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Article

Design of Tri-Band Patch Antenna with Enhanced Bandwidth and Diversity Pattern for Indoor Wireless Communication

1
School of Mechanical and Electrical Engineering, Hefei Technology College, Hefei 230601, China
2
School of Information and Control Engineering, China University of Mining and Technology, Xuzhou 221000, China
3
The National Joint Engineering Laboratory of Internet Applied Technology of Mines, Xuzhou 221000, China
*
Author to whom correspondence should be addressed.
Submission received: 20 June 2022 / Revised: 9 July 2022 / Accepted: 18 July 2022 / Published: 25 July 2022
(This article belongs to the Special Issue SMART Development of Household Wireless Sensors)

Abstract

:
A novel tri-band patch antenna with enhanced bandwidth and a diverse radiation pattern is presented in this study. An off-center probe is introduced to excite a conventional circular patch antenna, and the multi-frequency resonance modes of TM01, TM02, and TM03 with different radiation properties are obtained. Four metal cambered strips are distributed around the circular patch to adjust the impedance matching of the circular patch antenna. In order to widen the impedance bandwidth, a parasitic patch placed above the circular patch antenna is employed in this work. Then, a double-layer patch antenna is manufactured and tested to verify the accuracy of the theoretical analysis and simulated result. The measured results, which are basically consistent with the simulated results, show that the designed antenna can operate in three bandwidths of 1.79–1.81 GHz, 3.74–4.0 GHz, and 4.93–5.44 GHz, with radiation patterns of directional, omnidirectional, and three-beam pointing. The radiation efficiency higher than 85.6% and the maximum gain greater than 9.42 dBi suggest that the investigated antenna is suitable for multi-service scenarios in wireless communication.

1. Introduction

With the continuous emergence of various wireless services and new scenarios, more and more wireless communication systems will coexist for a long time, with increasing requirements for the miniaturization, intelligence, and multi-function of wireless communication systems. A multi-band antenna with pattern diversity can not only support the working frequency bands under multiple wireless system standards, but can also meet the specific needs of the communication system for polarization and radiation direction in different frequency bands, greatly increasing the functionality of the antenna. However, the structure of the antenna with related functions is relatively complicated, and the radiation performance also needs to be improved.
In [1], a center-fed circular patch antenna with a monopole-like radiation pattern is proposed. A group of metal vias concentrically surrounds the circular patch and shorted ground plane. Attributed to the shorted vias, the TM01 and TM02 modes are excited, and the measured results show that an impedance bandwidth of 18% with a maximum gain of 6 dBi is achieved. Combined with the center-fed circular patch and shorted metal via technology, two dual-band stacked patch antennas are designed in [2,3]. In [2], a stacked-patch structure is constructed to generate a weak coupling effect; then, dual-band performance with an omnidirectional pattern is acquired. A truncated patch etched with a U-shaped slot is placed on the upper layer of the antenna in [3] to achieve a unidirectional radiation pattern with circular polarization characteristics. Meanwhile, an omnidirectional radiation pattern with the feature of linear polarization is obtained by introducing TM01 and TM02 modes generated by a lower circular patch. Antennas that have a stacked structure are also proposed in [4,5]. In [4], an