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國立高雄科技大學電腦與通訊工程系

Department of Computer and Communication Engineering, NKUST

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蘇紹文 助理教授(英)

      

   Highest Degree   

   Ph.D. in Electrical Engineering, National Sun Yat-sen University   

   TEL   

   (07)6011000  Ext:32018       Office: B421   

   E-mail   

   saouwensu@nkust.edu.tw   

   Expertise   

   Consumer Electronics Antenna Design, 4G/5G/6G Multi-Antenna Design, Ultra-Wideband Antenna Design, Metamaterial Antenna Design   

   Office Hours   

   Wednesday ( 13 : 30 -17 : 20 )   

   Saou-Wen Su   

   Laboratory Website   

https://ccee.nkust.edu.tw/p/412-1054-9978.php?Lang=zh-tw

   

 

Personal Website

https://orcid.org/0000-0003-4691-5890
https://www.linkedin.com/in/stephensutw/
https://www.researchgate.net/profile/Saou-Wen-Su/

https://scholargps.com/scholars/97401679963804/saou-wen-su

 

Education:

  • Ph.D., Department of Electrical Engineering, National Sun Yat-sen University
  • M.S., Department of Electrical Engineering, National Sun Yat-sen University
  • B.S., Department of Electrical Engineering, National Sun Yat-sen University

Industry Experience:

  • Manager, ASUS Computer (2012.02 ~ 2023.09)
  • Assistant Manager, Lite-On Technology (2006.04 ~ 2012.02)
 

 

Journal Papers:

