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一种激光驱动的光学雾化器:zeptoliter液滴沿沉积有碳纳米管的中空光纤的光热产生与传输

A laser-driven optical atomizer: photothermal generation and transport of zeptoliter-droplets along a carbon nanotube deposited hollow optical fiber.

作者信息

Lee Hyeonwoo, Partanen Mikko, Lee Mingyu, Jeong Sunghoon, Lee Hyeung Joo, Kim Kwanpyo, Ryu Wonhyoung, Dholakia Kishan, Oh Kyunghwan

机构信息

Photonic Device Physics Laboratory, Department of Physics, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 03722, Korea.

Photonics Group, Department of Electronics and Nanoengineering, Aalto University, P.O. Box 13500, 00076 Aalto, Finland.

出版信息

Nanoscale. 2022 Mar 31;14(13):5138-5146. doi: 10.1039/d1nr06211e.

Abstract

From mechanical syringes to electric field-assisted injection devices, precise control of liquid droplet generation has been sought after, and the present state-of-the-art technologies have provided droplets ranging from nanoliter to subpicoliter volume sizes. In this study, we present a new laser-driven method to generate liquid droplets with a zeptoliter volume, breaking the fundamental limits of previous studies. We guided an infrared laser beam through a hollow optical fiber (HOF) with a ring core whose end facet was coated with single-walled carbon nanotubes. The laser light was absorbed by this nanotube film and efficiently generated a highly localized microring heat source. This evaporated the liquid inside the HOF, which rapidly recondensed into zeptoliter droplets in the surrounding air at room temperature. We spectroscopically confirmed the chemical structures of the liquid precursor maintained in the droplets by atomizing dye-dissolved glycerol. Moreover, we explain the fundamental physical principles as well as functionalities of the optical atomizer and perform a detailed characterization of the droplets. Our approach has strong prospects for nanoscale delivery of biochemical substances in minuscule zeptoliter volumes.

摘要

从机械注射器到电场辅助注射装置,人们一直在追求对液滴生成的精确控制,目前的先进技术已经能够产生从纳升到亚皮升体积大小的液滴。在本研究中,我们提出了一种新的激光驱动方法来产生zeptoliter体积的液滴,突破了以往研究的基本限制。我们将红外激光束引导通过一根空心光纤(HOF),该光纤的环形纤芯的端面涂有单壁碳纳米管。激光被这种纳米管薄膜吸收,并有效地产生一个高度局部化的微环热源。这使得HOF内的液体蒸发,在室温下,蒸发的液体在周围空气中迅速重新凝结成zeptoliter液滴。我们通过雾化溶解有染料的甘油,光谱证实了液滴中保留的液体前驱体的化学结构。此外,我们解释了光学雾化器的基本物理原理和功能,并对液滴进行了详细表征。我们的方法在以极小的zeptoliter体积进行生化物质的纳米级递送方面具有广阔的前景。

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