Issue 18, 2021

Mechanism and stability investigation of a nozzle-free droplet-on-demand acoustic ejector

Abstract

This paper investigates the mechanism of a new acoustic micro-ejector using a Lamb wave transducer array, which can stably generate picoliter (pL) droplet jetting without nozzles. With eight transducers arranged as an octagon array, droplets are ejected based on the mechanism of combined acoustic pressure waves and acoustic streaming. The acoustic focusing area is designed as a line at the liquid center, which is the key factor for a large working range of liquid height. The experimental results show that the ejector can produce uniform water droplets of 22 μm diameter (5.6 pL in volume) continuously at a rate of 0.33 kHz with high ejection stability, owing to a large liquid height window and high acoustic wave frequency. By delivering precise ∼pL droplets without clogging issues, the acoustic ejector has great potential for demanding biochemical applications.

Graphical abstract: Mechanism and stability investigation of a nozzle-free droplet-on-demand acoustic ejector

Supplementary files

Article information

Article type
Paper
Submitted
11 Jun 2021
Accepted
19 Jul 2021
First published
11 Aug 2021

Analyst, 2021,146, 5650-5657

Mechanism and stability investigation of a nozzle-free droplet-on-demand acoustic ejector

Y. Ning, M. Zhang, H. Zhang, X. Duan, Y. Yuan, B. Liu and W. Pang, Analyst, 2021, 146, 5650 DOI: 10.1039/D1AN01028J

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