• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

基于衍射的微通道声操控实现了连续的粒子和细菌聚焦。

Diffraction-based acoustic manipulation in microchannels enables continuous particle and bacteria focusing.

机构信息

Dept. Mechanical and Aerospace Engineering, Monash University, Clayton 3800, Australia.

出版信息

Lab Chip. 2020 Aug 7;20(15):2674-2688. doi: 10.1039/d0lc00397b. Epub 2020 Jul 1.

DOI:10.1039/d0lc00397b
PMID:32608464
Abstract

Acoustic fields have shown wide utility for micromanipulation, though their implementation in microfluidic devices often requires accurate alignment or highly precise channel dimensions, including in typical standing surface acoustic wave (SSAW) devices and resonant channels. In this work we investigate an approach that permits continuous microscale focusing based on diffractive acoustics, a phenomenon where a time-averaged spatially varying acoustic pressure landscape is produced by bounding a surface acoustic wave (SAW) transducer with a microchannel. By virtue of diffractive effects, this acoustic field is formed with the application of only a single travelling wave. As the field is dictated by the interplay between a propagating substrate-bound wave and a channel geometry, the pressure distribution will be identical for a given channel orientation regardless of its translation on a SAW substrate, and where small variations in channel size have no substantive effect on the pressure field magnitude or overall particle migration. Moreover, in the case of a channel with dimensions on the order of the diffractive fringe pattern spacing, the number of focusing positions will be identical for all channel orientations, with acoustic radiation forces pushing suspended particles to the channel edges. We explore this highly robust particle manipulation technique, determining two distinct sets of streaming and acoustic radiation dominant concentration positions, and show the continuous focusing of polystyrene 1 μm and 0.5 μm diameter particles and fluorescently labeled E. coli bacteria cells at flow rates exceeding those of previous microfluidic implementations for micron and submicron sized particles.

摘要

声场在微操作中显示出广泛的应用,但在微流控设备中的实现通常需要精确的对准或高度精确的通道尺寸,包括在典型的驻波表面声波(SSAW)设备和共振通道中。在这项工作中,我们研究了一种基于衍射声学的连续微尺度聚焦方法,其中通过用微通道包围表面声波(SAW)换能器来产生时均空间变化的声压场。由于衍射效应,仅通过施加单个行波即可形成该声场。由于该声场是由传播的基底束缚波和通道几何形状之间的相互作用决定的,因此对于给定的通道取向,无论其在 SAW 基底上的平移如何,压力分布将是相同的,并且通道尺寸的微小变化对压力场幅度或整体粒子迁移没有实质性影响。此外,在通道尺寸与衍射条纹间距相当的情况下,所有通道取向的聚焦位置数量将相同,悬浮粒子会受到声辐射力推向通道边缘。我们探索了这种高度稳健的粒子操纵技术,确定了两组不同的流动和声辐射主导的浓度位置,并展示了聚苯乙烯 1 μm 和 0.5 μm 直径粒子以及荧光标记的大肠杆菌细胞的连续聚焦,其流速超过了先前用于微米和亚微米尺寸粒子的微流控实现的流速。

