| Literature DB >> 33623923 |
Ye Yang1,2, Teng Ma1,2, Sinan Li3, Qi Zhang1, Jiqing Huang1, Yifei Liu1,2, Jianwei Zhuang1, Yongchuan Li1, Xuemin Du1,2, Lili Niu1,2, Yang Xiao1,2, Congzhi Wang1,2, Feiyan Cai1,2, Hairong Zheng1,2.
Abstract
Acoustic tweezers have great application prospects because they allow noncontact and noninvasive manipulation of microparticles in a wide range of media. However, the nontransparency and heterogeneity of media in practical applications complicate particle trapping and manipulation. In this study, we designed a 1.04 MHz 256-element 2D matrix array for 3D acoustic tweezers to guide and monitor the entire process using real-time 3D ultrasonic images, thereby enabling acoustic manipulation in nontransparent media. Furthermore, we successfully performed dynamic 3D manipulations on multiple microparticles using multifoci and vortex traps. We achieved 3D particle manipulation in heterogeneous media (through resin baffle and ex vivo macaque and human skulls) by introducing a method based on the time reversal principle to correct the phase and amplitude distortions of the acoustic waves. Our results suggest cutting-edge applications of acoustic tweezers such as acoustical drug delivery, controlled micromachine transfer, and precise treatment.Entities:
Year: 2021 PMID: 33623923 PMCID: PMC7877394 DOI: 10.34133/2021/9781394
Source DB: PubMed Journal: Research (Wash D C) ISSN: 2639-5274