A soft-clamped topological waveguide for phonons.
basic_science · Level V
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- Record sourced from PubMed, PMID 40468080.
- Also identified by DOI 10.1038/s41586-025-09092-x.
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Abstract
Topological insulators were originally discovered for electron waves in condensed-matter systems. Recently, this concept has been transferred to bosonic systems such as photons<sup>1</sup> and phonons<sup>2</sup>, which propagate in materials patterned with artificial lattices that emulate spin-Hall physics. This work has been motivated, in part, by the prospect of topologically protected transport along edge channels in on-chip circuits<sup>2,3</sup>. In principle, topology protects propagation against backscattering, but not against loss, which has remained limited to the dB cm<sup>-1</sup> level for phononic waveguides, whether topological<sup>4-7</sup> or not<sup>8-19</sup>. Here we combine advanced dissipation engineering<sup>20</sup>-in particular, the recently introduced method of soft clamping<sup>21</sup>-with the concept of valley-Hall topological insulators for phonons<sup>22-26</sup>. This enables on-chip phononic waveguides with propagation losses due to dissipation of 3 dB km<sup>-1</sup> at room temperature, orders of magnitude below any previous chip-scale devices. The low losses also allow us to accurately quantify backscattering protection in topological phononic waveguides, using high-resolution ultrasound spectroscopy. We infer that phonons follow a sharp, 120° bend with a 99.99% probability instead of being scattered back, and less than one phonon in a million is lost. Our work will inspire new research directions on ultralow-loss phononic waveguides and will provide a clean bosonic system for investigating topological protection and non-Hermitian topological physics.