Efficient Surfactant‐Mediated Photovoltaic Manipulation of fL‐Scale Aqueous Microdroplets for Diverse Optofluidic Applications on LiNbO3 Platform

Author:

Gao Zuoxuan12,Yan Jinghui12,Shi Lihong3,Liu Xiaohu12,Wang Mengtong12,Li Chenyu12,Huai Zechao12,Wang Cheng12,Wang Xuan12,Zhang Lina12,Yan Wenbo12ORCID

Affiliation:

1. State Key Laboratory of Reliability and Intelligence of Electrical Equipment School of Materials Science and Engineering Hebei University of Technology Tianjin 300130 China

2. Hebei Engineering Laboratory of Photoelectronic Functional Crystals School of Materials Science and Engineering Hebei University of Technology Tianjin 300130 China

3. Department of Physics Tianjin Chengjian University Tianjin 300384 China

Abstract

AbstractThe electrodeless biocompatible manipulation of femtoliter‐scale aqueous microdroplets remains challenging. The appropriate isolation of electrostatic charges from femtoliter‐scale aqueous microdroplets is crucial for electrodeless optoelectronic manipulation based on space‐charge‐density modulation. Here, surfactant‐mediated photovoltaic manipulation is proposed, where the surfactant layers self‐assembled at the water–oil and oil–Lithium niobate interfaces are employed to isolate photovoltaic charges. The reduced electrostatic attenuation, remarkable hydrophobicity, and strong electrical breakdown suppression of the surfactant layers enable the stable and swift manipulation of femtoliter‐scale aqueous microdroplets using µW‐level laser in oil media. By virtue of the surfactant‐mediated photovoltaic manipulation, a controllable merging/touching/detaching switch of aqueous microdroplets by adjusting the laser illumination intensity and position is realized and the cascading biochemical operations and microreactions of aqueous microdroplets and microdroplet strings are demonstrated. To demonstrate its potential in photonic Micro‐Electro‐Mechanical‐System assemblies, the end coupling of a focused‐laser‐beam into a ZnO microrod leveraging the refraction effect occurring at the water/oil interface is demonstrated. Moreover, because of the selective permeability of the droplet‐interface‐bilayer developed between the touching microdroplets, in situ adjustment of the size of the microdroplets and the fluorescent solute contained in the microdroplets are achieved, aiming at constructing multicomponent fluorescent microdroplets with tunable whispering‐gallery‐mode characteristics.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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