An 8-element Tx/Rx array utilizing MEMS detuning combined with 6 Rx loops for


Journal

Magnetic resonance in medicine
ISSN: 1522-2594
Titre abrégé: Magn Reson Med
Pays: United States
ID NLM: 8505245

Informations de publication

Date de publication:
10 2020
Historique:
received: 18 06 2019
revised: 27 02 2020
accepted: 27 02 2020
pubmed: 14 4 2020
medline: 15 5 2021
entrez: 14 4 2020
Statut: ppublish

Résumé

To firstly improve the attainable image SNR of The Tx efficiency and homogeneity of the 8-element array were measured and simulated for For The described single-tuned array driven at

Identifiants

pubmed: 32281139
doi: 10.1002/mrm.28260
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

2262-2277

Subventions

Organisme : British Heart Foundation
ID : SP/14/6/31350
Pays : United Kingdom
Organisme : Department of Health
ID : NIHR-RP-R3-12-027
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/M008894/1
Pays : United Kingdom

Informations de copyright

© 2020 International Society for Magnetic Resonance in Medicine.

Références

Wild JM, Marshall H, Bock M, et al. MRI of the lung (1/3): methods. Insights Imaging. 2012;3:345-353.
Albert MS, Cates GD, Driehuys B, et al. Biological magnetic resonance imaging using laser-polarized 129Xe. Nature. 1994;370:199-201.
Stewart NJ, Chan H, Hughes PJC, et al. Comparison of 3He and 129Xe MRI for evaluation of lung microstructure and ventilation at 1.5T. J Magn Reson Imaging. 2018;48:632-642.
Smith L, Marshall H, Aldag I, et al. Longitudinal assessment of children with mild cystic fibrosis using hyperpolarized gas lung magnetic resonance imaging and lung clearance index. Am J Respir Crit Care Med. 2018;197:397-400.
Kauczor H, Surkau R, Roberts T. MRI using hyperpolarized noble gases. Eur Radiol. 1998;8:820-827.
Couch MJ, Ball IK, Li T, et al. Inert fluorinated gas MRI: a new pulmonary imaging modality. NMR Biomed. 2014;27:1525-1534.
Chen XJ, Möller HE, Chawla MS, et al. Spatially resolved measurements of hyperpolarized gas properties in the lung in vivo. Part I: diffusion coefficient. Magn Reson Med. 1999;42:721-728.
Norquay G, Leung G, Stewart NJ, Tozer GM, Wolber J, Wild JM. Relaxation and exchange dynamics of hyperpolarized 129Xe in human blood. Magn Reson Med. 2015;74:303-311.
Maunder A, Rao M, Robb F, Wild JM. Optimization of steady-state free precession MRI for lung ventilation imaging with 19F C3F8 at 1.5T and 3T. Magn Reson Med. 2019;81:1130-1142.
Ouriadov AV, Fox MS, Couch MJ, Li T, Ball IK, Albert MS. In vivo regional ventilation mapping using fluorinated gas MRI with an x-centric FGRE method. Magn Reson Med. 2015;74:550-557.
Ebner B, Behm P, Jacoby C, et al. Early assessment of pulmonary inflammation by 19F MRI in vivo. Circ Cardiovasc Imaging. 2010;3:202-210.
Roemer PB, Edelstein WA, Hayes CE, Souza SP, Mueller OM. The NMR phased array. Magn Reson Med. 1990;16:192-225.
Gutberlet M, Kaireit TF, Voskrebenzev A, et al. Free-breathing dynamic 19F gas MR imaging for mapping of regional lung ventilation in patients with COPD. Radiology. 2018;286:1040-1051.
Pennati F, Quirk JD, Yablonskiy DA, Castro M, Aliverti A, Woods JC. Assessment of regional lung function with multivolume 1H MR imaging in health and obstructive lung disease: comparison with 3He MR imaging. Radiology. 2014;273:580-590.
Bauman G, Lützen U, Ullrich M, et al. Pulmonary functional imaging: qualitative comparison of Fourier decomposition MR imaging with SPECT/CT in porcine lung. Radiology. 2011;260:551-559.
