The design and fabrication of a low-field NMR probe based on a multilayer planar microcoil

被引:0
作者
Weiping Wu
Hong Yi
Di Chen
Rongsheng Lu
Tao Yuan
Jingdong Chen
Zhonghua Ni
机构
[1] Southeast University,Jiangsu Key Laboratory for Design and Manufacture of Micro
[2] Shanghai Jiao Tong University,Nano Biomedical Instruments, School of Mechanical Engineering
来源
Microsystem Technologies | 2014年 / 20卷
关键词
Nuclear Magnetic Resonance; PDMS; Seed Layer; Larmor Frequency; Nuclear Magnetic Resonance Experiment;
D O I
暂无
中图分类号
学科分类号
摘要
The nuclear magnetic resonance (NMR) probe has great influence on signal transmission and reception in NMR technology applications. In this paper, we present a design, fabrication, and test of an NMR probe comprised of a multilayer planar microcoil with a polydimethylsiloxane (PDMS) microchannel. First, geometric parameters of the probe are determined through theoretical analysis. Second, based on a glass substrate, the multilayer planar microcoil is manufactured using repeated photolithography and electroplating processes. During the fabrication process, the polyimide layer is used to package the coil, and the PDMS interlayer is used to adjust the distance from centerlines between the coil and the sample chamber. Third, the resistance and the quality factor of the coil are found to be 1.2158 Ω and 7.217, respectively, at a Larmor frequency of 28.1 MHz. Finally, the NMR probe is tested in an NMR experiment. The transverse relaxation time T2 for the solid PDMS is 20.6 ± 0.4 ms, which is in agreement with 21.1 ± 0.2 ms obtained by a Bruker Minispec MQ60. Results show that the design and fabrication of this NMR probe are feasible for time-domain NMR applications.
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页码:419 / 425
页数:6
相关论文
共 57 条
[1]  
Dechow J(2000)Fabrication of NMR-microsensors for nanoliter sample volumes Microelectron Eng 53 517-519
[2]  
Forchel A(2011)Small-volume nuclear magnetic resonance spectroscopy Annu Rev Anal Chem (Palo Alto Calif) 4 227-249
[3]  
Lanz T(1974)Design of planar rectangular microelectronic inductors IEEE Trans Parts Hybrids Packag 10 101-109
[4]  
Haase A(1976)The signal-to-noise ratio of the nuclear magnetic resonance experiment J Magn Reson 24 71-85
[5]  
Fratila RM(2010)A fully MEMS-compatible process for 3D high aspect ratio micro coils obtained with an automatic wire bonder J Micromech Microeng 20 015021-3152
[6]  
Velders AH(1999)High-Resolution NMR Spectroscopy of Sample Volumes from 1 nL to 10 μL Chem Rev 99 3133-255
[7]  
Greenhouse HM(2003)Planar microcoil-based microfluidic NMR probes J Magn Reson 164 242-82
[8]  
Hoult DI(2007)Operating nanoliter scale NMR microcoils in a 1 tesla field J Magn Reson 188 74-709
[9]  
Richards RE(1994)NMR microspectroscopy using 100 microns planar RF coils fabricated on gallium arsenide substrates IEEE Trans Biomed Eng 41 706-124
[10]  
Kratt K(1995)Design and analysis of microcoils for NMR microscopy J Magn Reson B 108 114-1127