artificial magnetic conductor (AMC) characterized by four zero-phases of reflection coefficient is placed on a quad-band coplanar waveguide (CPW) antenna to achieve multi-band and high gain characteristics. Unlike [4], Ref. [5] adopts a dual-antenna design technique. The upper and lower layers of the antenna are, respectively, a printed dipole array responsible for horizontal polarization and a discone antenna responsible for vertical polarization. The measured results show that the two polarization modes of the antenna can work in two bandwidths of 770–980 MHz and 1.69–3.21 GHz, respectively.
In [6,7], two dual-band patch antennas with radiation-differentiated characteristics are presented by employing different radiating elements. However, the maximum gain of these two antennas at the lower band is only 3.1 dBi. Based on multi-resonant modes, two dual-band, dual-polarized antennas are investigated in [8,9]. However, the impedance bandwidths of the designed antennas are lower than 3.6%. In [10], a rectangular patch loading a branch on one radiating side and etching a rectangular slot on the other side is proposed to generate TM01 mode and modified TM20 and TM30 modes. The measured result shows that the single patch antenna can operate at three bands and the measured patterns are characterized by broadside radiation. A similar method is also applied in [11] to introduce three sets of orthogonal modes, and then three resonance bandwidths with circular polarization characteristics are obtained. In [12], a novel multi-band patch antenna with unidirectional radiation is designed, based on a coupled resonators network. The four frequency bands can be adjusted by changing the coupling strength between the resonators. In addition, the operation bands can be adjusted without changing the shape of the antenna, providing a flexible method of antenna design. However, the measured bandwidths of the antennas in [10,11,12] are relatively narrow. By loading two types of slots on the patch antenna, the method of obtaining multi-resonant modes for the antenna and increasing the bandwidth of the antenna is applied in [13]. A composite right/left-handed transmission line technique is also introduced to design the patch antenna with the feature of multi-frequency in [14]. Compared with the technologies of the shorted via, slotting, and stacked structure, the composite right/left-handed transmission line can not only increase the resonant band, but also has the advantages of reducing cross-polarization and enhanced gain, as shown in [15,16]. However, for the antennas in [14,15,16], the characteristics of miniaturization, low profile, multi-band, and high gain are not concentrated in a particular antenna.
In this study, a patch antenna with the characteristics of tri-band, enhanced bandwidth, high gain, and a diverse radiation pattern is investigated. Two circular substrates are placed up and down to form a double-layer structure. A circular patch printed on the upper surface of Substrate 1 is directly excited by an off-center probe. Meanwhile, four metal cambered strips surround the outer side of the circular patch to adjust the impedance matching. Then, TM01, TM02, and TM03 resonance modes with acceptable reflection coefficients are obtained. Furthermore, a parasitic patch located on the upper surface of Substrate 2 widens the impedance bandwidth of the patch antenna by coupling with the circular patch. The measured results show that the double-layer patch antenna has differentiated radiation patterns in three frequency bands, with impedance bandwidths of 1.1%, 6.7%, and 9.8%. Moreover, the advantages of the single-probe back-feeding method, simple structure, and easy processing all indicate that the antenna is suitable for multi-service applications.

