Abdul Basir

dblp:240/3485 · DBLP profile ↗
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5ranked-venue papers
0as first author
5since 2021 · last 2026
0000-0003-2180-7105ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Computer networks · 4 · 4 since 2021Applied, interdisciplinary, general and emerging computing · 1 · 1 since 2021
YearPublicationVenuePosition
2026 Compact In-Band Full-Duplex Antenna for Deeply Implantable Biomedical IoT Applications
abstract
Traditional duplexing antennas for implantable biomedical devices often rely on half-duplex or multi-band designs, which allow either transmission or reception at a given time or require separate frequency bands for uplink and downlink. Such configurations result in reduced data rates, increased latency, higher hardware complexity, and potential spectral congestion, thereby limiting their suitability for advanced in-body communication. In this work, an innovative in-band full-duplex (IBFD) concept is introduced in a miniaturized implantable antenna optimized for deep implantation at a depth of 65 mm in a human torso phantom. The antenna operates at 2.4 GHz on both Port 1 and Port 2 with independently controllable bands. A compact volume of 5.81 mm3(π × (2.7)2× 0.254) is achieved through the integration of shorting pins, open-ended slots, and multiple semi-circular slots. High port-to-port isolation of 29.5 dB is obtained using an ultra-thin substrate, superstrate, and a narrow 0.4 mm separation between the radiating patches. The antenna exhibits omnidirectional radiation patterns at both ports, with measured gains of -20.2 dBi and -20.3 dBi for Port 1 and Port 2, respectively. The proposed design demonstrates ultra-miniaturization, high isolation, reliable impedance matching, acceptable radiation performance, and independently controllable duplexing bands. These characteristics make it highly suitable for deeply implanted biomedical devices, significantly improving spectral efficiency and enabling simultaneous transmission and reception for real-time bidirectional communication in next-generation implantable systems.
Abdullah Alshammari, Muhammad Zada, Abdul Basir, Ismail Ben Mabrouk
IEEE Internet Things J.3
2025 Miniaturized Dual-Band MIMO Implantable Antenna for IoMT-Enabled WCE and Deep Tissue Applications
abstract
Implantable devices play a vital role in IoT-based healthcare, creating the need for compact, multi-band antennas that support high data rates for biotelemetry. This study presents a miniaturized dual-band, dual-port MIMO implantable antenna designed for wireless capsule endoscopy (WCE) and deep tissue applications. The antenna is integrated within a capsule-type device and has compact dimensions of 11.5×6×0.6mm3. It operates in the Industrial, Scientific, and Medical (ISM) bands of 433.1–434.8 MHz and 902–928 MHz. The proposed antenna supports the transmission of high-quality images and video over a considerable distance. Miniaturization and high isolation are achieved using carefully designed meandered lines. This design avoids the use of shorting vias or ground-plane slots, which simplifies the structure and reduces back radiation. As a result, it eliminates the need for a complex decoupling network to enhance isolation. This antenna is the first reported MIMO implantable design to operate in the lower ISM bands while maintaining an ultra-compact size. Following a detailed simulation-based analysis, a prototype was fabricated. The measured results showed excellent agreement with simulations. The antenna provides impedance bandwidths of 61 MHz (466–405 MHz) and 112 MHz (846–958 MHz), and measured gains of –40.2 dBi and –35 dBi at 433 and 915 MHz, respectively. Specific absorption rate (SAR) analysis was conducted to ensure compliance with IEEE safety standards. A link margin study was also performed, demonstrating reliable communication for high data rates of 1, 78, and 120 Mbps, with a minimum coverage distance of 10 meters based on SAR constraints. To assess diversity performance, envelope correlation coefficient (ECC) and diversity gain (DG) were evaluated and found within acceptable limits. The antenna also exhibits pattern diversity at both operational bands. The proposed design offers a reliable and compact solution for high-data-rate, SAR-compliant biotelemetry in modern IoT-based healthcare systems.
