题名 | 3D Printing of Inertial Microfluidic Devices |
作者 | |
通讯作者 | Ebrahimi Warkiani,Majid |
发表日期 | 2020-12-01
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DOI | |
发表期刊 | |
ISSN | 2045-2322
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EISSN | 2045-2322
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卷号 | 10期号:1 |
摘要 | Inertial microfluidics has been broadly investigated, resulting in the development of various applications, mainly for particle or cell separation. Lateral migrations of these particles within a microchannel strictly depend on the channel design and its cross-section. Nonetheless, the fabrication of these microchannels is a continuous challenging issue for the microfluidic community, where the most studied channel cross-sections are limited to only rectangular and more recently trapezoidal microchannels. As a result, a huge amount of potential remains intact for other geometries with cross-sections difficult to fabricate with standard microfabrication techniques. In this study, by leveraging on benefits of additive manufacturing, we have proposed a new method for the fabrication of inertial microfluidic devices. In our proposed workflow, parts are first printed via a high-resolution DLP/SLA 3D printer and then bonded to a transparent PMMA sheet using a double-coated pressure-sensitive adhesive tape. Using this method, we have fabricated and tested a plethora of existing inertial microfluidic devices, whether in a single or multiplexed manner, such as straight, spiral, serpentine, curvilinear, and contraction-expansion arrays. Our characterizations using both particles and cells revealed that the produced chips could withstand a pressure up to 150 psi with minimum interference of the tape to the total functionality of the device and viability of cells. As a showcase of the versatility of our method, we have proposed a new spiral microchannel with right-angled triangular cross-section which is technically impossible to fabricate using the standard lithography. We are of the opinion that the method proposed in this study will open the door for more complex geometries with the bespoke passive internal flow. Furthermore, the proposed fabrication workflow can be adopted at the production level, enabling large-scale manufacturing of inertial microfluidic devices. |
相关链接 | [Scopus记录] |
收录类别 | |
语种 | 英语
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学校署名 | 通讯
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Scopus记录号 | 2-s2.0-85083042328
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来源库 | Scopus
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引用统计 |
被引频次[WOS]:132
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成果类型 | 期刊论文 |
条目标识符 | http://sustech.caswiz.com/handle/2SGJ60CL/137828 |
专题 | 工学院_生物医学工程系 |
作者单位 | 1.School of Biomedical Engineering,University of Technology Sydney,Sydney,2007,Australia 2.School of Engineering,Macquarie University,Sydney,2109,Australia 3.Institute for Biomedical Materials & Devices (IBMD),Faculty of Science,University of Technology Sydney,Sydney,2007,Australia 4.SUStech-UTS joint Research Centre for Biomedical Materials & Devices,Southern University of Science and Technology,Shenzhen,518055,China 5.Institute of Molecular Medicine,Sechenov University,Moscow,119991,Russian Federation |
通讯作者单位 | 南方科技大学 |
推荐引用方式 GB/T 7714 |
Razavi Bazaz,Sajad,Rouhi,Omid,Raoufi,Mohammad Amin,et al. 3D Printing of Inertial Microfluidic Devices[J]. Scientific Reports,2020,10(1).
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APA |
Razavi Bazaz,Sajad.,Rouhi,Omid.,Raoufi,Mohammad Amin.,Ejeian,Fatemeh.,Asadnia,Mohsen.,...&Ebrahimi Warkiani,Majid.(2020).3D Printing of Inertial Microfluidic Devices.Scientific Reports,10(1).
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MLA |
Razavi Bazaz,Sajad,et al."3D Printing of Inertial Microfluidic Devices".Scientific Reports 10.1(2020).
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条目包含的文件 | ||||||
文件名称/大小 | 文献类型 | 版本类型 | 开放类型 | 使用许可 | 操作 | |
s41598-020-62569-9.p(12792KB) | -- | -- | 限制开放 | -- |
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