Resonance-Based Microwave Technique for Body Implant Sensing

被引:3
|
作者
Gonzalez-Lopez, Giselle [1 ]
Jofre Roca, Lluis [1 ]
Garcia de Valdecasas, Susana Amoros [1 ]
Rodriguez-Leor, Oriol [2 ,3 ,4 ]
Galvez-Monton, Carolina [2 ,5 ]
Bayes-Genis, Antoni [2 ,3 ,4 ,5 ]
O'Callaghan, Joan [1 ]
机构
[1] Univ Politecn Cataluna, Sch Telecommun Engn, ES-08034 Barcelona, Spain
[2] Inst Salud Carlos III, CIBERCV, Madrid 28029, Spain
[3] Germans Trias & Pujol Univ Hosp, Heart Inst iCor, Badalona 08916, Spain
[4] Univ Autonoma Barcelona, Dept Med, E-08193 Barcelona, Spain
[5] Hlth Sci Res Inst Germans Trias & Pujol, ICREC Res Program, Can Ruti Campus, Badalona 08916, Spain
关键词
microwave sensing; biosensing; object localization; implant; differential resonance; stent; non-ionizing; phantom; relative permittivity;
D O I
10.3390/s19224828
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
There is an increasing need for safe and simple techniques for sensing devices and prostheses implanted inside the human body. Microwave wireless inspection may be an appropriate technique for it. The implanted device may have specific characteristics that allow to distinguish it from its environment. A new sensing technique based on the principle of differential resonance is proposed and its basic parameters are discussed. This technique allows to use the implant as a signal scattering device and to detect changes produced in the implant based on the corresponding change in its scattering signature. The technique is first tested with a canonic human phantom and then applied to a real in vivo clinical experiment to detect coronary stents implanted in swine animals.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Microwave Resonance-Based Lab-on-a-Chip Local Pressure Sensing
    Kalovics, Mate
    Szolgay, Peter
    Ivan, Kristof
    Szabo, Zsolt
    IEEE SENSORS JOURNAL, 2024, 24 (08) : 12085 - 12093
  • [2] Resonance-Based Microwave Transducer for Contactless Salinity Detection
    Gugliandolo, Giovanni
    Crupi, Giovanni
    Calabrese, Luigi
    Iannazzo, Daniela
    Latino, Mariangela
    Quattrocchi, Antonino
    Donato, Nicola
    2023 IEEE INTERNATIONAL WORKSHOP ON METROLOGY FOR THE SEA; LEARNING TO MEASURE SEA HEALTH PARAMETERS, METROSEA, 2023, : 284 - 288
  • [3] Surface Plasmon Resonance-Based Cortisol Sensing: A Numerical Investigation
    Yang, Xiuzhi
    Singh, Harbinder
    Uniyal, Arun
    Xu, Shaoyong
    Kumar, Rajeev
    Pal, Amrindra
    PLASMONICS, 2025,
  • [4] A simulation of surface plasmon resonance-based tapered fiber and sensing
    Aminah, Nina Siti
    Chalimah, Siti
    Hendro
    Hidayat, R.
    Djamal, M.
    INTERNATIONAL CONFERENCE ON PHYSICAL INSTRUMENTATION AND ADVANCED MATERIALS, 2017, 853
  • [5] Surface plasmon resonance-based synthesis of gold nanorods for sensing applications
    Sana Sabahat
    Memoona Ejaz
    Farhat Saira
    Rahman Shah Zaib Saleem
    Yumna Nazish
    Lubna Khalil
    Aisha Naeem
    Chemical Papers, 2023, 77 : 5901 - 5911
  • [6] Surface plasmon resonance-based synthesis of gold nanorods for sensing applications
    Sabahat, Sana
    Ejaz, Memoona
    Saira, Farhat
    Saleem, Rahman Shah Zaib
    Nazish, Yumna
    Khalil, Lubna
    Naeem, Aisha
    CHEMICAL PAPERS, 2023, 77 (10) : 5901 - 5911
  • [7] Thickness-induced resonance-based complex permittivity measurement technique for barium strontium titanate ceramics at microwave frequency
    Xia, Song
    Xu, Zhuo
    Wei, Xiaoyong
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2009, 80 (11):
  • [8] Microwave Resonance-Based Reflective Mode Displacement Sensor With Wide Dynamic Range
    Mehrjoo, Zahra
    Ebrahimi, Amir
    Ghorbani, Kamran
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2022, 71
  • [9] Surface Plasmon Resonance-Based Refractive Index Biosensor: an External Sensing Approach
    Mitu, Sumaiya Akhtar
    Aktar, Mst Nargis
    Ibrahim, Sobhy M.
    Ahmed, Kawsar
    PLASMONICS, 2022, 17 (04) : 1581 - 1592
  • [10] Fano Resonance-Based Blood Plasma Monitoring and Sensing using Plasmonic Nanomatryoshka
    Pathania, Pankaj
    Shishodia, Manmohan Singh
    PLASMONICS, 2021, 16 (06) : 2117 - 2124