2. Antenna Design and Theoretical Analysis

As shown in Figure 1, the geometric diagram of the proposed tri-band patch antenna and the optimal size of the corresponding configuration are given. It can be seen that the antenna is composed of two circular substrates and an air layer with a height of H2. Substrate 1, which has a permittivity of 2.2, a tangent loss of 0.0001, and a height of H1, is located in the lower layer of the antenna. A circular patch with a radius of R4 and a ground plane with a radius of R1 are both concentric with Substrate 1, and are printed on the upper and lower surfaces of Substrate 1. An off-center probe is introduced to change the surface current on the circular patch, which is similar to the principle of etching a slot on the patch [10]. Meanwhile, four cambered strips surrounding the outer side of the circular patch are also printed on the upper surface of Substrate 1. Substrate 2, which has the same electrical parameters as Substrate 1, is located at the uppermost layer of the proposed antenna, but the thickness is selected as H3 to reduce the profile height of the overall antenna. A parasitic patch with a radius of R5 is printed on the upper surface of Substrate 2. The parasitic patch is excited by the coupling effect with the lower circular patch. Finally, the two substrates and a foam board with a thickness of 0.5 mm in the middle are fixed together with two nylon screws.
In order to clearly explain the working mechanism of the designed antenna for multi-frequency, widened bandwidth, and diverse radiation patterns, the three antennas that appear in sequence during the antenna design process are shown in Figure 2. Ant. 1 is a traditional single-layer circular patch antenna with an off-center probe. Compared with the center-fed circular patch antenna in [1,2,6], the off-center feeding proposed in this paper introduces more resonance modes. As for Ant. 1, the distance between the feeding point and the center of the circular patch is set to d, and the radius of the circular patch is set to R4. In terms of the reflection coefficient, a detailed parameter analysis is carried out for these two parameters, and the corresponding simulated results are shown in Figure 3. It can be observed from Figure 3a that when d = 0—that is, when the center-fed probe is employed—the antenna has only one resonance point at 4.53 GHz. As d gradually increases, Ant. 1 exhibits the characteristics of multi-frequency resonance. In detail, when d = 9.8 mm, Ant. 1 exhibits a reflection coefficient of less than −10 dB at 2.18 GHz, 3.62 GHz, and 4.48 GHz, respectively. On the basis that d is determined to be 9.8 mm, we further study the influence of R4 on antenna resonance. It can be seen from Figure 3b that, as the size of the circular patch continues to increase, the three resonant frequency points of Ant. 1 all move to lower frequencies. Based on the above discussion, it can be concluded that, for Ant. 1, the position of the feeding point determines the resonance mode of the antenna, and the position of the resonance frequency point is mainly influenced by the size of the circular patch.
Since the optimal reflection coefficients of Ant. 1 at the frequency points of 2.18 GHz and 3.62 GHz are greater than −10.56 dB, which fails to meet the requirements of engineering applications, some improvements are implemented in Ant. 1. As shown in Figure 2a, four cambered strips surrounding the outside of the circular patch are introduced to form Ant. 2, and the simulated result of S11 is given in Figure 4. It is worth mentioning that metal cambered strips surrounding the circular patch are introduced to improve impedance matching. The specific performance is the gap between the four cambered strips; the gap between the strips and the circular patch is both capacitive and employed to reduce the inductance introduced by the coaxial probe. Compared with the simulated result of Ant. 1, the improved Ant. 2 also has three resonance modes, which are the same as Ant. 1. The specific performance of the reflection coefficient amplitudes of Ant. 2 at the three frequency points of 2.14 GHz, 3.64 GHz, and 4.43 GHz are −15.18 dB, −16.34 dB, and −32.08 dB, respectively, all of which satisfy the requirement of less than −15 dB. On the basis of Ant. 2, Substrate 2, printed with a parasitic patch, is placed directly above Ant. 2, and an air layer with thickness of 0.5 mm is introduced between the two substrates to form Ant. 3. Attributed to the coupling effect between the circular patch and the parasitic patch, the surface current distribution on the circular patch changes, and the simulated results of S11 are given in Figure 4. The simulated results show that the reflection coefficients of Ant. 3 in the three frequency bands of 1.86–1.89 GHz, 3.77–4.09 GHz, and 5.14–5.59 GHz are all lower than −10 dB. According to the location of the frequency band, three resonant frequency bands of Ant. 3 are named f1, f2, and f3 (from low to high). Compared with the previous two antennas, Ant. 3 achieves the characteristics of extended bandwidth while maintaining three resonance modes.
