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Atomically precise photothermal nanomachines.

Jing ChenPeilin GuGuangliu RanYu ZhangMingqiang LiBin ChenHui LuYing-Zi HanWenkai ZhangZichao TangQinglong YanRui SunXiaobin FuGuorui ChenZhiwen ShiShiyong WangXiaoguo LiuJiang LiLihua WangYing ZhuJianlei ShenBen-Zhong TangChun-Hai Fan
Published in: Nature materials (2023)
Interfacing molecular machines to inorganic nanoparticles can, in principle, lead to hybrid nanomachines with extended functions. Here we demonstrate a ligand engineering approach to develop atomically precise hybrid nanomachines by interfacing gold nanoclusters with tetraphenylethylene molecular rotors. When gold nanoclusters are irradiated with near-infrared light, the rotation of surface-decorated tetraphenylethylene moieties actively dissipates the absorbed energy to sustain the photothermal nanomachine with an intact structure and steady efficiency. Solid-state nuclear magnetic resonance and femtosecond transient absorption spectroscopy reveal that the photogenerated hot electrons are rapidly cooled down within picoseconds via electron-phonon coupling in the nanomachine. We find that the nanomachine remains structurally and functionally intact in mammalian cells and in vivo. A single dose of near-infrared irradiation can effectively ablate tumours without recurrence in tumour-bearing mice, which shows promise in the development of nanomachine-based theranostics.
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