  1. S. W. Su and G. L. Chen, “Printed compact monopole with multiband operation for Wi-Fi 8, 5G NR79, and 6G upper mid-band applications,” Prog. Electromagn. Res. C, vol. 168, pp. 39-44, 2026.
  2. S. W. Su, J. C. Huang, T. C. Yu, and J. H. Lu, “Multimode, printed mobile-unit loop for Wi-Fi 8 and 6G upper-mid-band applications,” IEEE Antennas Wireless Propag. Lett., vol. 25, pp. 254-258, 2026.
  3. S. W. Su, “Multiband, multimode, printed antenna for 5G, and Wi-Fi 7 laptop computer applications,” IEEE Access, vol. 13, pp. 200769-200776, 2025.
  4. S. W. Su, T. C. Yu, J. C. Huang, H. Y. Chuang, and J. W. Zheng, “Multiband, shorted, metallic-plate dipole antenna for Wi-Fi 8 and 6G upper mid-band operation,” IEEE Antennas Wireless Propag. Lett., vol. 24, pp. 3019-3023, Sep. 2025.
  5. S. W. Su, T. C. Yu, and J. C. Huang, “Flat-plate dipole antenna for Wi-Fi 8 and 6G operation,” Prog. Electromagn. Res. C, vol. 156, pp. 201-205, 2025.
  6. S. W. Su and M. I. Magray, “Metamaterial-inspired notebook antenna with 2.4/5/6 GHz Wi-Fi 7 Operation,” Prog. Electromagn. Res. Lett., vol. 112, pp. 87-95, 2023.
  7. P. H. Juan and S. W. Su, “EMC hybrid loop/monopole LDS antenna with three-sided ground walls for 2.4/5/6 GHz WLAN operation,” IEEE Antennas Wireless Propag. Lett., vol. 22, pp. 2200-2204, Sep. 2023.
  8. M. I. Magray, S. W. Su, and D. P. Yusuf, “Electrically small, conformal Wi-Fi 6E antenna for compact laptop devices,” Arab. J. Sci. Eng., May 2023.
  9. S. W. Su and Peng-Hao Juan, “Miniaturized antenna pair for 2.4/5/6 GHz Wi-Fi 6E operation,” Prog. Electromagn. Res. Lett., vol. 107, pp. 39-47, 2022.
  10. S. W. Su, P. H. Juan, and F. S. Chang, “Conjoined, two-monopole antenna pair with decoupling inductor for Wi-Fi 6E notebook applications,” Int. J. Antennas Propag., vol. 2022, 2022.
  11. M. I. Magray, S. W. Su, and J. H. Tarng, “Differential-fed, dual-aperture based, quasi-end-fire 5G mmWave antenna-in-package design,” IEEE Access, vol. 10, pp. 89091-89100, Aug. 2022.
  12. S. W. Su, “Compact, dual-polarized, oblong loop antenna for 5G laptops,” Prog. Electromagn. Res. M, vol. 107, pp. 181-191, 2022.
  13. C. T. Lee and S. W. Su, “Decoupled MIMO antennas with a common dipole for wideband 5G laptop computers,” Microw. Opt. Technol. Lett., vol. 63, pp. 1286-1293, Apr. 2021.
  14. C. C. Wan and S. W. Su, “Dual-feed, dipole antenna system for 2.4/5.2/5.8-GHz, tri-band WLAN laptop applications,” Prog. Electromagn. Res. C, vol. 102, pp. 175-185, 2020.
  15. C. C. Wan and S. W. Su, “Conjoined, 2.4/5-GHz two-monopole systems decoupled using mode-controlled capacitor for notebook computers,” Prog. Electromagn. Res. M, vol. 87, pp. 1-10, 2019.
  16. W. H. Chang and S. W. Su, “Very-low-profile, decoupled, hybrid two-antenna system using top-loaded, coupled strip resonator for notebook computer applications,” Prog. Electromagn. Res. M, vol. 84, pp. 63-72, 2019.
  17. C. C. Wan and S. W. Su, “Compact, self-isolated 2.4/5-GHz WLAN antenna for notebook computer applications,” Prog. Electromagn. Res. M, vol. 83, pp. 1-8, 2019.
  18. S. W. Su, C. T. Lee, and Y. W. Hsiao, “Compact two-inverted-F-antenna system with highly integrated p-shaped decoupling structure,” IEEE Trans. Antennas Propag., vol. 67, pp. 6182-6186, Jul. 2019.
  19. S. W. Su and Y. W. Hsiao, “Small-sized, decoupled two-monopole-antenna system using the same monopole as decoupling structure,” Microw. Opt. Technol. Lett., vol. 61, pp. 2049-2055, Sep. 2019.
  20. S. W. Su, “Very-low-profile, small-sized, printed monopole antenna for WLAN notebook computer applications,” Prog. Electromagn. Res. Lett., vol. 82, pp. 51-57, 2019.
  21. S. W. Su, C. T. Lee, and S. C. Chen, “Very-low-profile, two-antenna system for WLAN notebook computers,” IEEE Antennas Wireless Propag. Lett., vol. 17, pp. 1626-1629, Sep. 2018.