In order to explain the working mechanism of the multi-mode and the expanded bandwidth more clearly, a parameter analysis is carried out for the two key parameters of R5 and H2. The simulated results are shown in Figure 5. As shown in Figure 5a, as the radius R5 of the parasitic patch increases, f1 gradually shifts to a lower frequency, accompanied by a gradually deteriorating reflection coefficient. Similarly, f2, which has two resonance frequency points, also shows a tendency to move to a low frequency. However, the resonant point f22 at the high frequency within f2 remains basically unchanged, while the resonant point f21 at the low frequency gradually moves to an even lower frequency, resulting in the gradual division of f2 into two adjacent frequency bands. As for the high-frequency band f3, Figure 5b shows the detailed simulated results. When the radius R5 of the parasitic patch is 29.8 mm, Ant. 3 exhibits dual-frequency f31 and f32 resonance characteristics at 5.24 GHz and 5.72 GHz. When the radius R5 increases to 31.8 mm in steps of 1 mm, both f31 and f32 move to a lower frequency, and the distance between the two frequency points gradually decreases. As shown by the solid black line in Figure 5b, adjacent f31 and f32 form a wide band with an acceptable reflection coefficient, and the additional resonance point f33 further extends f3. However, as R5 continues to increase, f31 and f32 finally merge into the resonance frequency of 5.31 GHz, and the frequency f33 is maintained at 5.57 GHz. It is worth noting that the reflection coefficient within f3 gradually deteriorates as R5 increases from 31.8 mm to 33.8 mm, and finally, the advantage of broadband is lost.
Figure 5c,d show the curve between the reflection coefficient of Ant. 3 and the air-layer thickness H2. It can be concluded from Figure 5c that, as H2 increases, f1 gradually moves to a higher frequency, and both f21 and f22 also show a tendency to move to a higher frequency. However, the reflection amplitude of f21 gradually increases, and the reflection coefficient of f22 exhibits the characteristics of improvement and then deterioration with the increase in H2. Figure 5d shows the graph of f3 varying with H2. It can be seen that, when H2 increases from 0 mm to 0.25 mm, f3 changes from a single-frequency point resonance of 5.06 GHz to a multi-frequency point resonance. As H2 continues to increase, f3 gradually moves to a higher frequency. It can also be observed from [17] that the equivalent permittivity εefq of the substrates with an air layer can be calculated using the following formula:
ε e f q = ε r ( H 2 + H 3 ) H 2 ε r + H 3
where εr and H3 represent the relative permittivity and thickness of Substrate 2. When the thickness H2 of the air layer increases, it can be seen from (1) that εefq gradually decreases, causing the three frequency bands of Ant. 3 to shift to a higher frequency. Finally, 0.5 mm is selected as the optimal value of H2 to ensure the broadband characteristics of Ant. 3.
The vector current distribution on the surface of both the circular patch and the parasitic patch is given in Figure 6 to vividly explain the broadband characteristics of Ant. 3. It can be seen from Figure 6a that the current on the parasitic patch at 1.87 GHz mainly flows along the x-axis direction with the characteristics of in-phase. Taking into account the current distribution of the circular patch, it can be concluded that Ant. 3 at 1.87 GHz is working in TM01 mode with a broadside radiation pattern. It should be noted that, after the parasitic patch is loaded, the influence of R5 on f1 is greater than that of R4. Due to the coupling effect between the parasitic patch and the circular patch, the original resonance points of Ant. 2 at 3.64 GHz and 4.43 GHz are close to each other, and finally, f21 and f22 of Ant. 3 are formed. Figure 6b shows the current distribution on the two patches when Ant. 3 operates at 3.84 GHz. The vector current on the circular patch flows from the center of the patch in two opposite directions along the x-axis, with out-of-phase characteristics. Moreover, the surface current on the parasitic patch also shows out-of-phase flowing from the center of the parasitic patch along the y-axis in two opposite directions. Attributed to the out-of-phase feature, Ant. 3 works at f2 with an omnidirectional radiation pattern, which is similar to the center-fed monopole patch antenna that resonates in the TM02 mode [2]. The benefit of the weak coupling between the circular radiating patch and the parasitic patch, when Ant. 3 works at 5.38 GHz, is that the current distribution of the circular patch is diametrically opposite to that of the parasitic patch, as shown in Figure 6c. Meanwhile, Figure 7a shows the electric field distribution of Ant. 3 at 5.38 GHz, which is the same as the working mechanism of the TM03 mode in Figure 7b. Combining Figure 6c and Figure 7, it can be concluded that at 5.83 GHz the TM03 mode dominates the working mode of Ant. 3 and the resonance bandwidth is 450 MHz.

