Frequency-selective signal enhancement by a passive dual coil resonator for magnetic particle imaging

被引:9
作者
Pantke, Dennis [1 ]
Mueller, Florian [1 ]
Reinartz, Sebastian [2 ]
Philipps, Jonas [1 ]
Dadfar, Seyed Mohammadali [3 ]
Peters, Maximilian [1 ]
Franke, Jochen [1 ,4 ]
Schrank, Franziska [1 ]
Kiessling, Fabian [3 ,5 ]
Schulz, Volkmar [1 ,5 ,6 ]
机构
[1] Rhein Westfal TH Aachen, Inst Expt Mol Imaging, Dept Phys Mol Imaging, Aachen, Germany
[2] Uniklin RWTH Aachen, Dept Diagnost & Intervent Radiol, Aachen, Germany
[3] Rhein Westfal TH Aachen, Med Fac, Inst Expt Mol Imaging, Aachen, Germany
[4] Bruker BioSpin MRI GmbH, Preclin Imaging Div, Ettlingen, Germany
[5] Fraunhofer Inst Digital Med MEVIS, Bremen, Germany
[6] Rhein Westfal TH Aachen, Phys Inst B 3, Aachen, Germany
关键词
magnetic particle imaging; passive receive coil; signal enhancement; SYSTEM; RECONSTRUCTION; HYPERTHERMIA; FEASIBILITY; FORMULATION; RESOLUTION;
D O I
10.1088/1361-6560/ac6a9f
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Objective. Magnetic particle imaging (MPI) visualizes the spatial distribution of magnetic nanoparticles. MPI already provides excellent temporal and good spatial resolution, however, to achieve translation into clinics, further advances in the fields of sensitivity, image reconstruction and tracer performance are needed. In this work, we propose a novel concept to enhance the MPI signal and image resolution by a purely passive receive coil insert for a preclinical MPI system. Approach. The passive dual coil resonator (pDCR) provides frequency-selective signal enhancement. This is enabled by the adaptable resonance frequency of the pDCR network, which is galvanically isolated from the MPI system and composed of two coaxial solenoids connected via a capacitor. The pDCR aims to enhance frequency components related to high mixing orders, which are crucial to achieve high spatial resolution. Main Results. In this study, system matrix measurements and image acquisitions of a resolution phantom are carried out to evaluate the performance of the pDCR compared to the integrated receive unit of the preclinical MPI and a dedicated rat-sized receive coil. Frequency-selective signal increase and spatial resolution enhancement are demonstrated. Significance. Common dedicated receive coils come along with noise-matched receive networks, which makes them costly and difficult to reproduce. The presented pDCR is a purely passive coil insert that gets along without any additional receive electronics. Therefore, it is cost-efficient, easy-to-handle and adaptable to other MPI scanners and potentially other applications providing the basis for a new breed of passive MPI receiver systems.
引用
收藏
页数:12
相关论文
共 47 条
  • [31] Design and Simulation Study of Excitation Coil System with Different Array Configurations for Magnetic Particle Imaging Application
    Birahim, Muhd Fikri Shahkhirin
    Othman, Nurmiza
    Sapuan, Syarfa Zahirah
    Tomari, Mohd Razali Md
    INTERNATIONAL JOURNAL OF INTEGRATED ENGINEERING, 2020, 12 (03): : 278 - 286
  • [32] Magnetic Particle Imaging: In vitro Signal Analysis and Lumen Quantification of 21 Endovascular Stents
    Wegner, Franz
    von Gladiss, Anselm
    Haegele, Julian
    Grzyska, Ulrike
    Sieren, Malte Maria
    Stahlberg, Erik
    Oechtering, Thekla Helene
    Luedtke-Buzug, Kerstin
    Barkhausen, Joerg
    Buzug, Thorsten M.
    Friedrich, Thomas
    INTERNATIONAL JOURNAL OF NANOMEDICINE, 2021, 16 : 213 - 221
  • [33] Magnetic particle imaging scanner with 10-kHz drive-field frequency
    Schilling, Meinhard
    Ludwig, Frank
    Kuhlmann, Christian
    Wawrzik, Thilo
    BIOMEDICAL ENGINEERING-BIOMEDIZINISCHE TECHNIK, 2013, 58 (06): : 557 - 563
  • [34] Anisotropic edge-preserving network for resolution enhancement in unidirectional Cartesian magnetic particle imaging
    Shang, Yaxin
    Liu, Jie
    Liu, Yanjun
    Zhang, Bo
    Wu, Xiangjun
    Zhang, Liwen
    Tong, Wei
    Hui, Hui
    Tian, Jie
    PHYSICS IN MEDICINE AND BIOLOGY, 2023, 68 (04)
  • [35] Spatial-Frequency Multi-Scale Transformer for Deblurring and Shape-Preserving Reconstruction in Magnetic Particle Imaging
    Shang, Yaxin
    Liu, Jie
    Liu, Yanjun
    Wang, Yueqi
    Shen, Yusong
    Wu, Xiangjun
    Zhang, Liwen
    Hui, Hui
    Tian, Jie
    IEEE TRANSACTIONS ON COMPUTATIONAL IMAGING, 2024, 10 : 196 - 207
  • [36] Complex Relationship between Iron Oxide Nanoparticle Degradation and the Signal Intensity in Magnetic Particle Imaging
    Guzy, Julia
    Chakravarty, Shatadru
    Buchanan, Foster J.
    Chen, Haoran
    Gaudet, Jeffrey M.
    Hix, Jeremy M. L.
    Mallett, Christiane L.
    Shapiro, Erik M.
    ACS APPLIED NANO MATERIALS, 2020, 3 (05): : 3991 - 3999
  • [37] Fundamentals and Applications of Dual-Frequency Magnetic Particle Spectroscopy: Review for Biomedicine and Materials Characterization
    Krause, Hans-Joachim
    Engelmann, Ulrich M.
    ADVANCED SCIENCE, 2025, 12 (13)
  • [38] RETNet: Resolution enhancement Transformer network for magnetic particle imaging based on X-space
    Guo, Lishuang
    Ma, Chenbin
    Dong, Zhen
    Tian, Jie
    An, Yu
    Liu, Jiangang
    Computers in Biology and Medicine, 2024, 181
  • [39] Local shape adaptive template filtering for signal-to-noise ratio enhancement in magnetic resonance imaging
    Ahn, CB
    Song, YC
    Oh, CH
    Yi, Y
    Park, DJ
    MEDICAL IMAGING 1998: IMAGE PROCESSING, PTS 1 AND 2, 1998, 3338 : 884 - 892
  • [40] Monotone Signal Localization Using Magnetoresistive Sensor Array for Low-Field Magnetic Particle Imaging
    Trisnanto, Suko Bagus
    Kasajima, Tamon
    Shibuya, Tomohiko
    Takemura, Yasushi
    IEEE TRANSACTIONS ON MAGNETICS, 2023, 59 (11)