论文标题

通过激发的等离子超级浪费从液体中的纳米粒子驱除量

Nanoparticle Photo-Ejection from Liquid via Excited Plasmonic Supercavitation

论文作者

Zhang, Qiushi, Huang, Dezhao, Moon, Seunghyun, Schiffbauer, Jarrod, Lee, Eungkyu, Luo, Tengfei

论文摘要

将微小固体颗粒(例如纳米颗粒,NP)与液体分离的能力对于广泛的应用很重要,例如水纯化,材料沉积和生物医学工程。这种分离通常是通过过滤或蒸馏来取代液体来实现的。但是,很难将小颗粒直接移出液体,尤其是当它们的尺寸接近纳米尺度时,因为液体表面的NP上的毛细管力太大,对于普通体力(例如,光学或磁性)而无法克服。在这里,我们证明了在其表面等离子体共振(SPR)波长上以激光激发从液体中弹出金属NP的能力。激光在NP上施加光学力,以将其驱动到液体表面。同时,激光还可以强烈加热NP以形成封装NP的纳米泡(即超级浪费),该纳米可以实现液体-NP的分离,从而消除了液体自由表面上NP上的毛细管力。我们表明,这种机制可以使用瞬态散射实验将NP从液体中排出,这通过分子动力学模拟进一步证实。我们还证明了将NP沉积在与液体接触的固体表面上。这项研究揭示了一种有趣的机制,可以将NP与液体分开,并可能受益于分离,纳米材料和生物医学应用。

The ability to separate miniscule solid particles (e.g., nanoparticles, NPs) from liquid is important to a wide range of applications, such as water purification, material deposition, and biomedical engineering. Such separation is usually achieved by displacing liquid via filtration or distillation. However, directly moving small particles out of liquid is difficult, especially when their sizes approach the nanometer scale, as the capillary force on the NP at the liquid surface is too large for common body forces (e.g., optical or magnetic) to overcome. Here, we demonstrate the ability to eject metallic NPs out of liquid with a laser excitation at their surface plasmon resonance (SPR) wavelength. The laser applies an optical force on the NPs to drive them toward the liquid surface. In the meantime, the laser can also intensely heat the NP to form a nanobubble encapsulating the NP (i.e., supercavitation), which achieves the liquid-NP separation and thus eliminates the capillary force on the NP at the liquid free surface. We show that such a mechanism can expel NPs out of liquid as observed using a transient scattering experiment, which is further confirmed by molecular dynamics simulations. We also demonstrate depositing the NPs on a solid surface not in contact with the liquid. This study reveals an interesting mechanism to separate NPs from liquid and could potentially benefit separation, nanomaterials and biomedical applications.

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