相似文献

1
Diffraction-based acoustic manipulation in microchannels enables continuous particle and bacteria focusing.基于衍射的微通道声操控实现了连续的粒子和细菌聚焦。
Lab Chip. 2020 Aug 7;20(15):2674-2688. doi: 10.1039/d0lc00397b. Epub 2020 Jul 1.
2
Reduced acoustic resonator dimensions improve focusing efficiency of bacteria and submicron particles.减小声谐振器尺寸可提高细菌和亚微米颗粒的聚焦效率。
Analyst. 2022 Jan 17;147(2):274-281. doi: 10.1039/d1an01891d.
3
Continuous micro-vortex-based nanoparticle manipulation via focused surface acoustic waves.基于连续微涡的聚焦表面声波纳米粒子操控。
Lab Chip. 2016 Dec 20;17(1):91-103. doi: 10.1039/c6lc01142j.
4
Continuous particle separation in a microfluidic channel via standing surface acoustic waves (SSAW).基于驻面声波的微流道内连续颗粒分离。
Lab Chip. 2009 Dec 7;9(23):3354-9. doi: 10.1039/b915113c. Epub 2009 Oct 12.
5
Surface acoustic wave induced particle manipulation in a PDMS channel--principle concepts for continuous flow applications.在 PDMS 通道中利用表面声波进行粒子操控——连续流应用的原理概念。
Biomed Microdevices. 2012 Apr;14(2):279-89. doi: 10.1007/s10544-011-9606-7.
6
Three-dimensional continuous particle focusing in a microfluidic channel via standing surface acoustic waves (SSAW).基于驻面声波的微流道内三维连续颗粒聚焦。
Lab Chip. 2011 Jul 21;11(14):2319-24. doi: 10.1039/c1lc20042a. Epub 2011 Jun 27.
7
Three-dimensional modeling and experimentation of microfluidic devices driven by surface acoustic wave.基于表面声波的微流控器件的三维建模与实验。
Ultrasonics. 2023 Mar;129:106914. doi: 10.1016/j.ultras.2022.106914. Epub 2022 Dec 12.
8
The importance of travelling wave components in standing surface acoustic wave (SSAW) systems.行波分量在体声波(SSAW)系统中的重要性。
Lab Chip. 2016 Sep 21;16(19):3756-3766. doi: 10.1039/c6lc00798h.
9
On the acoustically induced fluid flow in particle separation systems employing standing surface acoustic waves - Part I.基于驻面声波的颗粒分离系统中的声致流 - 第一部分。
Lab Chip. 2022 May 17;22(10):2011-2027. doi: 10.1039/d1lc01113h.
10
Towards the automation of micron-sized particle handling by use of acoustic manipulation assisted by microfluidics.通过微流体辅助的声学操纵实现微米级颗粒处理的自动化。
Ultrasonics. 2008 Nov;48(6-7):529-36. doi: 10.1016/j.ultras.2008.06.004. Epub 2008 Jun 13.

引用本文的文献

1
Cavity-agnostic acoustofluidic manipulations enabled by guided flexural waves on a membrane acoustic waveguide actuator.由膜声波导致动器上的引导弯曲波实现的与腔无关的声流体操纵。
Microsyst Nanoeng. 2024 Mar 8;10:33. doi: 10.1038/s41378-023-00643-8. eCollection 2024.
2
Acoustic separation and concentration of exosomes for nucleotide detection: ASCENDx.基于声分离和浓缩的外泌体核苷酸检测:ASCENDx。
Sci Adv. 2024 Mar 8;10(10):eadm8597. doi: 10.1126/sciadv.adm8597.
3
Projection Micro-Stereolithography to Manufacture a Biocompatible Micro-Optofluidic Device for Cell Concentration Monitoring.
用于细胞浓度监测的生物相容性微流控光学器件制造的投影微立体光刻技术。
Polymers (Basel). 2023 Nov 19;15(22):4461. doi: 10.3390/polym15224461.
4
Robust global arrangement by coherent enhancement in Huygens-Fresnel traveling surface acoustic wave interference field.通过惠更斯-菲涅耳传播表面声波干涉场中的相干增强实现稳健的全局排列。
Anal Bioanal Chem. 2024 Jan;416(2):509-518. doi: 10.1007/s00216-023-05058-y. Epub 2023 Nov 22.
5
Low-noise fluorescent detection of cardiac troponin I in human serum based on surface acoustic wave separation.基于表面声波分离技术的人血清中心肌肌钙蛋白I的低噪声荧光检测
Microsyst Nanoeng. 2023 Nov 9;9:141. doi: 10.1038/s41378-023-00600-5. eCollection 2023.
6
Phononic-Crystal-Based Particle Sieving in Continuous Flow: Numerical Simulations.连续流中基于声子晶体的粒子筛分:数值模拟
Micromachines (Basel). 2022 Dec 9;13(12):2181. doi: 10.3390/mi13122181.
7
A solution to the biophysical fractionation of extracellular vesicles: Acoustic Nanoscale Separation via Wave-pillar Excitation Resonance (ANSWER).细胞外囊泡生物物理分级分离的一种解决方案:基于波柱激发共振的声学纳米级分离(ANSWER)。
Sci Adv. 2022 Nov 25;8(47):eade0640. doi: 10.1126/sciadv.ade0640. Epub 2022 Nov 23.
8
Hypersound-Assisted Size Sorting of Microparticles on Inkjet-Patterned Protein Films.喷墨打印蛋白质膜上的微颗粒的超声辅助尺寸分选。
Langmuir. 2021 Mar 2;37(8):2826-2832. doi: 10.1021/acs.langmuir.0c03598. Epub 2021 Feb 12.
9
Flexural wave-based soft attractor walls for trapping microparticles and cells.基于弯曲波的软捕获壁用于捕获微粒子和细胞。
Lab Chip. 2021 Feb 9;21(3):582-596. doi: 10.1039/d0lc00865f.