3. Measured Results Discussion

In order to verify the accuracy of the simulated results of Ant. 3, the proposed tri-band patch antenna as shown in Figure 8 is fabricated, and the test items related to reflection coefficient, antenna gain, radiation efficiency, and radiation pattern are also carried out.
Regarding the reflection coefficient of the proposed tri-band patch antenna, the comparison curve between the simulated result and the measured result is depicted in Figure 9. The measured S11 shows that the fabricated antenna operates in three frequency bands of f1: 1.79–1.81 GHz, f2: 3.74–4.0 GHz, and f3: 4.93–5.44 GHz. Compared with the simulated results, both f1 and f3 show signs of moving towards a lower frequency, which is mainly due to errors introduced during the assembly and testing.
The reasons for the existence of more than three reflection nulls in Ant. 3 can be summarized as follows. Part of the reflection nulls of Ant. 3 is caused by the off-center feeding technology. The benefit of the off-center feeding technology is that Ant. 3 can work in a slot-like mode, which is similar to the principle that etches a slot with a specific shape on the radiating patch to achieve the notch effect. On the other hand, by loading the parasitic patch on the circular radiating patch of the antenna in the corresponding frequency band, the current on the circular patch and the current on the parasitic patch cancel each other out, and a notch response is also introduced.
Meanwhile, Figure 10 shows the measured results of antenna gain and radiation efficiency. As shown in Figure 10a, the measured maximum gains of the antenna in f1, f2, and f3 are, respectively, 6.35 dBi, 6.15 dBi, and 9.42 dBi, which are lower than the simulated gains of 7.20 dBi, 6.74 dBi, and 10.62 dBi. In terms of radiation efficiency, Figure 10 presents the compared results of measurement and simulation. The results show that the measured efficiencies in the three frequency bands are 89.2%, 86.9%, and 85.6%, respectively, and are lower than the simulated results of 98.0%, 93.6%, and 94.7%. The measured antenna gain and radiation efficiency both show partial attenuation, which is mainly due to the loss introduced by the 0.5 mm foam layer and the error in the welding and assembly process.
In order to visually reveal the pattern diversity of the designed antenna, Figure 11 shows the measured results of the radiation pattern at 1.80 GHz, 3.80 GHz, and 5.35 GHz. As shown in Figure 11a, the patterns which show broadside directional radiation on the xoz and yoz planes are obtained at 1.80 GHz, while an omnidirectional radiation pattern is achieved on the xoy plane at 3.80 GHz. Figure 11c shows the antenna pattern at 5.80 GHz with the characteristics of three adjacent beams on the xoz plane, which is caused by the introduction of higher-order modes. Based on the above analysis, the proposed Ant. 3 can be utilized for multi-service applications in wireless communication due to the characteristics of multi-mode operation, pattern diversity, and expanded bandwidth.

4. Comparison

As Table 1 shows, shorted via technology is employed in [1,2,3] to achieve the features of multi-band and broadband. Although the bandwidths of these antennas are all greater than 9%, the cross-polarization ratio below 18 dB and the size exceeding 1.3λ0 are not conducive to antenna integration and miniaturization applications. Slotting, shorted vias, and resonant stubs have been used in cross-combination to achieve multi-frequency characteristics. For example, in [10,11], additional resonant modes are introduced by etching slots on the radiating patch and loading parasitic resonant branches. In [18], a miniaturized antenna with four operating bandwidths is designed by combining slotting and shorted vias techniques. However, the gain of the antenna of below 2.5 dB and the low radiation efficiency are problems that need to be solved. A defected ground structure and coupled resonator network are also investigated in [4,12], respectively, obtaining tri-band and quadband resonance characteristics. For these two multi-band antennas, the advantages of broadband and high gain can only be realized as separate advantages on the individual antennas.
Compared with existing antennas, this paper utilizes off-center feeding technology to achieve the characteristics of tri-band resonance on a single-layer patch. The introduction of the circular parasitic patch not only widens the impedance bandwidth, but also improves the gain of the antenna. Benefiting from the diverse current distribution of the two patches, the antenna has directional and omnidirectional diverse radiation patterns. The measured results show that the radiation efficiency of higher than 85.6% and the maximum gain of greater than 9.42 dBi are obtained in a stacked structure. The impedance bandwidth of the antenna designed in this paper at f1 and f2 is too narrow. In conclusion, the design method in this paper is simple, easy to implement, and simultaneously obtains high gain, enhanced bandwidth, and pattern diversity on a single antenna.

5. Conclusions

A novel tri-band circular patch antenna is designed in this study by combining the technology of an off-center probe and a parasitic patch. Three resonant modes of TM01, TM02, and TM03 are achieved and attributed to the coupling effect between the stacked patches; the resonance bandwidth of the proposed antenna is broadened. Specifically, the antenna provides bandwidths of 20 MHz, 260 MHz, and 510 MHz, and antenna gains of up to 6.35 dBi, 6.15 dBi, and 9.42 dBi at f1, f2, and f3, respectively. Moreover, the measured results show that differentiated radiation patterns exhibiting broadside radiation, omnidirectional radiation, and three-beam radiation in the three bands are also obtained. Compared with the multiple-band antennas proposed in [10,11,18], the antenna designed in this paper has a radiation efficiency of no less than 85% and a simple structure, which suggests that it can be applied to the multi-service field of wireless communication, such as indoor routing, with a stronger penetration ability.

