한양대학교 · 공학
Saiful Islam 교수의 연구실은 5G 및 차세대 무선 통신을 위한 고성능 안테나 기술에 중점을 두고 있으며, 특히 밀리미터파(mmWave) 대역에서의 고비율 주파수 통합, 패턴 재구성 기능, 광범위한 스펙트럼 커버리지 및 높은 이득을 구현하는 데에 전문성을 기르고 있습니다. 스마트폰과 차량 통신(V2X) 시스템을 대상으로 저두께, 소형화, 고기능성 안테나 어레이를 설계하며, PIN 다이오드 기반의 빔스위치 제어 기술을 핵심으로 삼고 있습니다. 특히 실시간 빔 스위칭과 광역 공간 커버리지 확보를 위한 하이브리드 구조 설계에 뛰어난 기여를 하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
To maintain the compactness of future 5G smartphones, integration of sub-6 GHz and millimeter-wave (mm-wave) bands is a challenging task due to the large frequency ratio. We, therefore, propose a single-fed triple-band antenna with a large frequency ratio. The proposed antenna is composed of a microstrip patch radiator with an inverted U-shaped slot for dual-band operation in the mm-wave frequencies (28 and 38 GHz). A meandered radiating structure is linked to the microstrip patch radiator throu
In this article, a dual-band integrated compact phased-antenna array is proposed for fifth-generation (5G) smartphone communication. The proposed single-layered substrate-based antenna array has a dual band, wideband, high gain, and wide beam-steering function. The dual bands were achieved by passive integration of meandered lines and a microstrip patch antenna using a dual-stub-based filter. Owing to the small size of the antenna array (56.65 mm <inline-formula xmlns:mml="http://www.w3.org/1998
The spatial coverage of a fifth-generation (5G) smartphone antenna array is an important factor to consider in the design and implementation of 5G wireless communication systems. In this article, we present a compact, low-profile, and reconfigurable radiation pattern millimeter-wave (mm-wave) smartphone antenna array that can provide high spatial coverage through its hybrid structure and beam-scanning capabilities. The proposed antenna array introduces p-i-n diode-controlled strips that enable b
We introduced a circularly arranged Vivaldi endfire antenna array combined with nona-band rectifiers to enhance the capability of receiving electromagnetic power to supply power for Internet of Thing (IoT) devices. The rectifier encompasses frequencies of 0.9, 1.4, 1.8, 2.1, 2.4, 2.6, 3.5, 4.9, and 5.8 GHz, primarily covering telecom and Wi-Fi operating frequencies. Higher efficiency values at a lower input power of -10 dBm were achieved as 73.98%, 54.54%, 63.16%, 27.14%, 59.58%, 56.60%, 46.62%,
A wide-spatial coverage, low-profile, pattern reconfigurable, millimeter-wave antenna array designed for Vehicle-to-Everything (V2X) communication systems, crucial for fifth-generation wireless networks. The array features a hybrid structure and beam-scanning capabilities, ensuring extensive spatial coverage in the n257 band. Utilizing PIN diode-controlled strips, the antenna enables vertical beam tilting up to ±40° on a car with less than 1 dB gain variation. Furthermore, the subarray achieves
This paper introduces a compact, low-profile, and pattern-reconfigurable millimeter-wave V2X antenna array. Its hybrid design, coupled with beam-scanning capabilities, facilitates extensive spatial coverage within the n257 band. By employing PIN diode-controlled strips, the antenna array achieves vertical beam tilting of up to ±40° on a vehicle with minimal gain deviation of under 1 dB. Moreover, the subarray can scan the beam within an angle of ±32° while maintaining a gain exceeding 8 dBi. The