Measurement and performance evaluation of triple band differential integrated extraoral rectifying antenna for data transfer and RF energy harvesting for tongue drive system.


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
22 10 2024
Historique:
received: 20 03 2024
accepted: 30 09 2024
medline: 23 10 2024
pubmed: 23 10 2024
entrez: 22 10 2024
Statut: epublish

Résumé

Wearable assistive devices are vitally important for tetraplegic individuals to provide valuable insights into their intended directives tailored to tongue motions in wireless healthcare industries. The flexible differentially driven extraoral antenna and rectenna measurement system are developed to enable differential sensing and monitoring of the set of unique tongue gestures for extraoral tongue drive system (eTDS) applications in three frequency bands of Industrial, Scientific, and Medical (ISM) (915.0 MHz, 2400 MHz, and 5800 MHz). The performance analysis is carried out using the heterogeneous human head model. The differential rectifier is coplanarly integrated with the differential extraoral antenna on the same 0.254 mm thin and 9.5 mm wider Rogers RT/ Duroid 6010 LM substrate. The footprint of the fabricated differential rectenna is 0.135 [Formula: see text] 0.082 [Formula: see text][Formula: see text] 0.002 [Formula: see text] where the planar size of differential rectifier is 15.75[Formula: see text] 2.5 mm

Identifiants

pubmed: 39438535
doi: 10.1038/s41598-024-74769-8
pii: 10.1038/s41598-024-74769-8
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

24827

Informations de copyright

© 2024. The Author(s).

