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◆ Nature communications2026-08-26

Cryogenic photomotion enabled by phonon-engineered sp-sp2 carbon frameworks via reversible photothermal buoyancy switching.

Xiaodong Li, Changshui Huang, Meiping Li, Yongyan Xue, Cuili Chen, Deyi Zhang, Mengmeng Zhang, Wenjing Liu, Shaoli Fang, Yuliang Li

原始摘要(英文原文)· Original abstract
Cryogenic liquids dissipate local heat rapidly, which makes contactless light-driven motion difficult to achieve. Here we show that hydrogen-substituted graphdiyne, a porous sp-sp2 carbon framework with suppressed lateral heat spreading, retains photothermal energy near an illuminated region and drives reversible buoyancy switching in liquid nitrogen. Multiscale analysis shows that reduced acoustic-phonon group velocities and an increased density of high-frequency vibrational modes sustain a localized hotspot even when the film is immersed in a bath at 77 K. Under illumination at 110 mW cm-2, this hotspot nucleates a buoyancy plume that drives a vertical displacement of 4.5 cm within 6.5 s, and the float-sink cycle is reproducible over ten consecutive on-off cycles. The same module also supports actuation selected by boundary conditions, including interfacial rotation, bulk rotation and confined translation. These results provide a framework for engineering materials that manipulate vibrational energy for autonomous systems operating at cryogenic temperatures.
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Cryogenic photomotion enabled by phonon-engineered sp-sp2 carbon frameworks via reversible photothermal buoyancy switching. — 科研速览 Science Skim