Zapke M, Topf H-G, Zenker M, et al. Magnetic resonance lung function: a breakthrough for lung imaging and functional assessment? A phantom study and clinical trial. Respir Res. 2006;7:106.
Kampani V, Jones R, Charles H, Hussey N. Dual-tuned RF coil system for parallel imaging of human lungs using perfluorinated gases. In Proceedings of the 25th Annual Meeting of ISMRM, Honolulu, HI, 2017. p. 25.
Waiczies H, Kuehne A, Nagel A, et al. 8CH 19F/1H transceiver array for lung imaging at 7T (pTX). In Proceedings of the 24th Annual Meeting of ISMRM, Singapore, 2016. p. 3506.
Maunder A, Rao M, Robb F, Wild JM. Comparison of MEMS switches and PIN diodes for switched dual tuned RF coils. Magn Reson Med. 2018;80:1746-1753.
Bulumulla SB, Park KJ, Fiveland E, Iannotti J, Robb F. MEMS switch integrated radio frequency coils and arrays for magnetic resonance imaging. Rev Sci Instrum. 2017;88:025003.
Bulumulla S, Fiveland E, Park K, Iannotti J. MEMS reconfigurable coils. In Proceedings of the 23rd Annual Meeting of ISMRM, Toronto, Ontario, Canada, 2015. p. 1797.
Fuentes M, Weber E, Wilson S, Li B, Crozier S. Micro-electromechanical systems (MEMS) based RF-switches in MRI: a performance study. In Proceedings of the 18th Joint Annual Meeting ISMRM-ESMRMB, Stockholm, Sweden, 2010. p. 704.
Spence DA, M. Custom MEMS switch for MR surface coil decoupling. In Proceedings of the 23rd Annual Meeting of ISMRM, Toronto, Ontario, Canada, 2015. p. 704.
Byron K, Robb F, Vasanawala S, Pauly J, Scott G. Switching impedance matching and primary coil array using RF MEMS switches for a wireless power transfer system. In Proceedings of the 26th Annual Meeting of ISMRM, Paris, France, 2018. p. 4424.
Darnell D, Ma Y, Wang H, Robb F, Song AW, Truong T. Adaptive integrated parallel reception, excitation, and shimming (iPRES-A) with microelectromechanical systems switches. Magn Reson Med. 2018;80:371-379.
Rietsch SHG, Orzada S, Maderwald S, et al. 7T ultra-high field body MR imaging with an 8-channel transmit/32-channel receive radiofrequency coil array. Med Phys. 2018;45:2978-2990.
Pfaffenrot V, Brunheim S, Rietsch SHG, et al. An 8/15-channel Tx/Rx head neck RF coil combination with region-specific B1+ shimming for whole-brain MRI focused on the cerebellum at 7T. Magn Reson Med. 2018;80:1252-1265.
Ocali O, Atalar E. Ultimate intrinsic signal-to-noise ratio in MRI. Magn Reson Med. 1998;39:462-473.
Lattanzi R, Wiggins GC, Zhang B, Duan Q, Brown R, Sodickson DK. Approaching ultimate intrinsic signal-to-noise ratio with loop and dipole antennas. Magn Reson Med. 2018;79:1789-1803.
Lattanzi R, Grant A, Sodickson D. Approaching ultimate SNR and ideal current patterns with finite surface coil arrays on a dielectric cylinder. In Proceedings of the 26th Annual Meeting of ISMRM, Paris, France, 2018. p. 1074.
Vaidya MV, Sodickson DK, Lattanzi R. Approaching ultimate intrinsic SNR in a uniform spherical sample with finite arrays of loop coils. Concepts Magn Reson Part B Magn Reson Eng. 2014;44:53-65.
Wiesinger F, Boesiger P, Pruessmann KP. Electrodynamics and ultimate SNR in parallel MR imaging. Magn Reson Med. 2004;52:376-390.
Guérin B, Villena JF, Polimeridis AG, et al. The ultimate signal-to-noise ratio in realistic body models. Magn Reson Med. 2017;78:1969-1980.