Références

Kim, J. et al. Assessment of the tongue-drive system using a computer, a smartphone, and a powered-wheelchair by people with tetraplegia. J. Spinal Cord Med. 24, 1–2 (2013).
Tejas, C., Tejashwini, V. & Murari, V. Assistive technology: An IoT based device for physically challenged people and hospital inmates. In 3rd IEEE Int. Conf. Recent Trends Electron. Inf. Commun. Technol. RTEICT 2018 - Proc. 1906–1911. https://doi.org/10.1109/RTEICT42901.2018.9012369 (2018).
Jafari, A., Buswell, N., Ghovanloo, M. & Mohsenin, T. A. Low-power Wearable stand-alone Tongue Drive System for people with severe disabilities. IEEE Trans. Biomed. Circuits Syst. 12, 58–67 (2018).
doi: 10.1109/TBCAS.2017.2757031 pubmed: 29377796
Huo, X. & Ghovanloo, M. Tongue drive: a wireless tongue-operated means for people with severe disabilities to communicate their intentions. IEEE Commun. Mag. 50, 128–135 (2012).
doi: 10.1109/MCOM.2012.6316786
Postolache, O. A., Girao, P. M. B. S., Mendes, J., Pinheiro, E. C. & Postolache, G. Physiological parameters measurement based on wheelchair embedded sensors and advanced signal processing. IEEE Trans. Instrum. Meas. 59, 2564–2574 (2010).
doi: 10.1109/TIM.2010.2057590
San-Segundo, R., Echeverry-Correa, J. D., Salamea, C. & Pardo, J. M. Human activity monitoring based on hidden Markov models using a smartphone. IEEE Instrum. Meas. Mag. 19, 27–31 (2016).
doi: 10.1109/MIM.2016.7777649
Nazemzadeh, P., Moro, F., Fontanelli, D., Macii, D. & Palopoli, L. Indoor positioning of a robotic walking assistant for large public environments. IEEE Trans. Instrum. Meas. 64, 2965–2976 (2015).
doi: 10.1109/TIM.2015.2437637
Liao, L. et al. A novel 16-channel wireless system for electroencephalography measurements with dry spring-loaded sensors. IEEE Trans. Instrum. Meas. 63, 1545–1555 (2014).
doi: 10.1109/TIM.2013.2293222
Tanimoto, Y., Nanba, K., Tokuhiro, A., Ukida, H. & Yamamoto, H. Measurement system of transfer motion for patients with spinal cord injuries. IEEE Trans. Instrum. Meas. 57, 213–219 (2008).
doi: 10.1109/TIM.2007.909501
Tanimoto, Y., Nanba, K., Director, A. T., Ukida, H. & Yamamoto, H. Measurement of wheelchair turn radius for SCI patient’s remodeling house. 2009 IEEE Intrumentation Meas. Technol. Conf. I2MTC 2009, 1352–1356. https://doi.org/10.1109/IMTC.2009.5168666 (2009).
doi: 10.1109/IMTC.2009.5168666
Chandra, R. & Johansson, A. J. Antennas and propagation for in-mouth tongue-controlled devices in wireless body area networks. IEEE Antennas Wirel. Propag. Lett. 14, 1518–1521 (2015).
doi: 10.1109/LAWP.2014.2366092
Ahlawat, S., Kanaujia, B. K., Rambabu, K., Peter, I. & Matekovits, L. Circularly polarized differential intra-oral antenna design validation and characterization for tongue drive system. Sci. Rep. 13, 1–18 (2023).
doi: 10.1038/s41598-023-36717-w
Andreasen Struijk, N. S. Development and functional demonstration of a wireless intraoral inductive tongue computer interface for severely disabled persons. Disabil. Rehabil Assist. Technol. 12, 631–640 (2017).
doi: 10.1080/17483107.2016.1217084
Kong, F., Qi, C., Lee, H., Durgin, G. D. & Ghovanloo, M. Antennas for Intraoral Tongue Drive System at 2.4 GHz: design, characterization, and comparison. IEEE Trans. Microw. Theory Tech. 66, 2546–2555 (2018).
doi: 10.1109/TMTT.2017.2787118
Zada, M. & Yoo, H. Miniaturized dual band antennas for intra-oral tongue drive system in the ISM bands 433 MHz and 915 MHz: design, safety, and link budget considerations. IEEE Trans. Antennas Propag. 67, 5843–5852 (2019).
doi: 10.1109/TAP.2019.2916585
Basir, A., Zada, M. & Yoo, H. Compact and flexible wideband antenna for intraoral tongue-drive system for people with disabilities. IEEE Trans. Antennas Propag. 68, 2405–2409 (2020).
doi: 10.1109/TAP.2019.2943416
Kim, J. et al. Assessment of the tongue-drive system using a computer, a smartphone, and a powered-wheelchair by people with tetraplegia. IEEE Trans. Neural Syst. Rehabil Eng. 24, 68–78 (2016).
doi: 10.1109/TNSRE.2015.2405072 pubmed: 25730827
