Nanophotonics Centre, Cavendish Laboratory, University of Cambridge, Cambridge, CB3 0HE, UK.
Henan Key Laboratory of Diamond Optoelectronic Materials and Devices, Key Laboratory of Material Physics, Ministry of Education, School of Physics and Microelectronics, Zhengzhou University, Zhengzhou, 450052, China.
Nat Commun. 2023 Jun 6;14(1):3291. doi: 10.1038/s41467-023-38124-1.
Molecular vibrations couple to visible light only weakly, have small mutual interactions, and hence are often ignored for non-linear optics. Here we show the extreme confinement provided by plasmonic nano- and pico-cavities can sufficiently enhance optomechanical coupling so that intense laser illumination drastically softens the molecular bonds. This optomechanical pumping regime produces strong distortions of the Raman vibrational spectrum related to giant vibrational frequency shifts from an optical spring effect which is hundred-fold larger than in traditional cavities. The theoretical simulations accounting for the multimodal nanocavity response and near-field-induced collective phonon interactions are consistent with the experimentally-observed non-linear behavior exhibited in the Raman spectra of nanoparticle-on-mirror constructs illuminated by ultrafast laser pulses. Further, we show indications that plasmonic picocavities allow us to access the optical spring effect in single molecules with continuous illumination. Driving the collective phonon in the nanocavity paves the way to control reversible bond softening, as well as irreversible chemistry.
分子振动与可见光的耦合很弱,相互作用很小,因此通常在非线性光学中被忽略。在这里,我们展示了等离子体纳米和皮腔提供的极端限制,可以充分增强光机械耦合,从而使强激光照射大大软化分子键。这种光机械泵送模式产生了与拉曼振动光谱相关的强烈变形,这与光学弹簧效应有关,其振动频率的巨大位移比传统腔中的大一百倍。考虑到多模纳米腔响应和近场诱导的集体声子相互作用的理论模拟与实验观察到的在超快激光脉冲照射下的纳米粒子在镜面上构建的拉曼光谱中表现出的非线性行为一致。此外,我们还表明,等离子体皮腔允许我们在连续照明下访问单个分子中的光学弹簧效应。驱动纳米腔中的集体声子为控制可逆键软化以及不可逆化学铺平了道路。