Suppressed thermal transport in silicon nanoribbons by inhomogeneous strain.

Yang, Lin; Yue, Shengying; Tao, Yi; Qiao, Shuo; Li, Hang; Dai, Zhaohe; Song, Bai; Chen, Yunfei et al. · Nature · 2024

basic_science · Level V

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Abstract

Nanoscale structures can produce extreme strain that enables unprecedented material properties, such as tailored electronic bandgap<sup>1-5</sup>, elevated superconducting temperature<sup>6,7</sup> and enhanced electrocatalytic activity<sup>8,9</sup>. While uniform strains are known to elicit limited effects on heat flow<sup>10-15</sup>, the impact of inhomogeneous strains has remained elusive owing to the coexistence of interfaces<sup>16-20</sup> and defects<sup>21-23</sup>. Here we address this gap by introducing inhomogeneous strain through bending individual silicon nanoribbons on a custom-fabricated microdevice and measuring its effect on thermal transport while characterizing the strain-dependent vibrational spectra with sub-nanometre resolution. Our results show that a strain gradient of 0.112% per nanometre could lead to a drastic thermal conductivity reduction of 34 ± 5%, in clear contrast to the nearly constant values measured under uniform strains<sup>10,12,14,15</sup>. We further map the local lattice vibrational spectra using electron energy-loss spectroscopy, which reveals phonon peak shifts of several millielectron-volts along the strain gradient. This unique phonon spectra broadening effect intensifies phonon scattering and substantially impedes thermal transport, as evidenced by first-principles calculations. Our work uncovers a crucial piece of the long-standing puzzle of lattice dynamics under inhomogeneous strain, which is absent under uniform strain and eludes conventional understanding.