Design of Flexible Multi-Band Miniature Antenna Based on Minkowski Fractal Structure and Folding Technique for Miniature Wireless Transmission System
-
Published:2023-07-12
Issue:14
Volume:12
Page:3059
-
ISSN:2079-9292
-
Container-title:Electronics
-
language:en
-
Short-container-title:Electronics
Author:
Liu Kechen12, Sun Dapeng12, Su Tao1, Zheng Xu12, Li Chaobo12
Affiliation:
1. Institute of Microelectronics of the Chinese Academy of Sciences, Beijing 100029, China 2. University of Chinese Academy of Sciences, Beijing 100049, China
Abstract
In light of the predicament concerning the small gain and narrow frequency range of miniature antennas, this paper employs the implementation of a fractal repeating array structure and a double-layer folding antenna structure. Through these measures, the miniature antenna is endowed with a high gain and an expansive frequency range, all within its diminutive size. The paper presents an exquisite and high-gain flexible multi-band antenna, utilizing a dielectric substrate composed of the flexible material polyimide, with a thickness of merely 0.1 mm. The implementation of this flexible material bestows a feathery mass of merely 4 mg upon the antenna, enabling it to seamlessly conform to various shapes. This makes it particularly well-suited for employment within miniature wireless transmission systems and compact mobile communication devices. In an endeavor to enhance impedance matching and radiation characteristics, the Minkowski fractal structure is ingeniously incorporated as the repeating array element. This repeating array structure assumes a pivotal role and, when combined with the double-layer folding antenna structure, achieves the objective of miniaturization. Remarkably, the antenna’s dimensions measure a mere 0.04 λ0 × 0.026 λ0 (λ0 @ 2.4 GHz). The proposed antenna boasts a remarkably diminutive volume of merely 5 × 3 × 0.1 mm3, with the measured and simulated results exhibiting a striking concurrence. Both sets of results demonstrate resonance across multiple frequencies, namely, 2.4 GHz, 5.2 GHz and 5.8 GHz. Furthermore, within the effective frequency range, the antenna attains a maximum gain of 1.65 dBi and 4.37 dBi, respectively.
Funder
Key Research Program of Frontier Projects of the Chinese Academy of Sciences Original Innovation Projects from 0 to 1 National Natural Science Foundation of China Key Deployment Program of National Defense Science Technology Innovation of Chinese Academy of Sciences
Subject
Electrical and Electronic Engineering,Computer Networks and Communications,Hardware and Architecture,Signal Processing,Control and Systems Engineering
Reference25 articles.
1. Abdulzahra, D.H., Alnahwi, F., Abdullah, A.S., Al-Yasir, Y.I.A., and Abd-Alhameed, R.A. (2022). A Miniaturized Triple-Band Antenna Based on Square Split Ring for IoT Applications. Electronics, 11. 2. Mu, W., Lin, H., Wang, Z., Li, C., Yang, M., Nie, W., and Wu, J. (2022). A Flower-Shaped Miniaturized UWB-MIMO Antenna with High Isolation. Electronics, 11. 3. Ali, S.M., Sovuthy, C., Imran, M.A., Socheatra, S., Abbasi, Q.H., and Abidin, Z.Z. (2020). Recent Advances of Wearable Antennas in Materials, Fabrication Methods, Designs, and Their Applications: State-of-the-Art. Micromachines, 11. 4. Miniaturized Dual-Band Antenna for GSM1800, WLAN, and Sub-6 GHz 5G Portable Mobile Devices;Abolade;J. Electr. Comput. Eng.,2022 5. Zhang, X.-Q., Wang, X.-F., and Song, W.-Y. (2021, January 25–28). Compact Triple-band Monopole Antenna with Dual Fork-shaped Strips for WLAN/WiMAX Applications. Proceedings of the 2020 International Symposium on Antennas and Propagation (ISAP), Osaka, Japan.
Cited by
3 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|