Avdievich NI, Giapitzakis IA, Bause J, Shajan G, Scheffler K, Henning A. Double-row 18-loop transceive-32-loop receive tight-fit array provides for whole-brain coverage, high-transmit performance, and SNR improvement near the brain center at 9.4T. Magn Reson Med. 2019;81:3392-3405.
Yan X, Pedersen JO, Wei L, Zhang X, Xue R. Multichannel double-row transmission line array for human MR imaging at ultrahigh fields. IEEE Trans Biomed Eng. 2015;62:1652-1659.
Guérin B, Gebhardt M, Serano P, et al. Comparison of simulated parallel transmit body arrays at 3 T using excitation uniformity, global SAR, local SAR, and power efficiency metrics. Magn Reson Med. 2015;73:1137-1150.
Hardy CJ, Giaquinto RO, Piel JE, et al. 128-channel body MRI with a flexible high-density receiver-coil array. J Magn Reson Imaging. 2008;28:1219-1225.
Maunder A, Rao M, Robb F, Wild JM. Combined transmit array and 8-channel receive coil array for 19F/1H for human lung imaging at 1.5 T utilizing MEMS transmit-receive detuning. In Proceedings of the 25th Annual Meeting of ISMRM, Honolulu, HI, 2017. p. 1052.
Steensma BR, Voogt IJ, Leiner T, et al. An 8-channel Tx/Rx dipole array combined with 16 Rx loops for high-resolution functional cardiac imaging at 7T. MAGMA. 2018;31:7-18.
Pozar DM. Microwave Engineering. 4th ed. Hoboken, NJ: John Wiley & Sons; 2012.
Maunder AM, Daneshmand M, Mousavi P, Fallone BG, De Zanche N. Stray capacitance between magnetic resonance imaging coil elements: models and application to array decoupling. IEEE Trans Microw Theory Techn. 2013;61:4667-4677.
Reykowski A, Wright SM, Porter JR. Design of matching networks for low noise preamplifiers. Magn Reson Med. 1995;33:848-852.
Brunner D. A high speed, high power T/R switching frontend. In Proceedings of the 24th Annual Meeting of ISMRM, Singapore, 2016. p. 496.
Keimel C, Claydon G, Li B, Park JN, Valdes ME. Microelectromechanical-systems-based switches for power applications. IEEE Trans Ind Appl. 2012;48:1163-1169.
Maunder A, Fallone BG, Daneshmand M, De Zanche N. Experimental verification of SNR and parallel imaging improvements using composite arrays. NMR Biomed. 2015;28:141-153.
Och JG, Clarke GD, Sobol WT, Rosen CW, Mun SK. Acceptance testing of magnetic resonance imaging systems: report of AAPM nuclear magnetic resonance task group No. 6. Med Phys. 1992;19:217-229.
Hayes CE, Roemer PB. Noise correlations in data simultaneously acquired from multiple surface coil arrays. Magn Reson Med. 1990;16:181-191.
Ohliger MA, Grant AK, Sodickson DK. Ultimate intrinsic signal-to-noise ratio for parallel MRI: electromagnetic field considerations. Magn Reson Med. 2003;50:1018-1030.
Brown R, Wang Y, Spincemaille P, Lee RF. On the noise correlation matrix for multiple radio frequency coils. Magn Reson Med. 2007;58:218-224.
Cao X, Fischer E, Gruschke O, et al. The noise factor of receiver coil matching networks in MRI. Magn Reson Imaging. 2017;37:252-259.
Nordmeyer-Massner JA, De Zanche N, Pruessmann KP. Noise figure characterization of preamplifiers at NMR frequencies. J Magn Reson. 2011;210:7-15.
Deoni SCL. High-resolution T1 mapping of the brain at 3T with driven equilibrium single pulse observation of T1 with high-speed incorporation of RF field inhomogeneities (DESPOT1-HIFI). J Magn Reson Imaging. 2007;26:1106-1111.
Klose U. Mapping of the radio frequency magnetic field with a MR snapshot FLASH technique. Med Phys. 1992;19:1099-1104.