Ahlawat, S., Singh, N., Kanaujia, B. K. & Rambabu, K. A. Dual band differential intraoral antenna and system for wireless data and radiative near-field power transfer. IEEE Trans. Antennas Propag. 1–1. https://doi.org/10.1109/tap.2022.3232723 (2023).
Iqbal, A. et al. Biotelemetry and wireless powering of biomedical implants using a rectifier integrated self-diplexing implantable antenna. IEEE Trans. Microw. Theory Tech. 69, 3438–3451 (2021).
doi: 10.1109/TMTT.2021.3065560
Iqbal, A., Al-Hasan, M., Mabrouk, I., Ben & Denidni, T. A. Wireless powering and telemetry of deep-body ingestible bioelectronic capsule. IEEE Trans. Antennas Propag. 70, 9819–9830 (2022).
doi: 10.1109/TAP.2022.3184549
Duan, Z., Guo, Y. X., Xue, R. F., Je, M. & Kwong, D. L. Differentially fed dual-band implantable antenna for biomedical applications. IEEE Trans. Antennas Propag. 60, 5587–5595 (2012).
doi: 10.1109/TAP.2012.2209197
Zhang, K. et al. A conformal differentially fed antenna for ingestible capsule system. IEEE Trans. Antennas Propag. 66, 1695–1703 (2018).
doi: 10.1109/TAP.2018.2804673
Wang, H., Feng, Y. & Guo, Y. A. Differentially-fed antenna with complex impedance for ingestible wireless capsules. IEEE Antennas Wirel. Propag. Lett. PP, 1 (2021).
Ahlawat, S., Kanaujia, B. K. & Rambabu, K. Flexible and wearable dual-band differential extraoral antenna for eTDS applications. IEEE J. Electromagn. RF Microwaves Med. Biol. https://doi.org/10.1109/JERM.2023.3271459 (2023).
doi: 10.1109/JERM.2023.3271459
Liu, Y., Chen, Y., Lin, H. & Juwono, F. H. A novel differentially fed compact dual-band implantable antenna for biotelemetry applications. IEEE Antennas Wirel. Propag. Lett. 15, 1791–1794 (2016).
doi: 10.1109/LAWP.2016.2536735
Wang, H., Feng, Y. & Guo, Y. A. Differentially fed antenna with complex impedance for ingestible wireless capsules. IEEE Antennas Wirel. Propag. Lett. 21, 139–143 (2022).
doi: 10.1109/LAWP.2021.3121424
Shen, S., Chiu, C. Y. & Murch, R. D. A dual-port triple-band L-probe microstrip patch rectenna for ambient RF energy harvesting. IEEE Antennas Wirel. Propag. Lett. 16, 3071–3074 (2017).
doi: 10.1109/LAWP.2017.2761397
Aboualalaa, M., Mansour, I. & Pokharel, R. K. Energy harvesting rectenna using high-gain triple-band antenna for powering internet-of-things (IoT) devices in a Smart Office. IEEE Trans. Instrum. Meas. 72, 1–12 (2023).
Iqbal, A., Sura, P. R., Al-Hasan, M., Mabrouk, I. B. & Denidni, T. A. Wireless power transfer system for deep-implanted biomedical devices. Sci. Rep. 12, 1–13 (2022).
doi: 10.1038/s41598-022-18000-6
Sun, H. An enhanced rectenna using differentially-fed rectifier for wireless power transmission. IEEE Antennas Wirel. Propag. Lett. 15, 32–35 (2016).
Chandravanshi, S., Sarma, S., Sen & Akhtar, M. J. Design of triple band differential rectenna for RF energy harvesting. IEEE Trans. Antennas Propag. 66, 2716–2726 (2018).
doi: 10.1109/TAP.2018.2819699
De Donno, D., Catarinucci, L. & Tarricone, L. RAMSES: RFID augmented module for smart environmental sensing. IEEE Trans. Instrum. Meas. 63, 1701–1708 (2014).
doi: 10.1109/TIM.2014.2298692
Verma, S., Rano, D., Malhotra, S. & Hashmi, M. S. Measurements and characterization of a newly developed novel miniature WIPT System. IEEE Trans. Instrum. Meas. 70, 1–11. https://doi.org/10.1109/TIM.2021.3075537 (2021).
Arrawatia, M., Baghini, M. S. & Kumar, G. Differential microstrip antenna for RF energy harvesting. IEEE Trans. Antennas Propag. 63, 1581–1588 (2015).
doi: 10.1109/TAP.2015.2399939
Benassi, F., Paolini, G., Masotti, D. & Costanzo, A. A. Wearable flexible energy-autonomous filtenna for ethanol detection at 2.45 GHz. IEEE Trans. Microw. Theory Tech. 69, 4093–4106 (2021).
doi: 10.1109/TMTT.2021.3074155
Ullah, M. A. et al. A review on antenna technologies for ambient RF energy harvesting and wireless power transfer: designs, challenges and applications. IEEE Access. 10, 17231–17267 (2022).
doi: 10.1109/ACCESS.2022.3149276