Ayesha Kanwal, Muhammad Zada, Syed Manaf Ali Shah, Abdul Basir, Shahid Khan 0001, Jamal Nasir, Slawomir Koziel
IEEE Internet Things J.4
2025 Efficient Wirelessly Powered Biotelemetric System for IoMT-Enabled Leadless Pacemakers in Dynamic Cardiac Environments
abstract
Leadless cardiac pacemakers (LCPs) enhance health technology by offering a minimally invasive and reliable solution for cardiac pacing; however, their reliance on batteries poses a challenge to achieving extended device longevity. This study proposes an efficient wireless power transfer (WPT) system for LCP devices, in which the dynamic misalignments caused by the natural contraction and relaxation of heart muscles during cardiac cycles and respiratory movements are characterized for the first time. The system comprised an off-body transmitter (Tx) and an in-body rectifier-integrated conformal receiver antenna (Rx). A single-band Tx is optimized to deliver the power wirelessly in the 915 MHz frequency band, whereas the Rx element is configured to offer dual-band characteristics at 433 MHz (data-telemetric mode) and 915 MHz (power reception mode). In addition to the peak gains of −30.6 and −24.8 dBi at the respective lower and higher frequency bands, the Rx exhibited a wireless power reception efficiency of up to 0.53% with a harvested voltage of more than 3 V at 55 mm Tx-Rx separation. The simulation results were experimentally validated in a heart-mimicking phantom, demonstrating the effectiveness of the proposed WPT system in maintaining robust power delivery even in the presence of misalignments induced by physiological motions. Moreover, the rectifier’s measured efficiency of 82% emphasizes its effective power delivery from the perspective of commercial pacemakers. In addition, a WPT-enabled real-time wireless biotelemetric communication link was established, highlighting the system’s potential as a versatile Internet of Medical Things (IoMT) platform for monitoring various real-time physiological parameters.
Izaz Ali Shah, Muhammad Zada, Abdul Basir, Syed Ahson Ali Shah, Usman Rizqi Iman, Young-Hyo Lim, Hyoungsuk Yoo
IEEE Internet Things J.3
2025 IoMT-Enabled Smart-Cap-Powered Ultrawideband Brain Implant for Multichannel Epilepsy Monitoring Applications
abstract
Multichannel neural monitoring systems are crucial in the accurate diagnosis and treatment of epilepsy by continuously recording neural activity, allowing precise identification of epileptic zones. These systems demand an ultrawideband (UWB) antenna with wireless power reception capability to facilitate high-data-rate communication and battery-free operation for the development of compact and long-lasting neural devices. This articel introduces a compact ($9\times 11\times 0$.25 mm3) battery-free implantable UWB system with an integrated rectifier for multichannel epilepsy monitoring, wirelessly powered by a novel 2.4 GHz smart cap-based transmitter (Tx) antenna. Extensive simulations and measurements are conducted to analyze the system’s performance. The implantable system exhibits a measured ultrawide bandwidth of 6.8 GHz (1.2–8 GHz) with peak gain values of −16.5, −23, and −24.1 dBi at 2.4, 4.8, and 5.8 GHz, respectively. The proposed wearable smart cap-based Tx antenna efficiently transfers power to the UWB implant system in various scenarios, including lateral and rotational misalignments, achieving a measured transmission coefficient$(|S_{21}|)$of −20.06 dB at a 15 mm distance while ensuring user comfort and mobility. Moreover, the compact rectifying circuit achieves a maximum conversion efficiency of 78.4% at a low input power of 6 dBm across a 2 k$\Omega $load. In addition, the safety of the system was validated using a realistic human head model to ensure compliance with the IEEE specific absorption rate limits. The features and performance metrics demonstrate that the proposed UWB implant system, powered by a wearable smart cap, offers a promising solution for safe, continuous, and battery-free multichannel epilepsy monitoring applications.
Muhammad Zada, Izaz Ali Shah, Abdul Basir, Hyoungsuk Yoo
IEEE Internet Things J.3
2024 IoT-Enabled Real-Time Health Monitoring via Smart Textile Integration With LoRa Technology Across Diverse Environments
abstract
Textiles integrated with electronics and long-range (LoRa) wireless technology are revolutionizing e-healthcare by enabling remote patient monitoring through wireless body area networks. This article presents a smart textile-based LoRa technology system for monitoring heart rate and predicting body temperature over both short and long distances. The system incorporates a LoRa module integrated with a smart textile, featuring sensors for photoplethysmography, electrocardiography, and body temperature monitoring. An embroidered monopole antenna seamlessly integrates into clothing, offering triple-band wideband operation at 433, 610, and 915 MHz with minimal susceptibility to human body effects and structural deformations. The proposed wearable antenna, assessed through specific absorption rate analysis, exhibits minimal exposure to electromagnetic radiation, ensuring user safety. The smart textile LoRa-enabled healthcare application (STLHA) monitors the received signal strength indicator, heart rate, and temperature data. Experimental results demonstrate effective outdoor communication ranges of up to 250 m at 915 MHz and 350 m at 433 MHz, with indoor ranges of up to 50 m. The STLHA offers a wireless solution for wearable devices, which enhances their functionality and usability in e-healthcare applications.
Usman Rizqi Iman, Muhammad Zada, Abdul Basir, Shahzeb Hayat, Young-Hyo Lim, Hyoungsuk Yoo
IEEE Trans. Ind. Informatics3