Couch M, Ball I, Li T, et al. Optimized strategies for 19F MRI of human lungs and comparison of UTE and gradient echo imaging. In Proceedings of the 25th Annual Meeting of ISMRM, Honolulu, HI, 2017. p. 777.
Alon L, Lattanzi R, Lakshmanan K, et al. Transverse slot antennas for high field MRI. Magn Reson Med. 2018;80:1233-1242.
Clement JD, Gruetter R, Ipek O. A human cerebral and cerebellar 8-channel transceive RF dipole coil array at 7T. Magn Reson Med. 2019;81:1447-1458.
Avdievich NI, Giapitzakis IA, Pfrommer A, Henning A. Decoupling of a tight-fit transceiver phased array for human brain imaging at 9.4T: loop overlapping rediscovered. Magn Reson Med. 2018;79:1200-1211.
Chen GA, Zhang B, Cloos MA, Sodickson DK, Wiggins GC. A highly decoupled transmit-receive array design with triangular elements at 7T. Magn Reson Med. 2018;80:2267-2274.
Paska J, Cloos MA, Wiggins GC. A rigid, stand-off hybrid dipole, and birdcage coil array for 7 T body imaging. Magn Reson Med. 2018;80:822-832.
Jin J, Weber E, Destruel A, et al. An open 8-channel parallel transmission coil for static and dynamic 7T MRI of the knee and ankle joints at multiple postures. Magn Reson Med. 2018 ;79:1804-1816.
Duensing GR, Brooker HR, Fitzsimmons JR. Maximizing signal-to-noise ratio in the presence of coil coupling. J Magn Reson. 1996;111:230-235.
Ohliger MA, Ledden P, McKenzie CA, Sodickson DK. Effects of inductive coupling on parallel MR image reconstructions. Magn Reson Med. 2004;52:628-639.
Colotti R, Delacoste J, Ginami G, et al. A comparison between the UTE and PETRA pulse sequences for fluorine-19 MRI at 3 Tesla. In Proceedings of the 24th Annual Meeting of ISMRM, Singapore, 2016. p. 3714.
Couch MJ, Ball IK, Li T, et al. Pulmonary ultrashort echo time 19F MR imaging with inhaled fluorinated gas mixtures in healthy volunteers: feasibility. Radiology. 2013;269:903-909.
Weiger M, Pruessmann KP. MRI with zero echo time. eMagRes. 2012;1:311-321.
Biederer J, Mirsadraee S, Beer M, et al. MRI of the lung (3/3)-current applications and future perspectives. Insights Imaging. 2012;3:373-386.
Walraven J. Failure mechanisms in MEMS. In Proceedings International Test Conference (ITC), Charlotte, NC, 2003. p. 828.
Çelik H, Eryaman Y, Altıntaş A, Abdel-Hafez IA, Atalar E. Evaluation of internal MRI coils using ultimate intrinsic SNR. Magn Reson Med. 2004;52:640-649.
Yan X, Xue R, Zhang X. A monopole/loop dual-tuned RF coil for ultrahigh field MRI. Quant Imag Med Surg. 2014;8:225-231.
Kumar A, Bottomley PA. Optimized quadrature surface coil designs. MAGMA. 2008;21:41-52.

Auteurs

Adam Maunder (A)

POLARIS, Imaging Group, Department of IICD, University of Sheffield, Sheffield, United Kingdom.

Madhwesha Rao (M)

POLARIS, Imaging Group, Department of IICD, University of Sheffield, Sheffield, United Kingdom.

Fraser Robb (F)

POLARIS, Imaging Group, Department of IICD, University of Sheffield, Sheffield, United Kingdom.
GE Healthcare, Aurora, OH, USA.

Jim M Wild (JM)

POLARIS, Imaging Group, Department of IICD, University of Sheffield, Sheffield, United Kingdom.

Articles similaires

Humans Ketamine Propofol Pulmonary Atelectasis Female
Humans Magnetic Resonance Imaging Phantoms, Imaging Infant, Newborn Signal-To-Noise Ratio
1.00
Humans Magnetic Resonance Imaging Brain Infant, Newborn Infant, Premature
Respiratory Syncytial Virus Infections Humans Animals Mice STAT3 Transcription Factor

Classifications MeSH