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dc.contributor.authorA. Lima, Rui-
dc.contributor.authorMinas, Graça-
dc.contributor.authorCatarino (Eds.), Susana-
dc.date.accessioned2021-08-17T09:23:09Z-
dc.date.available2021-08-17T09:23:09Z-
dc.date.issued2019-
dc.identifier.issn978-3-03921-824-0-
dc.identifier.urihttp://thuvienso.vanlanguni.edu.vn/handle/Vanlang_TV/33552-
dc.descriptionx, 86 p. ; 24,8 Mb ; https://doi.org/10.3390/books978-3-03921-825-7 ; CC BY-NC-NDvi
dc.description.abstract"The development of micro- and nanodevices for blood analysis is an interdisciplinary subject that demands the integration of several research fields, such as biotechnology, medicine, chemistry, informatics, optics, electronics, mechanics, and micro/nanotechnologies. Over the last few decades, there has been a notably fast development in the miniaturization of mechanical microdevices, later known as microelectromechanical systems (MEMS), which combine electrical and mechanical components at a microscale level. The integration of microflow and optical components in MEMS microdevices, as well as the development of micropumps and microvalves, have promoted the interest of several research fields dealing with fluid flow and transport phenomena happening in microscale devices. Microfluidic systems have many advantages over their macroscale counterparts, offering the ability to work with small sample volumes, providing good manipulation and control of samples, decreasing reaction times, and allowing parallel operations in one single step. As a consequence, microdevices offer great potential for the development of portable and point-of-care diagnostic devices, particularly for blood analysis. Moreover, the recent progress in nanotechnology has contributed to its increasing popularity, and has expanded the areas of application of microfluidic devices, including in the manipulation and analysis of flows on the scale of DNA, proteins, and nanoparticles (nanoflows). In this Special Issue, we invited contributions (original research papers, review articles, and brief communications) that focus on the latest advances and challenges in micro- and nanodevices for diagnostics and blood analysis, micro- and nanofluidics, technologies for flow visualization, MEMS, biochips, and lab-on-a-chip devices and their application to research and industry. We hope to provide an opportunity to the engineering and biomedical community to exchange knowledge and information and to bring together researchers who are interested in the general field of MEMS and micro/nanofluidics and, especially, in its applications to biomedical areas."vi
dc.description.tableofcontents"About the Special Issue Editors . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . vii Susana O. Catarino, Gra¸ca Minas and Rui Lima Editorial for the Special Issue on Micro/Nano Devices for Blood Analysis Reprinted from: Micromachines 2019, 10, 708, doi:10.3390/mi10100708 . . . . . . . . . . . . . . . . 1 Susana O. Catarino, Raquel O. Rodrigues, Diana Pinho, Jo˜ao M. Miranda, Gra¸ca Minas and Rui Lima Blood Cells Separation and Sorting Techniques of Passive Microfluidic Devices: From Fabrication to Applications Reprinted from: Micromachines 2019, 10, 593, doi:10.3390/mi10090593 . . . . . . . . . . . . . . . . 5 Misa Kawaguchi, Tomohiro Fukui, Kenichi Funamoto, Miho Tanaka, Mitsuru Tanaka, Shigeru Murata, Suguru Miyauchi and Toshiyuki Hayase Viscosity Estimation of a Suspension with Rigid Spheres in Circular Microchannels Using Particle Tracking Velocimetry Reprinted from: Micromachines 2019, 10, 675, doi:10.3390/mi10100675 . . . . . . . . . . . . . . . . 25 Naoki Takeishi, Hiroaki Ito, Makoto Kaneko and ShigeoWada Deformation of a Red Blood Cell in a Narrow Rectangular Microchannel Reprinted from: Micromachines 2019, 10, 199, doi:10.3390/mi10030199 . . . . . . . . . . . . . . . . 38 Vera Faustino, Raquel O. Rodrigues, Diana Pinho, El´ısio Costa, Alice Santos-Silva, Vasco Miranda, Joana S. Amaral and Rui Lima A Microfluidic Deformability Assessment of Pathological Red Blood Cells Flowing in a Hyperbolic Converging Microchannel Reprinted from: Micromachines 2019, 10, 645, doi:10.3390/mi10100645 . . . . . . . . . . . . . . . . 53 Liliana Vilas Boas, Vera Faustino, Rui Lima, Jo˜ao M´ario Miranda, Gra¸ca Minas, Carla Sofia Veiga Fernandes and Susana Oliveira Catarino Assessment of the Deformability and Velocity of Healthy and Artificially Impaired Red Blood Cells in Narrow Polydimethylsiloxane (PDMS) Microchannels Reprinted from: Micromachines 2018, 9, 384, doi:10.3390/mi9080384 . . . . . . . . . . . . . . . . . 68 Yang Jun Kang and Byung Jun Kim Multiple and Periodic Measurement of RBC Aggregation and ESR in Parallel Microfluidic Channels under On-Off Blood Flow Control Reprinted from: Micromachines 2018, 9, 318, doi:10.3390/mi9070318 . . . . . . . . . . . . . . . . . 84 J. Ponmozhi, J. M. R. Moreira, F. J. Mergulh˜ao, J. B. L. M. Campos and J. M. Miranda Fabrication and Hydrodynamic Characterization of a Microfluidic Device for Cell Adhesion Tests in Polymeric Surfaces Reprinted from: Micromachines 2019, 10, 303, doi:10.3390/mi10050303 . . . . . . . . . . . . . . . . 101 Shukei Sugita, Risa Munechika and Masanori Nakamura Multinucleation of Incubated Cells and Their Morphological Differences Compared to Mononuclear Cells Reprinted from: Micromachines 2019, 10, 156, doi:10.3390/mi10020156 . . . . . . . . . . . . . . . . 