  22. S. W. Su, “Capacitor-inductor-loaded, small-sized loop antenna for WLAN notebook computers,” Prog. Electromagn. Res. M, vol. 71, pp. 179-188, 2018.
  23. S. W. Su, “Very-low-profile, 2.4/5-GHz WLAN monopole antenna for large screen-to-body-ratio notebook computers,” Microw. Opt. Technol. Lett., vol. 60, pp. 1313-1318, May 2018.
  24. S. W. Su, C. T. Lee, and S. C. Chen, “Compact, printed, tri-band loop antenna with capacitively-driven feed and end-loaded inductor for notebook computer applications,” IEEE Access, vol. 6, pp. 6692-6699, Mar. 2018.
  25. C. T. Lee, S. W. Su, S. C. Chen, and C. S. Fu, “Low-cost, direct-fed slot antenna built in metal cover of notebook computer for 2.4-/5.2-/5.8-GHz WLAN operation,” IEEE Trans. Antennas Propag., vol. 65, pp. 2677-2682, May 2017.
  26. S. W. Su and Y. T. Hsieh, “Integrated LDS antenna for B13 and B4/B3/B2/B1 LTE operation in smartwatch,” Microw. Opt. Technol. Lett., vol. 59, pp. 869-873, Apr. 2017.
  27. S. W. Su and C. T. Lee, “Metal-frame GPS antenna for smartwatch applications,” Prog. Electromagn. Res. Lett., vol. 62, pp. 41-47, 2016.
  28. C. T. Lee and S. W. Su, “Very-low-profile, 2.4/5.2/5.8-GHz, tri-band WLAN antenna for laptop-tablet computer with complete metal cover,” Microw. Opt. Technol. Lett., vol. 58, pp. 225-233, Jan. 2016.
  29. C. T. Lee and S. W. Su, “Studies on SAR reduction using impedance mismatch loss for simple printed 5 GHz monopoles,” Microw. Opt. Technol. Lett., vol. 57, pp. 2376-2384, Oct. 2015.
  30. S. W. Su and Y. T. Hsieh, “Integrated metal-frame antenna for smartwatch wearable device,” IEEE Trans. Antennas Propag., vol. 63, pp. 3301-3305, Jul. 2015.
  31. S. W. Su, “Linearly-polarized patch PIFA for GPS/GLONASS operation for tablet-computer applications,” Microw. Opt. Technol. Lett., vol. 57, pp. 149-153, Jan. 2015.
  32. S. W. Su, “Compact four-loop-antenna system for concurrent, 2.4- and 5-GHz WLAN Operation,” Microw. Opt. Technol. Lett., vol. 56, pp. 208-215, Jan. 2014.
  33. S. W. Su, “Two-patch-PIFA system with comparable polarization radiation for tablet-computer applications with complete, metal back cover,” Microw. Opt. Technol. Lett., vol. 55, pp. 2815-2821, Dec. 2013.
  34. F. S. Chang, W. C. Chen, and S. W. Su, “Dual-wideband, multi-monopole-antenna system with a triangular-cylinder shielding wall for wireless, surveillance-camera applications,” Prog. Electromagn. Res. Lett., vol. 34, pp. 31-41, 2012.
  35. S. W. Su and C. T. Lee, “Highly-integrated, two-in-one, metal-plate PIFA for 2.4 GHz module applications,” Microw. Opt. Technol. Lett., vol. 54, pp. 2433-2438, Oct. 2012.
  36. C. T. Lee and S. W. Su, “Printed, coplanar, magnetic-dipole multi-antenna system for 5-GHz WLAN applications,” Microw. Opt. Technol. Lett., vol. 54, pp. 1726-1731, Jul. 2012.
  37. Y. T. Liu and S. W. Su, “Patch microstrip antenna with improving radiation performance for 2.4-GHz WLAN access point,” Microw. Antennas Propag., vol. 6, pp. 1123-1127, Jul. 2012.
  38. S. W. Su, “One-piece, flat-plate, coupled-fed shorted monopole for 2.4-GHz wireless area network operation,” Microw. Opt. Technol. Lett., vol. 54, pp. 936-940, Apr. 2012.
  39. S. W. Su and Y. W. Chang, “Compact, printed, standalone penta-band antenna for WWAN operation,” Prog. Electromagn. Res. Lett., vol. 29, pp. 75-86, 2012.
  40. S. W. Su, “Integration of loop and slot antennas into one-piece metal plate for concurrent 2.4- and 5-GHz wireless local area network operation,” Microw. Opt. Technol. Lett., vol. 54, pp. 815-820, Mar. 2012.
  41. S. W. Su, C. T. Lee, and F. S. Chang, “Printed MIMO-antenna system using neutralization-line technique for wireless USB-dongle applications,” IEEE Trans. Antennas Propag., vol. 60, pp. 456-463, Feb. 2012.
