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SQUID-based simultaneous detection of NMR and biomagnetic signals at ultra-low magnetic fields

机译:基于SQUID的超低磁场同时检测NMR和生物磁信号

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摘要

Nuclear magnetic resonance (NMR) and magnetic resonance imaging (MRI) at ultra-low magnetic fields (ULF, fields of /spl sim//spl mu/T) have several advantages over their counterparts at higher magnetic fields. These include narrow line widths, the possibility of novel imaging schemes such as T/sub 1/ weighted images, and reduced system cost and complexity. In addition, ULF NMR/MRI with superconducting quantum interference devices (SQUIDs) is compatible with simultaneous measurements of biomagnetic signals, a capability conventional systems cannot offer. SQUID-based ULF MRI has already been demonstrated, as have measurements of simultaneous MEG and NMR at ULF. In this paper we will show simultaneous magnetocardiography (MCG) and magnetomyography (MMG) with NMR are also possible. Another compelling application of NMR/MRI at ULF is the possibility of directly measuring magnetic resonance consequences of neuronal signals. In this paper we explore simultaneous MMG/NMR and MCG/NMR for an effect on the NMR signal, in T/sub 2//sup */, that might be associated with the effects of bioelectric currents.
机译:在超低磁场(ULF,/ spl sim // spl mu / T的场)下的核磁共振(NMR)和磁共振成像(MRI)与在较高磁场下的对应物相比具有多个优点。这些包括较窄的线宽,新颖的成像方案(例如T / sub 1 /加权图像)的可能性以及降低的系统成本和复杂性。此外,具有超导量子干扰设备(SQUID)的ULF NMR / MRI与生物磁信号的同时测量兼容,这是常规系统无法提供的功能。已经证明了基于SQUID的ULF MRI,以及在ULF上同时进行MEG和NMR的测量。在本文中,我们将展示同时进行心磁描记术(MCG)和具有NMR的磁描记术(MMG)。 NMR / MRI在ULF上的另一个引人注目的应用是直接测量神经元信号的磁共振后果的可能性。在本文中,我们探索同时MMG / NMR和MCG / NMR对T / sub 2 // sup * /中的NMR信号的影响,这可能与生物电流的影响有关。

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