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Abstract
Low-terahertz (Low-THz, 100 GHz-1.0 THz) technology is expected to provide unprecedented data rates in future generations of wireless system such as the 6 th generation (6G) mobile communication system. Increasing the carrier frequencies from millimeter wave to THz is a potential solution to guarantee the transmission rate and channel capacity. Due to the large transmission loss of Low-THz wave in free space, it is particularly urgent to design high-gain antennas to compensate the additional path loss, and to overcome the power limitation of Low-THz source. Recently, with the continuous updating and progress of additive manufacturing (AM) and 3D printing (3DP) technology, antennas with complicated structures can now be easily manufactured with high precision and low cost. In the first part, this paper demonstrates different approaches of recent development on wideband and high gain sub-millimeter-wave and Low-THz antennas as well as their fabrication technologies. In addition, the performances of the state-of-the-art wideband and high-gain antennas are presented. A comparison among these reported antennas is summarized and discussed. In the second part, one case study of a broadband high-gain antenna at 300 GHz is introduced, which is an all-metal model based on the Fabry-Perot cavity (FPC) theory. The proposed FPC antenna is very suitable for manufacturing using AM technology, which provides a low-cost, reliable solution for emerging THz applications.
Originalsprache | englisch |
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Aufsatznummer | 9039653 |
Seiten (von - bis) | 57615 - 57629 |
Seitenumfang | 15 |
Fachzeitschrift | IEEE Access |
Jahrgang | 8 |
DOIs | |
Publikationsstatus | Veröffentlicht - 17 März 2020 |
ASJC Scopus subject areas
- Elektrotechnik und Elektronik
- Allgemeiner Maschinenbau
- Allgemeine Materialwissenschaften
- Allgemeine Computerwissenschaft
Fields of Expertise
- Information, Communication & Computing
Treatment code (Nähere Zuordnung)
- Experimental
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- 1 Abgeschlossen
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FWF - WISDOM - Aktive und passive integrierte Antennen für THz Kommunikationssysteme
Bösch, W. (Teilnehmer (Co-Investigator)), Gadringer, M. E. (Teilnehmer (Co-Investigator)) & Köhler, J. (Teilnehmer (Co-Investigator))
1/01/17 → 31/12/19
Projekt: Forschungsprojekt
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140 GHz Additive Manufacturing Low-Cost and High-Gain Fabry-Perot Resonator Antenna
Xu, R., Gao, S., Sanz Izquierdo, B., Gu, C., Reynaert, P., Standaert, A., Gibbons, G., Dmitry, I., Bösch, W. & Gadringer, M. E., 28 Feb. 2020, 2020 International Workshop on Antenna Technology, iWAT 2020. 4 S. 9083841Publikation: Beitrag in Buch/Bericht/Konferenzband › Beitrag in einem Konferenzband › Begutachtung
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3D-Printed 140 GHz Beam-Scanning Antenna Using Partially Reflecting Surface
Xu, R., Gao, S., Sanz-Izquierdo, B., Reynaert, P., Standaert, A., Gibbons, G., Bösch, W. & Gadringer, M. E., 24 Aug. 2020, S. 289-290. 2 S.Publikation: Konferenzbeitrag › Paper › Begutachtung
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A D-Band 3D-Printed Antenna
Gu, C., Gao, S., Fusco , V., Gibbons, G., Sanz-Izquierdo, B., Standaert, A., Reynaert, P., Bösch, W., Gadringer, M. E., Xu, R. & Yang, X., 1 Apr. 2020, in: IEEE Transactions on Terahertz Science and Technology. 10, 5, S. 433 - 442 10 S., 9064607.Publikation: Beitrag in einer Fachzeitschrift › Artikel › Begutachtung