  42. S. W. Su, “Compact, printed, dual-feed, shorted monopole antenna for concurrent 2.4 and 5 GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 53, pp. 188-193, Jan. 2012.
  43. C. T. Lee and S. W. Su, “Compact and printed, standalone WWAN antenna incorporating a conductive wire at low cost,” Microw. Opt. Technol. Lett., vol. 53, pp. 109-113, Jan 2012.
  44. C. T. Lee, S. W. Su, and F. S. Chang, “A compact, planar plate-type antenna for 2.4/5.2/5.8-GHz tri-band WLAN operation,” Prog. Electromagn. Res. Lett., vol. 26, pp. 125-134, 2011.
  45. S. W. Su and T. C. Hong, “Radiation improvement of printed, shorted monopole antenna for USB dongle by integrating choke sleeves on the system ground,” IEEE Trans. Antennas Propag., vol. 59, pp. 4383-4388, Nov. 2011.
  46. T. C. Hong and S. W. Su, “Novel, one-piece, metal-plate loop-like antenna with symmetrical structure for thin LCD TV applications in the 2.4/5.2/5.8 GHz WLAN bands,” Microw. Opt. Technol. Lett., vol. 53, pp. 2232-2238, Oct. 2011.
  47. S. W. Su and C. T. Lee, “Printed, two-monopole-antenna system with a decoupling neutralization line for 2.4 GHz MIMO applications,” Microw. Opt. Technol. Lett., vol. 53, pp. 2037-2043, Sep. 2011.
  48. T. C. Hong, S. W. Su, and F. S. Chang, “A compact, one-piece, metal-plate patch PIFA for 2.4 GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 53, pp. 1757-1761, Aug. 2011.
  49. C. T. Lee and S. W. Su, “Tri-band, stand-alone, PIFA with parasitic, inverted-L plate and vertical ground wall for WLAN applications,” Microw. Opt. Technol. Lett., vol. 53, pp. 1797-1803, Aug. 2011.
  50. S. W. Su and C. T. Lee, “Printed, integrable, dipole-slot diversity-antenna system for compact, 5-GHz WLAN access point,” Microw. Opt. Technol. Lett., vol. 53, pp. 1087-1094, May 2011.
  51. S. W. Su and C. T. Lee, “Low-cost dual-loop-antenna system for dual-WLAN-band access points,” IEEE Trans. Antennas Propag., vol. 59, pp. 1652-1659, May 2011.
  52. S. W. Su, “Printed loop antenna integrated into a compact, outdoor WLAN access point with dual-polarized radiation,” Prog. Electromagn. Res. C, vol. 19, pp. 25-35, 2011.
  53. T. C. Hong and S. W. Su, “Integrated, dual-band three-dipole-antenna system for single-radio, access-point applications,” Microw. Opt. Technol. Lett., vol. 53, pp. 688-692, Mar. 2011.
  54. S. W. Su and T. C. Hong, “Printed, multi-loop-antenna system integrated into a concurrent, dual-WLAN-band access point,” Microw. Opt. Technol. Lett., vol. 53, pp. 317-322, Feb. 2011.
  55. S. W. Su, “High-gain, short-circuited six-monopole-antenna system for concurrent, dual- band WLAN access points,” Microw. Opt. Technol. Lett., vol. 52, pp. 2728-2732, Dec. 2010.
  56. S. W. Su and F. S. Chang, “Compact, printed mobile-unit antenna for 2.4 and 5 GHz WLAN applications,” Microw. Opt. Technol. Lett., vol. 52, pp. 2648-2683, Dec. 2010.
  57. T. C. Hong and S. W. Su, “Compact high-gain printed loop-antenna array integrated into a 5-GHz WLAN access point,” Microw. Opt. Technol. Lett., vol. 52, pp. 2261-2267, Oct. 2010.
  58. T. C. Hong and S. W. Su, “A bent, short-circuited, metal-plate dipole antenna for 2.4-GHz WLAN operation,” Prog. Electromagn. Res. Lett., vol. 16, pp. 191-197, 2010.
  59. S. W. Su, T. C. Hong, and F. S. Chang, “Very compact coupled fed loop antenna for 2.4-GHz WLAN applications,” Microw. Opt. Technol. Lett., vol. 52, pp. 1883-1887, Aug. 2010.
  60. S. W. Su, “High-gain dual-loop antennas for MIMO access points in the 2.4/5.2/5.8 GHz bands,” IEEE Trans. Antennas Propag., vol. 58, pp. 2412-2419, Jul. 2010.
  61. S. W. Su, “Concurrent dual-band six-loop-antenna system with wide 3-dB beamwidth radiation for MIMO access points,” Microw. Opt. Technol. Lett., vol. 52, pp. 1253-1258, Jun. 2010.
