## Abstract In this paper, various planar printed microwave bandpass filters (BPFs) are designed and analyzed by applying a nonuniform finite‐difference time‐domain (NU‐FDTD) method. These filters, referred to as integrated‐circuit package filters (ICPFs), are designed in such a way that they opera
Design and analysis of integrated-circuit package antenna (ICPA) for dual-band wireless transceivers
✍ Scribed by Ming-Sze Tong; Mingwu Yang; Qunsheng Cao; Hyeong-Seok Kim; Yilong Lu; Yinchao Chen; Tae-Gyu Chang
- Publisher
- John Wiley and Sons
- Year
- 2006
- Tongue
- English
- Weight
- 333 KB
- Volume
- 16
- Category
- Article
- ISSN
- 1096-4290
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✦ Synopsis
This article presents study of a dual-band integrated-circuit package antenna (ICPA), which operates concurrently on dual bands at 2.4 and 5.25 GHz. The antenna is designed and printed on the top surface of an IC package and fed by a single coaxial line, while the transceiver is implemented on the opposite side of the package, through the separation of a common ground plate. This "cavity-down" arrangement minimizes the electromagnetic interference between the antenna and transceiver, and satisfies the miniaturization of the design. The study consists of numerical computations, which are performed through an in-house computer solver based on the nonuniform finite-difference time-domain (NU-FDTD) method and experimental measurements. Together with the data computed using the highfrequency structure simulator (HFSS) software, the results show excellent agreement between the numerical and experimental data, and the proposed structure is deemed as a useful application in the area of highly integrated wireless transceivers.
📜 SIMILAR VOLUMES
## Abstract A novel integrated‐circuit pressed‐ceramic package antenna is proposed for the single‐chip solution of a wireless transceiver. The antenna printed on a dual‐in‐line package is studied experimentally at 2.4 GHz. The results show that the antenna has achieved a bandwidth of 15.7% and a ga
## Abstract The original article to which this erratum refers was published in __Microwave and Optical Technology Letters__ Microwave Opt Technol Lett (2006) 48(4) 756
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