Author Contributions

Theoretical analysis and modeling simulation, M.G. and X.Z.; data collection and processing, M.G. and X.Z.; funding acquisition, M.G. and X.Z.; writing—original draft, M.G. and X.Z.; writing—review and checking, X.Z. All authors have read and agreed to the published version of the manuscript.

Funding

This work was supported by the Fundamental Research Funds for the Central Universities under Grant No. 2020ZDPY0223; the Natural Science Research Funds Project of Hefei Technology College under Grant No. 2021KJA01; Hefei Technology College High-level Talent Introduction Funding Project No. 2021KYQDZ007; and the Science and Technology Innovation Team Funding Project of Hefei Technology College No. 2022Akjcx06.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

The data presented in this study are available within the article.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Liu, J.H.; Xue, Q.; Wong, H.; Lai, H.W. Design and analysis of a low-profile and broadband microstrip monopolar patch antenna. IEEE Trans. Antennas Propag. 2013, 61, 11–18. [Google Scholar] [CrossRef]
  2. Gao, S.; Gei, L.; Zhang, D.G.; Qin, W. Low-profile dual-band stacked microstrip monopolar patch antenna for WLAN and car-to-car communications. IEEE Access 2018, 6, 69575–69581. [Google Scholar] [CrossRef]
  3. Ge, L.; Gao, S.; Li, Y.J.; Qin, W.; Wang, J.P. A low-profile dual-band antenna with different polarization and radiation properties over two bands for vehicular communications. IEEE Trans. Veh. Technol. 2019, 68, 1004–1008. [Google Scholar] [CrossRef]
  4. Gong, Y.J.; Yang, S.H.; Li, B.; Chen, Y.H.; Tong, F.L.; Yu, C.Y. Multi-band and high gain antenna using AMC ground characterized with four zero-phases of reflection coefficient. IEEE Access 2020, 6, 171457–171468. [Google Scholar] [CrossRef]
  5. Guo, D.; He, K.; Zhang, Y.; Song, M. A multiband dual-polarized omnidirectional antenna for indoor wireless communications systems. IEEE Antennas Wirel. Propag. Lett. 2017, 16, 290–293. [Google Scholar] [CrossRef]
  6. Liu, Y.; Li, X.; Yang, L.; Liu, Y. A dual-polarized dual-band antenna with omni-directional radiation patterns. IEEE Trans. Antennas Propag. 2017, 65, 4259–4262. [Google Scholar] [CrossRef]
  7. Zhang, J.D.; Zhu, L.; Liu, N.W.; Wu, W. Dual-band and dual-circularly-polarized single-layer microstrip array based on multi-resonant modes. IEEE Trans. Antennas Propag. 2017, 65, 1428–1433. [Google Scholar] [CrossRef]
  8. Wu, D.L.; Zhang, G.; Li, J.F.; Wu, Y.J.; Tian, X.X. A low-profile antenna with omnidirectional and unidirectional radiation patterns over two operation bands. IEEE Access 2019, 7, 182691–182700. [Google Scholar] [CrossRef]
  9. Yang, X.J.; Ji, Y.; Ge, L.; Zeng, X.R.; Wu, Y.L. A dual-band radiation-differentiated patch antenna for future wireless scenes. IEEE Antennas Wirel. Propag. Lett. 2020, 19, 1007–1011. [Google Scholar] [CrossRef]
  10. Qian, J.F.; Chen, F.C.; Chu, Q.X. A novel tri-band patch antenna with broadside radiation and its application to filtering antenna. IEEE Trans. Antennas Propag. 2018, 66, 5580–5585. [Google Scholar] [CrossRef]
  11. Tan, Q.; Chen, F.C. Tri-band circularly polarized antenna using a single patch. IEEE Antennas Wirel. Propag. Lett. 2020, 19, 2013–2017. [Google Scholar] [CrossRef]
  12. Mao, C.X.; Gao, S.; Wang, Y.; Izquierdo, B.S. A novel multiiband directional antenna for wireless communications. IEEE Antennas Wirel. Propag. Lett. 2017, 16, 1217–1220. [Google Scholar] [CrossRef]