  62. S. W. Su, “Compact coaxial-line-fed printed mobile-unit antenna for GSM850/900/1800/1900/UMTS WWAN operation,” Microw. Opt. Technol. Lett., vol. 52, pp. 961-966, Apr. 2010.
  63. S. W. Su and F. S. Chang, “Wideband rod-dipole antenna with a modified feed for DTV signal reception,” Prog. Electromagn. Res. Lett., vol. 12, pp. 127-132, 2009.
  64. J. H. Chou and S. W. Su, “Matching a Bluetooth headset antenna on a small system ground by using a conductive wire,” Microw. Opt. Technol. Lett., vol. 51, pp. 2802- 2805, Dec. 2009.
  65. S. W. Su, “Very-low-profile monopole antennas for concurrent 2.4- and 5-GHz WLAN access-point applications,” Microw. Opt. Technol. Lett., vol. 51, pp. 2614-2617, Nov. 2009.
  66. S. W. Su, “A three-in-one diversity antenna system for 5 GHz WLAN applications,” Microw. Opt. Technol. Lett., vol. 51, pp. 2477-2481, Oct. 2009.
  67. S. W. Su, J. H. Chou, and Y. T. Liu, “Realization of dual-dipole-antenna system for concurrent dual-radio operation using polarization diversity,” Microw. Opt. Technol. Lett., vol. 51, pp. 1725-1729, Jul. 2009.
  68. J. H. Chou and S. W. Su, “Hybrid of monopole and dipole antennas for concurrent 2.4- and 5-GHz WLAN access point,” Microw. Opt. Technol. Lett., vol. 51, pp. 1206-1209, May 2009.
  69. S. W. Su, and F. S. Chang, “A bent, shorted, planar monopole antenna for 2.4 GHz WLAN applications,” Microw. Opt. Technol. Lett., vol. 51, pp. 455-457, Feb. 2009.
  70. F. S. Chang, Y. T. Liu, S. W. Su, and J. H. Chou, “A probe-fed patch antenna with a step-shaped ground plane for 2.4 GHz access point,” Microw. Opt. Technol. Lett., vol. 51, pp. 139-141, Jan. 2009.
  71. J. H. Chou and S. W. Su, “Integration of internal 700 MHz and WLAN/WiMAX antennas for palm-sized mobile devices,” Microw. Opt. Technol. Lett., vol. 50, pp. 2948-2951, Nov. 2008.
  72. S. W. Su, J. H. Chou, and Y. T. Liu, “Compact paper-clip-shaped wire antenna for 2.4 and 5.2 GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 50, pp. 2572-2574, Oct. 2008.
  73. S. W. Su and J. H. Chou, “Printed omnidirectional access-point antenna for 2.4/5-GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 50, pp. 2403-2407, Sep. 2008.
  74. J. H. Chou and S. W. Su, “Very-low-cost copper-wire antenna for 2.4-GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 50, pp. 2107-2109, Aug. 2008.
  75. Y. T. Liu and S. W. Su, “An internal wideband monopole antenna for UMTS/WLAN dual-mode mobile phone,” Microw. Opt. Technol. Lett., vol. 50, pp. 1741-1744, Jul. 2008.
  76. S. W. Su and J. H. Chou, “Low-cost flat metal-plate dipole antenna for 2.4/5-GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 50, pp. 1686-1687, Jun. 2008.
  77. S. W. Su, J. H. Chou, and Y. T. Liu, “Printed coplanar two-antenna element for 2.4/5 GHz WLAN operation in a MIMO system,” Microw. Opt. Technol. Lett., vol. 50, pp. 678-680, Jun. 2008.
  78. F. S. Chang, K. C. Chao, C. H. Lu, and S. W. Su, “Compact vertical patch antenna for dual-band WLAN operation,” IEE Electron. Lett., vol. 44, pp. 612-613, May 2008.
  79. J. H. Chou and S. W. Su, “Internal wideband monopole antenna for MIMO access-point applications in the WLAN/WIMAX bands,” Microw. Opt. Technol. Lett., vol. 50, pp. 1146-1148, May 2008.
  80. J. H. Chou, S. W. Su, and Y. T. Liu, “A one-piece flat-plate dipole antenna for 2.4/5.2 GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 50, pp. 678-680, Mar. 2008.
  81. S. W. Su and J. H. Chou, “Compact coaxial-line-fed flat-plate dipole antenna for WLAN applications,” Microw. Opt. Technol. Lett., vol. 50, pp. 420-422, Feb. 2008.
  82. S. W. Su and J. H. Chou, “Internal 3G and WLAN/WiMAX antennas integrated in palm-sized mobile devices,” Microw. Opt. Technol. Lett., vol. 50, pp. 29-31, Jan. 2008.
