the underlying origin of their elasticity—whether it arises from pure lattice displacements or atomic rearrangements (defects or phase transformations)—remains unclear. Here, we directly observed in situ elastic-lattice responses of microfabricated single-crystalline silicon and diamond bridges at room temperature under uniaxial tensile loading by employing high-resolution transmission electron microscopy and four-dimensional scanning transmission electron microscopy. We quantified the distribution of deep-strained atomic coordinates in real time and mapped elastic lattice strains across the entire sample with sub-pixel-precision and a wide field of view, indicating pure lattice elongation without extended defects or phase changes. Additionally, we established a quantitative linkage between macroscopic strain and lattice deformation. This Letter not only elucidates the nature of ultralarge elasticity in covalent materials but also provides a guideline for intelligent design of silicon and diamond electronic and photonic devices with disruptive physical properties via deep elastic strain engineering.