117 v Masanori Nakamura, Daichi Ono and Shukei Sugita Mechanophenotyping of B16 Melanoma Cell Variants for the Assessment of the Efficacy of (-)-Epigallocatechin Gallate Treatment Using a Tapered Microfluidic Device Reprinted from: Micromachines 2019, 10, 207, doi:10.3390/mi10030207 . . . . . . . . . . . . . . . . 127 Zhigang Gao, Zongzheng Chen, Jiu Deng, Xiaorui Li, Yueyang Qu, Lingling Xu, Yong Luo, Yao Lu, Tingjiao Liu, Weijie Zhao and Bingcheng Lin Measurement of Carcinoembryonic Antigen in Clinical Serum Samples Using a Centrifugal Microfluidic Device Reprinted from: Micromachines 2018, 9, 470, doi:10.3390/mi9090470 . . . . . . . . . . . . . . . . . 141 Yuan Fang, Ningmei Yu, Yuquan Jiang and Chaoliang Dang High-Precision Lens-Less Flow Cytometer on a Chip Reprinted from: Micromachines 2018, 9, 227, doi:10.3390/mi9050227 . . . . . . . . . . . . . . . . . 151 vi"vi
dc.language.isoenvi
dc.publisherMDPIvi
dc.subjectmicrofluidicsvi
dc.subjectnanofluidicsvi
dc.subjectMEMSvi
dc.subjectbiomedical microdevicesvi
dc.subjectmicro/nano fabricationvi
dc.subjectblood flowvi
dc.subjectblood-on-chipsvi
dc.subjectblood cellsvi
dc.subjectbiomicrofluidicsvi
dc.subjectnanoparticlesvi
dc.subjectblood analysisvi
dc.subjectpoint-of-carevi
dc.subjectspectrophotometryvi
dc.titleMicro/Nano Devices for Blood Analysisvi
dc.typeBookvi
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SA11396_1. MicroNano Devices for Blood Analysis - Cover.pdf
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Cover.709.72 kBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_2. MicroNano Devices for Blood Analysis - Copyright.pdf
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Copyright520.06 kBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_3. MicroNano Devices for Blood Analysis - Index.pdf
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Index512.92 kBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_4. MicroNano Devices for Blood Analysis - About the Special Issue Editors.pdf
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About the Special Issue Editors539.73 kBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_5. MicroNano Devices for Blood Analysis - Chap 1.pdf
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Editorial for the Special Issue on Micro/Nano Devices for Blood Analysis563.06 kBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_6. MicroNano Devices for Blood Analysis - Chap 2.pdf
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Blood Cells Separation and Sorting Techniques of Passive Microfluidic Devices: From Fabrication to Applications3.19 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_7. MicroNano Devices for Blood Analysis - Chap 3.pdf
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Viscosity Estimation of a Suspension with Rigid Spheres in Circular Microchannels Using Particle Tracking Velocimetry4.88 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_8. MicroNano Devices for Blood Analysis - Chap 4.pdf
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Deformation of a Red Blood Cell in a Narrow Rectangular Microchannel3.81 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_9. MicroNano Devices for Blood Analysis - Chap 5.pdf
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A Microfluidic Deformability Assessment of Pathological Red Blood Cells Flowing in a Hyperbolic Converging Microchannel2.01 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_10. MicroNano Devices for Blood Analysis - Chap 6.pdf
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Assessment of the Deformability and Velocity of Healthy and Artificially Impaired Red Blood Cells in Narrow Polydimethylsiloxane (PDMS) Microchannels3.89 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_11. MicroNano Devices for Blood Analysis - Chap 7.pdf
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Multiple and Periodic Measurement of RBC Aggregation and ESR in Parallel Microfluidic Channels under On-Off Blood Flow Control2.15 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_12. MicroNano Devices for Blood Analysis - Chap 8.pdf
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Fabrication and Hydrodynamic Characterization of a Microfluidic Device for Cell Adhesion Tests in Polymeric Surfaces1.49 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_13. MicroNano Devices for Blood Analysis - Chap 9.pdf
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Multinucleation of Incubated Cells and Their Morphological Differences Compared to Mononuclear Cells1.88 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_14. MicroNano Devices for Blood Analysis - Chap 10.pdf
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Mechanophenotyping of B16 Melanoma Cell Variants for the Assessment of the Efficacy of (-)-Epigallocatechin Gallate Treatment Using a Tapered Microfluidic Device1.55 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu
SA11396_15. MicroNano Devices for Blood Analysis - Chap 11.pdf
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Measurement of Carcinoembryonic Antigen in Clinical Serum Samples Using a Centrifugal Microfluidic Device2.06 MBAdobe PDFXem/Tải về  Yêu cầu tài liệu


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