  83. J. H. Chou and S. W. Su, “Cost-effective metal-plate shorted dipole antenna with wide bandwidth for WLAN/WiMAX applications,” Microw. Opt. Technol. Lett., vol. 49, pp. 3044-3046, Dec. 2007.
  84. Y. W. Chi, K. L. Wong, and S. W. Su, “Broadband printed dipole antenna with a step-shaped feed gap for DTV signal reception,” IEEE Trans. Antennas Propag., vol. 55, pp. 3353-3356, Nov. 2007.
  85. W. Y. Li, K. L. Wong, and S. W. Su, “Ultra-wideband planar shorted dipole antenna with two C-shaped arms for wireless communications,” Microw. Opt. Technol. Lett., vol. 49, pp. 1132-1135, May 2007.
  86. W. Y. Li, K. L. Wong, and S. W. Su, “Broadband integrated DTV antenna for USB dongle application,” Microw. Opt. Technol. Lett., vol. 49, pp. 1018-1021, May 2007.
  87. C. H. Wu, K. L. Wong, Y. C. Lin, and S. W. Su, “Internal shorted monopole antenna for the watch-type wireless communication device for bluetooth operation,” Microw. Opt. Technol. Lett., vol. 49, pp. 942-946, Apr. 2007.
  88. S. W. Su, J. H. Chou, and T. Y. Wu, “Internal broadband diversity dipole antenna,” Microw. Opt. Technol. Lett., vol. 49, pp. 810-812, Apr. 2007.
  89. S. W. Su, J. H. Chou, and K. L. Wong, “Internal ultrawideband monopole antenna for wireless USB dongle applications,” IEEE Trans. Antennas Propag., vol. 55, pp. 1180- 1182, Apr. 2007.
  90. S. W. Su, A. Chen, and Y. T. Liu, “Wideband omnidirectional L-shaped monopole antenna for a wireless USB dongle,” Microw. Opt. Technol. Lett., vol. 49, pp. 625-628, Mar. 2007.
  91. S. W. Su, A. Chen, K. L. Wong, and Y. C. Lin, “Integrated internal patch antenna for UMTS mobile phone application,” Microw. Opt. Technol. Lett., vol. 49, pp. 349-351, Feb. 2007.
  92. K. L. Wong, M. R. Hsu, W. Y. Li, and S. W. Su, “Study of the Bluetooth headset antenna with the user's head,” Microw. Opt. Technol. Lett., vol. 49, pp. 19-23, Jan. 2007.
  93. S. W. Su and K. L. Wong, “Wideband antenna integrated in a system in package for WLAN/WiMAX operation in a mobile device,” Microw. Opt. Technol. Lett., vol. 48, pp. 2048-2053, Oct. 2006.
  94. S. W. Su, J. H. Chou, A. Chen, and L. Tai, “Compact patch antenna mountable above a conducting plate for WLAN operation,” IEE Electron. Lett., vol. 42, pp. 1130-1131, Sep. 2006.
  95. S. W. Su, K. L. Wong, C. L. Tang, and K. L. Wong, “Wideband monopole antenna integrated with the front-end module package,” IEEE Trans. Antennas Propag., vol. 54, pp. 1888-1891, Jun. 2006.
  96. S. W. Su and K. L. Wong, “Printed band-Notched ultra-wideband quasi-dipole antenna,” Microw. Opt. Technol. Lett., vol. 48, pp. 474-476, Mar. 2006.
  97. S. W. Su and K. L. Wong, “Internal monopole antenna integrated with a shielding metal case for UMTS mobile device,” Microw. Opt. Technol. Lett., vol. 48, pp. 162-165, Jan. 2006.
  98. K. L. Wong, S. W. Su, C. L. Tang, and S. H. Yeh, “Internal shorted patch antenna for a UMTS folder-type mobile phone,” IEEE Trans. Antennas Propag., vol. 53, pp. 3391- 3394, Oct. 2005.
  99. S. W. Su and K. L. Wong, “Integrated internal PIFA for UMTS operation of clamshell mobile phones,” Microw. Opt. Technol. Lett., vol. 46, pp. 546-548, Sep. 2005.
  100. K. L. Wong, J. H. Chou, S. W. Su, and C. M. Su, “Isolation between GSM/DCS and WLAN Antennas in a PDA phone,” Microw. Opt. Technol. Lett., vol. 45, pp. 347-352, May 2005.
  101. S. W. Su, K. L. Wong, and F. S. Chang, “Compact printed ultra-wideband slot antenna with a band-notched operation,” Microw. Opt. Technol. Lett., vol. 45, pp. 128-130, Apr. 2005.
  102. K. L. Wong, C. H. Wu, and S. W. Su, “Ultra-wideband square planar metal-plate mono- pole antenna with a trident-shaped feeding strip,” IEEE Trans. Antennas Propag., vol. 53, pp. 1262-1269, Apr. 2005.