Sahadat, M. N., Alreja, A., Srikrishnan, P. & Ghovanloo, M. A multimodal human computer interface combining head movement, speech and tongue motion for people with severe disabilities. In IEEE Biomed. Circuits Syst. Conf. Eng. Heal. Minds Able Bodies, BioCAS 2015 - Proc. https://doi.org/10.1109/BioCAS.2015.7348317 (2015).
Huo, X., Wang, J. & Ghovanloo, M. A magneto-inductive sensor based wireless tongue-computer interface. IEEE Trans. Neural Syst. Rehabil Eng. 16, 497–504 (2008).
doi: 10.1109/TNSRE.2008.2003375 pubmed: 18990653 pmcid: 4470907
Quddious, A. et al. Dual-band compact rectenna for UHF and ISM wireless power transfer systems. 1–6. https://doi.org/10.1109/TAP.2020.3025299 (2020).
High-impedance, W. S. A 5. 8-GHz Band Highly Efficient 1-W Rectenna. 1–9 (2021).
Chandravanshi, S. & Katare, K. K. A flexible dual-band rectenna with full azimuth coverage. 9, (2021).
Stoecklin, S., Yousaf, A., Volk, T. & Reindl, L. Efficient wireless powering of biomedical sensor systems for multichannel brain implants. IEEE Trans. Instrum. Meas. 65, 754–764 (2016).
doi: 10.1109/TIM.2015.2482278
Lin, Q. W. & Zhang, X. Y. Ext. Input Power Range 64, 2943–2954 (2016).
Gabriel, C., Gabriel, S. & Corthout, E. The dielectric properties of biological tissues: I. Literature survey. Phys. Med. Biol. 41, 2231–2249 (1996).
doi: 10.1088/0031-9155/41/11/001 pubmed: 8938024
Basir, A. & Yoo, H. Efficient wireless power transfer system with a miniaturized quad-band implantable antenna for deep-body multitasking implants. IEEE Trans. Microw. Theory Tech. 68, 1943–1953. https://doi.org/10.1109/TIM.2022.3185622 (2020).
doi: 10.1109/TMTT.2020.2965938
Ahlawat, S. et al. Design and performance measurement of implantable differential integrated antenna for wireless biomedical instrumentation applications. IEEE Trans. Instrum. Meas. 71, 1–10 (2022).
Gadhafi, R., Cracan, D., Mustapha, A. A. & Sanduleanu, M. An h-shaped differential fed patch antenna for a gan base station transmitter. Prog Electromagn. Res. M. 80, 181–191 (2019).
doi: 10.2528/PIERM19020603
Bercich, R. A., Duffy, D. R. & Irazoqui, P. P. Far-field RF powering of implantable devices: safety considerations. IEEE Trans. Biomed. Eng. 60, 2107–2112 (2013).
doi: 10.1109/TBME.2013.2246787 pubmed: 23412566
Liu, C., Guo, Y. X. & Xiao, S. Capacitively loaded circularly polarized implantable patch antenna for ISM band biomedical applications. IEEE Trans. Antennas Propag. 62, 2407–2417 (2014).
doi: 10.1109/TAP.2014.2307341
Park, H. & Ghovanloo, M. Wireless communication of intraoral devices and its optimal frequency selection. IEEE Trans. Microw. Theory Tech. 62, 3205–3215 (2014).
doi: 10.1109/TMTT.2014.2365804 pubmed: 26236039 pmcid: 4517622
Kong, F., Zada, M., Yoo, H. & Ghovanloo, M. Adaptive matching transmitter with dual-band antenna for intraoral tongue drive system. IEEE Trans. Biomed. Circuits Syst. 12, 1279–1288 (2018).
doi: 10.1109/TBCAS.2018.2866960 pubmed: 30605083

Auteurs

Sarita Ahlawat (S)

School of Computational and Integrative Sciences, Jawaharlal Nehru University, New Delhi, 110067, India.

Binod Kumar Kanaujia (BK)

School of Computational and Integrative Sciences, Jawaharlal Nehru University, New Delhi, 110067, India.
Dr. Ambedkar National Institute of Technology Jalandhar, Jalandhar, 144011, India.

Neeta Singh (N)

University School of Automation & Robotics, Guru Gobind Singh Indraprastha University, Delhi, India.

Aijaz M Zaidi (AM)

Dr. Ambedkar National Institute of Technology Jalandhar, Jalandhar, 144011, India.

Karumudi Rambabu (K)

Department of Electrical and Computer Engineering, University of Alberta, Edmonton, AB, T6G 2V4, Canada.

Ladislau Matekovits (L)

Dept. of Electronics and Telecommunications Politecnico di Torino, Turin, Italy.
Politehnica University Timisoara, Timisoara, 300223, Romania.
Instituto di Elettronica e di Ingegneria dell'Informazione e delle Telecomunicazioni, National Research Council of Italy, Turin, 10129, Italy.

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