  13. An, W.X.; Wang, X.; Fu, H.P.; Ma, J.G.; Huang, X.D.; Feng, B.T. Low-profile wideband slot-loaded patch antenna with multiresonant modes. IEEE Antennas Wirel. Propag. Lett. 2018, 17, 1309–1313. [Google Scholar] [CrossRef]
  14. Xu, H.X.; Wang, G.M.; Lv, Y.Y.; Qi, M.Q.; Gao, X.; Ge, S. Multifrequency monopole antennas by loading metamaterial transmission liines with dual-shunt branch circuit. Prog. Electromagn. Res. 2013, 137, 703–725. [Google Scholar] [CrossRef] [Green Version]
  15. Xu, H.X.; Wang, G.M.; Qi, M.Q.; Cai, T. Compact fractal left-handed structures for improved cross-polarization radiation pattern. IEEE Trans. Antennas Propag. 2014, 62, 546–554. [Google Scholar] [CrossRef]
  16. Xu, H.X.; Wang, G.M.; Qi, M.Q.; Zhang, C.X.; Liang, J.G.; Gong, J.Q.; Zhou, Y.C. Analysis and design of two-dimensional resonant-type composite right/left-handed transmission lines with compact gain-enhanced resonant antennas. IEEE Trans. Antennas Propag. 2013, 61, 735–747. [Google Scholar] [CrossRef]
  17. Lee, K.F.; Ho, K.; Dahele, J. Circular-disk microstrip antenna with an air gap. IEEE Trans. Antennas Propag. 1984, 32, 880–884. [Google Scholar]
  18. Boukarkar, A.; Lin, X.Q.; Jiang, Y.; Yu, Y.Q. Miniaturized single-feed multi-band patch antennas. IEEE Trans. Antennas Propag. 2017, 65, 850–854. [Google Scholar] [CrossRef]
Figure 1. Geometry of the proposed patch antenna: (a) top view of Substrate 1; (b) top view of Substrate 2; (c) side view of the proposed antenna. R1 = 48, R2 = 32, R3 = 27, R4 = 26.25, R5 = 33, R6 = 38, d = 9.8, lg = 4, H1 = 1.5, H2 = 0.5, H3 = 1.1 (all dimensions in mm).
Figure 1. Geometry of the proposed patch antenna: (a) top view of Substrate 1; (b) top view of Substrate 2; (c) side view of the proposed antenna. R1 = 48, R2 = 32, R3 = 27, R4 = 26.25, R5 = 33, R6 = 38, d = 9.8, lg = 4, H1 = 1.5, H2 = 0.5, H3 = 1.1 (all dimensions in mm).
Applsci 12 07445 g001
Figure 2. The evolution of the proposed tri-band patch antenna: (a) Ant. 1; (b) Ant. 2; (c) Ant. 3.
Figure 2. The evolution of the proposed tri-band patch antenna: (a) Ant. 1; (b) Ant. 2; (c) Ant. 3.
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Figure 3. The effect of different parameters on simulated S11 of Ant. 1. (a) d; (b) R4.
Figure 3. The effect of different parameters on simulated S11 of Ant. 1. (a) d; (b) R4.
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Figure 4. Comparison of simulated S11 for the three antennas.
Figure 4. Comparison of simulated S11 for the three antennas.
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Figure 5. The effect of different parameters on simulated S11 of Ant. 3: (a) the effect of different R5 on frequency bands f1 and f2; (b) the effect of different R5 on frequency band f3; (c) the effect of different H2 on frequency bands f1 and f2; (d) the effect of different H2 on frequency band f3.
Figure 5. The effect of different parameters on simulated S11 of Ant. 3: (a) the effect of different R5 on frequency bands f1 and f2; (b) the effect of different R5 on frequency band f3; (c) the effect of different H2 on frequency bands f1 and f2; (d) the effect of different H2 on frequency band f3.
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Figure 6. The simulated surface current distribution on the circular patch and parasitic patch of Ant. 3: (a) 1.87 GHz; (b) 3.84 GHz; (c) 5.38 GHz.
Figure 6. The simulated surface current distribution on the circular patch and parasitic patch of Ant. 3: (a) 1.87 GHz; (b) 3.84 GHz; (c) 5.38 GHz.
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Figure 7. (a) E-field distribution of the Ant. 3 at 5.38 GHz. (b) Sketch of the operation mechanism at TM03 mode.
