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High-Tc SQUIDs for Biomedical Applications: Immunoassays, Magnetoencephalography, and Ultra-Low Field Magnetic Resonance Imaging (Springer Theses)

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en Limba Engleză Carte Hardback – 25 Jul 2012
This thesis describes the challenging task of developing high critical temperature superconducting quantum interference devices (high-Tc SQUIDs) and using them as sensors for biomedical applications, including magnetic immunoassays, magnetoencephalography and magnetic resonance imaging (MRI). The first part of this work discusses the development of fast magnetic immunoassays, which can be used to improve the sensitivity, or to create new, unique point-of-care diagnostics systems. The second part shows that high-Tc SQUIDs might make magnetoencephalography more available, thus opening the field of high-Tc SQUID-based magnetoencephalography for recording brain functions. This technique can be combined with ultra-low field MRI which is discussed in the last part. This combination may provide a new unique tool for studies of brain functions. This work does not simply improve on existing technology but opens possibilities for novel advanced medical devices and techniques.
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Specificații

ISBN-13: 9783642313554
ISBN-10: 3642313558
Pagini: 118
Dimensiuni: 155 x 235 x 20 mm
Greutate: 0.32 kg
Ediția: 2013
Editura: Springer
Colecția Springer
Seria Springer Theses

Locul publicării: Berlin, Heidelberg, Germany

Public țintă

Research

Cuprins

High-Tc SQUIDs.- Magnetic Immunoassays.- Magnetoencephalography.- Ultra Low Field Magnetic Resonance Imaging.

Textul de pe ultima copertă

This thesis describes the challenging task of developing high critical temperature superconducting quantum interference devices (high-Tc SQUIDs) and using them as sensors for biomedical applications, including magnetic immunoassays, magnetoencephalography and magnetic resonance imaging (MRI). The first part of this work discusses the development of fast magnetic immunoassays, which can be used to improve the sensitivity, or to create new, unique point-of-care diagnostics systems. The second part shows that high-Tc SQUIDs might make magnetoencephalography more available, thus opening the field of high-Tc SQUID-based magnetoencephalography for recording brain functions. This technique can be combined with ultra-low field MRI which is discussed in the last part. This combination may provide a new unique tool for studies of brain functions. This work does not simply improve on existing technology but opens possibilities for novel advanced medical devices and techniques.

Caracteristici

Nominated as an outstanding PhD thesis by Chalmers University of Technology

Describe the development of high-Tc SQUID systems and demonstrate their feasibility for biomedical applications

Open the way to future developments of novel advanced medical devices and techniques based on High-Tc SQUID technology