  103. S. W. Su and K. L. Wong, “Broadband omnidirectional U-shaped metal-plate monopole antenna,” Microw. Opt. Technol. Lett., vol. 44, pp. 365-369, Feb. 2005.
  104. S. W. Su, K. L. Wong, and C. L. Tang, “Band-notched ultra-wideband planar monopole antenna,” Microw. Opt. Technol. Lett., vol. 44, pp. 217-219, Jan. 2005.
  105. K. L. Wong, S. W. Su, and C. L. Tang, “Broadband omnidirectional metal-plate mono- pole antenna,” IEEE Trans. Antennas Propag., vol. 53, pp. 581-583, Jan. 2005.
  106. S. W. Su, K. L. Wong, Y. T. Cheng, and W. S. Chen, “Finite-ground-plane effects on the ultra-wideband planar monopole antenna,” Microw. Opt. Technol. Lett., vol. 43, pp. 535-537, Dec. 2004.
  107. S. W. Su, K. L. Wong, and C. L. Tang, “Ultra-wideband square planar monopole antenna for IEEE 802.16a operation in the 2-11-GHz band,” Microw. Opt. Technol. Lett., vol. 42, pp. 463-466, Sep. 2004.
  108. S. W. Su, Y. T. Liu, K. L. Wong, and C. L. Tang, “Low-profile broadband printed VHF monopole antenna for vehicular applications,” Microw. Opt. Technol. Lett., vol. 42, pp. 349-450, Sep. 2004.
  109. S. W. Su, K. L. Wong, and H. T. Chen, “Broadband low-profile printed T-shaped monopole antenna for 5-GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 42, pp. 243-245, Aug. 2004.
  110. S. W. Su, C. H. Wu, K. L. Wong, and C. L. Tang, “A patch antenna with a wide horizontal radiation pattern for WLAN access point,” Microw. Opt. Technol. Lett., vol. 42, pp. 161-164, Jul. 2004.
  111. S. W. Su, K. L. Wong, Y. T. Cheng, and W. S. Chen, “High-gain broadband patch antenna with a cavity ground for 5-GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 41, pp. 397-399, Jun. 2004.
  112. S. W. Su, C. H. Wu, W. S. Chen, and K. L. Wong, “Broadband printed p-shaped monopole antenna for WLAN operation,” Microw. Opt. Technol. Lett., vol. 41, pp. 269-270, May 2004.
  113. Y. T. Liu, S. W. Su, C. L. Tang, H. T. Chen, and K.L. Wong, “On-vehicle low-profile metal-plate antenna for AMPS/GSM/DCS/PCS/UMTS multiband operations,” Micro- wave Opt. Technol. Lett., vol. 41, pp. 144-146, Apr. 2004.
  114. Y. T. Liu, S. W. Su, C. L. Tang, S. T. Fang, and K. L. Wong, “On-vehicle low-profile metal-plate antenna for 900-MHz operation,” Microw. Opt. Technol. Lett., vol. 40, pp. 79-80, Jan. 2004.
  115. K. L. Wong, T. Y. Wu, S. W. Su, and J. W. Lai, “Broadband printed quasi-self- complementary antenna for 5.2/5.8 GHz WLAN operation,” Microw. Opt. Technol. Lett., vol. 39, pp. 495-496, Dec. 2003.
  116. S. W. Su, T. Y. Wu, Y. T. Cheng, and K. L Wong, “A foam-base surface-mountable shorted monopole antenna for WLAN application,” Microw. Opt. Technol. Lett., vol. 38, pp. 501-503, Sep. 2003.
  117. S. W. Su, Y. T. Cheng, and K. L. Wong, “Printed dual-band U-slotted monopole antenna for WLAN access point,” Microw. Opt. Technol. Lett., vol. 38, pp. 436-438, Sep. 2003.
  118. C. Y. Fang, H. C. Tung, S. W. Su, and K. L. Wong, “Narrow flat metal-plate antenna for dual-band WLAN operation,” Microw. Opt. Technol. Lett., vol. 38, pp. 398-400, Sep. 2003.
  119. K. L. Wong, S. W. Su, and Y. L. Kuo, “A printed ultra-wideband diversity monopole antenna,” Microw. Opt. Technol. Lett., vol. 38, pp. 257-259, Aug. 2003.
  120. K. L. Wong, Y. Y. Chen, S. W. Su, and Y. L. Kuo, “Diversity dual-band planar inverted-F antenna for WLAN operation,” Microw. Opt. Technol. Lett., vol. 38, pp. 223-225, Aug. 2003.
  121. S. W. Su, S. T. Fang, and K. L. Wong, “A low-cost surface-mount monopole antenna for 2.4/5.2/5.8-GHz band operation,” Microw. Opt. Technol. Lett., vol. 36, pp. 487-489, Mar. 2003.
  122. K. L. Wong, S. W. Su, and T. W. Chiou, “Dual-band plastic chip antenna for GSM/DCS mobile phones,” Microw. Opt. Technol. Lett., vol. 33, pp. 330-332, Jun. 2002.

