Low-cost microfluidic impedance device with multi-layer field's metal electrodes

Three-dimensional (3D) spheroids and organoids are complex multi-cellular structures widely used in biomedical research. Major bottlenecks in imaging these large structures (~200μm to few mm in size) are the poor light penetration depth, focusing issues, and the requirement for multi-colour antibodi...

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Main Author: Siew, Clement Fook Hui
Other Authors: Hou Han Wei
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2022
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Online Access:https://hdl.handle.net/10356/158471
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1584712023-03-04T20:18:07Z Low-cost microfluidic impedance device with multi-layer field's metal electrodes Siew, Clement Fook Hui Hou Han Wei School of Mechanical and Aerospace Engineering hwhou@ntu.edu.sg Engineering::Mechanical engineering Three-dimensional (3D) spheroids and organoids are complex multi-cellular structures widely used in biomedical research. Major bottlenecks in imaging these large structures (~200μm to few mm in size) are the poor light penetration depth, focusing issues, and the requirement for multi-colour antibodies staining. Impedance spectroscopy is the electrical-based measurement of biological specimens at different frequencies, which is label-free and enables multiple measurements of the same sample in long-term studies. With an increasing level of living standards worldwide, another emerging application of impedance spectrometry is the testing of food safety and quality as it requires real-time assay readout and can be readily deployed in resource-poor or non-lab settings. In this thesis, we first report a novel electrode array fabrication method for microfluidic impedance tomography that is capable of performing impedance spectrometry of large objects. Two fabrication methods using soft lithography and 3D printing were evaluated in terms of the ease of fabrication replicability as well as quality of impedance tomography images. Using PalmSens4 as the impedance analyser, our results showed that microfluidic impedance tomography using 3D printed electrodes can successfully profile 3D structures of different shapes, composite objects with different material layers, and identify cancer spheroids and different types of meat (fish meat and fish skin) based on differential impedance signatures. These results strongly suggest the feasibility for further technology development and optimisation to obtain tomographic images of greater resolution. Bachelor of Engineering (Mechanical Engineering) 2022-06-04T07:59:37Z 2022-06-04T07:59:37Z 2022 Final Year Project (FYP) Siew, C. F. H. (2022). Low-cost microfluidic impedance device with multi-layer field's metal electrodes. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/158471 https://hdl.handle.net/10356/158471 en application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mechanical engineering
spellingShingle Engineering::Mechanical engineering
Siew, Clement Fook Hui
Low-cost microfluidic impedance device with multi-layer field's metal electrodes
description Three-dimensional (3D) spheroids and organoids are complex multi-cellular structures widely used in biomedical research. Major bottlenecks in imaging these large structures (~200μm to few mm in size) are the poor light penetration depth, focusing issues, and the requirement for multi-colour antibodies staining. Impedance spectroscopy is the electrical-based measurement of biological specimens at different frequencies, which is label-free and enables multiple measurements of the same sample in long-term studies. With an increasing level of living standards worldwide, another emerging application of impedance spectrometry is the testing of food safety and quality as it requires real-time assay readout and can be readily deployed in resource-poor or non-lab settings. In this thesis, we first report a novel electrode array fabrication method for microfluidic impedance tomography that is capable of performing impedance spectrometry of large objects. Two fabrication methods using soft lithography and 3D printing were evaluated in terms of the ease of fabrication replicability as well as quality of impedance tomography images. Using PalmSens4 as the impedance analyser, our results showed that microfluidic impedance tomography using 3D printed electrodes can successfully profile 3D structures of different shapes, composite objects with different material layers, and identify cancer spheroids and different types of meat (fish meat and fish skin) based on differential impedance signatures. These results strongly suggest the feasibility for further technology development and optimisation to obtain tomographic images of greater resolution.
author2 Hou Han Wei
author_facet Hou Han Wei
Siew, Clement Fook Hui
format Final Year Project
author Siew, Clement Fook Hui
author_sort Siew, Clement Fook Hui
title Low-cost microfluidic impedance device with multi-layer field's metal electrodes
title_short Low-cost microfluidic impedance device with multi-layer field's metal electrodes
title_full Low-cost microfluidic impedance device with multi-layer field's metal electrodes
title_fullStr Low-cost microfluidic impedance device with multi-layer field's metal electrodes
title_full_unstemmed Low-cost microfluidic impedance device with multi-layer field's metal electrodes
title_sort low-cost microfluidic impedance device with multi-layer field's metal electrodes
publisher Nanyang Technological University
publishDate 2022
url https://hdl.handle.net/10356/158471
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