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首页> 外文期刊>Laser Physics: An International Journal devoted to Theoretical and Experimental Laser Research and Application >Graphene photothermal effect-induced microbubble for microparticle manipulation
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Graphene photothermal effect-induced microbubble for microparticle manipulation

机译:石墨烯光热效应诱导的微粒操作微泡

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摘要

Microbubbles have attracted widespread attention within the academic community, owing to their great potential for applications in microsystems. Considering practical applications, it is critical to use a simple method to generate a controllable microbubble without contaminating the target environment. In this paper, we propose a convenient and controllable method to generate a vapor microbubble using a monolayer graphene-assisted microfiber (GMF). When the light beam at a wavelength of 1.55 mu m is coupled to GMF immersed in liquid, light energy can be converted into heat energy due to the photothermal effect of graphene, and thus a stable and controllable microbubble can be generated due to the existence of a temperature gradient around the GMF. This microbubble is used to capture microsphere particles such as polystyrene particles by means of the Marangoni Convection around it. Compared with bare microfiber, GMF has a higher fabrication tolerance for the purposes of generating microbubbles, and a lower threshold optical power due to the strong photothermal effect of graphene. Our proposed device, which demonstrates advantages such as ease of manufacture, simple structure, and biocompatibility, is a promising candidate for future applications in the fields of directional transport of drugs, biomedicine, biochemistry, microfluidics, etc.
机译:由于他们在微系统中的应用潜力巨大,微泡引起了广泛的关注。考虑到实际应用,使用简单的方法来生成可控微泡而不污染目标环境至关重要。在本文中,我们提出了一种方便可控的方法,使用单层石墨烯辅助微纤维(GMF)产生蒸汽微泡。当波长为1.55μm的光束与浸入液体中的Gmf时,由于石墨烯的光热效果,光能可以转化为热能,因此由于存在而可以产生稳定和可控的微泡。 GMF周围的温度梯度。该微泡用于通过周围的Marangoni对流捕获微球颗粒如聚苯乙烯颗粒。与裸纤维相比,GMF具有更高的制造公差,用于产生微泡的目的,并且由于石墨烯的强烈的光热效应而导致的较低阈值光功率。我们所提出的设备,展示了易于制造,结构简单和生物相容性的优势,是未来应用药物,生物医学,生物化学,微流体等领域的未来应用的有希望的候选者。

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