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Titlebook: Ultra High Field Magnetic Resonance Imaging; Pierre-Marie Robitaille,Lawrence Berliner Book 2006 Springer-Verlag US 2006 biochemistry.brai

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书目名称Ultra High Field Magnetic Resonance Imaging
编辑Pierre-Marie Robitaille,Lawrence Berliner
视频video
概述The up-to-date latest volume in the Biological Magnetic Resonance series
丛书名称Biological Magnetic Resonance
图书封面Titlebook: Ultra High Field Magnetic Resonance Imaging;  Pierre-Marie Robitaille,Lawrence Berliner Book 2006 Springer-Verlag US 2006 biochemistry.brai
描述From the early examples of what was to be called MRI, extending the te- nique to higher fields than those of less than 0. 1 T used in the first large-volume instruments was a goal, but the way there was unclear. The practical success of large superconducting magnets was a surprise, and the astonishment continued as they developed fields from 0. 3 T to 0. 6 T to 1. 5 T, and even more, up to the now common 3T systems, and a few 4T machines, and now to about 100 times the fields used in the first medium- and large-bore devices. In the early machines, low radiofrequencies of 4 MHz or so meant that RF coil designs were simple (even inexperienced undergraduates could design and build such circuits with little knowledge of more than DC electrical circuits), and the forces on gradient coils were small. The effects of magnetic susceptibility in- mogeneity in and around the object being imaged were negligible, and RF penet- tion depths were not a problem for human-scale samples. Everything began to change as higher fields and higher frequencies came into use, and the earlier idyllic simplicities began to seem quaint. The trend continued, however, driven by the increased signal-to-noise ratio
出版日期Book 2006
关键词biochemistry; brain; brain imaging; imaging; magnetic fields; magnetic resonance; magnetic resonance imagi
版次1
doihttps://doi.org/10.1007/978-0-387-49648-1
isbn_softcover978-1-4899-7337-5
isbn_ebook978-0-387-49648-1Series ISSN 0192-6020 Series E-ISSN 2512-2215
issn_series 0192-6020
copyrightSpringer-Verlag US 2006
The information of publication is updating

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High Magnetic Fields for Imaging Cerebral Morphology, Function, and Biochemistry,5 Tesla provide numerous advantages in aspects of magnetic resonance imaging and spectroscopy (MRS) applications in humans, even though such high fields also pose serious challenges. In considering these accomplishments, however, it is imperative to recognize that, to date, virtually all of the rese
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In-Vivo NMR Spectroscopy of the Brain at High Fields,eased sensitivity, leading to smaller volumes and shorter acquisition times and increased specificity, leading to the detection of many novel compounds. In dynamic .C NMR it was shown that, in addition to measuring the label incorporation into several positions of many compounds, the time-resolved m
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