Figure 7. (a) E-field distribution of the Ant. 3 at 5.38 GHz. (b) Sketch of the operation mechanism at TM03 mode.
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Figure 8. Photography of the fabricated patch antenna: (a) top view of Substrate 1; (b) top view of Substrate 2; (c) top view of the assembled antenna; (d) test process of the fabricated antenna.
Figure 8. Photography of the fabricated patch antenna: (a) top view of Substrate 1; (b) top view of Substrate 2; (c) top view of the assembled antenna; (d) test process of the fabricated antenna.
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Figure 9. Comparison of simulated results and measured results of the S11.
Figure 9. Comparison of simulated results and measured results of the S11.
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Figure 10. Simulated and measured gains and radiation efficiencies of the designed antenna: (a) gain; (b) radiation efficiency.
Figure 10. Simulated and measured gains and radiation efficiencies of the designed antenna: (a) gain; (b) radiation efficiency.
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Figure 11. Simulated and measured radiation patterns of the designed antenna in xoy, xoz, and yoz planes: (a) 1.80 GHz; (b) 3.80 GHz; (c) 5.35 GHz.
Figure 11. Simulated and measured radiation patterns of the designed antenna in xoy, xoz, and yoz planes: (a) 1.80 GHz; (b) 3.80 GHz; (c) 5.35 GHz.
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Table 1. Comparison Between Reported and the Proposed Antenna.
Table 1. Comparison Between Reported and the Proposed Antenna.
Ref.IMBW
(%)
PG
(dB)
Effi
(%)
XPR
(dB)
Size
03)
Num. of BandWays to Achieve Multi-Band and Wideband
[1]186-≥151.35 × 1.35 × 0.021Shorted vias
[2]12.2 & 9.86 & 7.5≥80≥181.35 × 1.35 × 0.032Stacked patch &
shorted vias
[3]9.4 & 21.69.8 & 8.1-≥91.43 × 1.43 × 0.072Stacked patch & slotting &
shorted vias
[4]14.8 & 38.4 & 5.34.9 & 5.9 & 4.95--0.73 × 0.73 × 0.213Defected ground structure & stubs
[5]40 & 624.6 & 5.2-≥150.49 × 0.49 × 0.352Dual antenna
[10]4.2 & 3.9 & 3.47.15 & 6.02 & 4.38-≥30-3Slotting & stubs
[11]5 & 2.1 & 9.57.5 & 8.7 & 8.7-≥200.76 × 0.76 × 0.033Slotting & stubs
[12]1.2 & 2 & 1.9 & 0.94.6 & 5.05
5.8 & 6.3
-≥300.77 × 0.77 × 0.044Coupled resonators network
[18]0.8 & 0.7 & 0.8 & 0.72.4 & 1.4 & 2 & 2.4≥42≥150.4 × 0.4 × 0.024Shorting & slotting
This work1.1 & 6.7 & 9.86.35 & 6.15 & 9.42≥85.6≥200.57 × 0.57 × 0.023Off-centerfeeding & stacked patch
IMBW represents impedance bandwidth; PG represents peak gain; Effi represents efficiency; XPR represents cross-polarization ratio; λ0 represents the wavelength of low frequency.
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MDPI and ACS Style

Gao, M.; Zhao, X. Design of Tri-Band Patch Antenna with Enhanced Bandwidth and Diversity Pattern for Indoor Wireless Communication. Appl. Sci. 2022, 12, 7445. https://0-doi-org.brum.beds.ac.uk/10.3390/app12157445

AMA Style

Gao M, Zhao X. Design of Tri-Band Patch Antenna with Enhanced Bandwidth and Diversity Pattern for Indoor Wireless Communication. Applied Sciences. 2022; 12(15):7445. https://0-doi-org.brum.beds.ac.uk/10.3390/app12157445

Chicago/Turabian Style

Gao, Min, and Xiaohu Zhao. 2022. "Design of Tri-Band Patch Antenna with Enhanced Bandwidth and Diversity Pattern for Indoor Wireless Communication" Applied Sciences 12, no. 15: 7445. https://0-doi-org.brum.beds.ac.uk/10.3390/app12157445

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