 

International Conference Papers:

  1. S. W. Su and K. T. Liu, “Narrow, printed monopole for Wi-Fi 7, 5G NR, and 6G upper mid-band operation,” in IEEE iWEM2026, Tokyo, Japan, 2026, pp. 117-119.
  2. S. W. Su and H. Y. Lin, “Multiband and Wideband L-Shaped Printed Monopole for Heterogeneous Communication,” in IEEE iWEM2026, Tokyo, Japan, 2026, pp. 79-81.
  3. S. W. Su, Y. J. Chueh, C. Y. Liu, Y. L. Chen, and K. C. Peng, “Miniaturized printed monopole with tri-band operation for Wi-Fi 7 and 6G upper mid-band applications,” in IEEE Int. Symp. Radio-Frequency Integration Technology (RFIT), Taipei, Taiwan, 2026, pp. 1-3.
  4. S. W. Su, T. C. Yu, and J. C. Huang, “Multiband, short-circuited plate dipole for Wi-Fi 8 and 6G applications,” in Proc. Int. Symp. Antennas Propag. (ISAP), Fukuoka, Japan, 2025, pp. 409-410.
  5. Y. T. Su and S. W. Su, “Low-Cost, printed monopole antenna for Wi-Fi 8 and 6G laptop computers,” in Proc. Int. Symp. Antennas Propag. (ISAP), Fukuoka, Japan, 2025, pp. 788-789.
  6. S. W. Su and Y. L. Kuo, “Planar, Metal-plate shorted monopole for Wi-Fi 7 and 6G applications,” in Proc. Int. Symp. Antennas Propag. (ISAP), Incheon, Korea, 2024, pp. 1-2.  
  7. S. W. Su and Y. L. Kuo, “Multiband, dual-strip biplanar monopole for internet of things applications,” in Proc. Int. Symp. Antennas Propag. (ISAP), Incheon, Korea, 2024, pp. 1-2.  
  8. M. I. Magray, S. W. Su, P. H. Juan, and J. H. Lu, “Low-profile 5G mmWave antenna-in-package with dual-polarization operation,”in Asia Pacific Microw. Conf. (APMC), Taipei, Taiwan, 2023, pp. 444-446.
  9. S. W. Su, M. I. Magray, and J. H. Lu, “Metamaterial-inspired antenna for Wi-Fi 7 operation in wireless local area network bands,” in Asia Pacific Microw. Conf. (APMC), Taipei, Taiwan, 2023, pp. 76-79.
  10. M. I. Magray, S. W. Su, and J. H. Lu, “Compact, hybrid slot-dipole-monopole Wi-Fi 7 antenna for slim-bezel notebook applications,” in Asia Pacific Microw. Conf. (APMC), Taipei, Taiwan, 2023, pp. 28-30.
  11. S. W. Su and P. H. Juan, “Low-profile, conjoined and decoupled 2.4/5/6-GHz laptop antennas,” in Asia Pacific Microw. Conf. (APMC), Yokohama, Japan, 2022, pp. 836-838.
  12. D. P. Yusuf, F. H. Chu, and S. W. Su, “Ultra-wideband Wi-Fi 6E/5G NR antenna for laptop applications,” in Asia Pacific Microw. Conf. (APMC), Yokohama, Japan, 2022, pp. 548-550.
  13. M. I. Magray and S. W. Su, “Conformal and highly compact Wi-Fi 6E antenna for laptop applications,” in Asia Pacific Microw. Conf. (APMC), Yokohama, Japan, 2022, pp. 536-538.
  14. M. I. Magray and S. W. Su, “Optically transparent metasurface-based wideband antenna for mmWave 5G mobile devices,” in Asia Pacific Microw. Conf. (APMC), Yokohama, Japan, 2022, pp. 214-216.
  15. S. W. Su, “Miniaturized, Wi-Fi 6E notebook antenna using an in-series chip inductor,” in IEEE iWEM2022, Chiba, Japan, 2022, pp. 168-169.
  16. S. W. Su, “Very-low-profile, dual-polarized oblong loop,” in IEEE iWEM2022, Chiba, Japan, 2022, pp. 160-161.
  17. S. W. Su, “Compact, small, chip-inductor-loaded Wi-Fi 6E monopole antenna,” in IEEE Antennas Propag. Soc. Int. Symp., Singapore, 2021, pp. 937-938.
  18. S. W. Su and C. C. Wan, “Asymmetrical, self-isolated laptop antenna in the 2.4/5/6 GHz Wi-Fi 6E bands,” in Proc. Int. Symp. Antennas Propag. (ISAP), Taipei, Taiwan, 2021, pp. 1-2.
  19. S. W. Su, D. P. Yusuf, and F. H. Chu, “Conjoined, Wi-Fi 6E MIMO antennas for laptops,” in Proc. Int. Symp. Antennas Propag. (ISAP), Taipei, Taiwan, 2021, pp. 1-2.
  20. C. T. Lee, C. C. Wan, and S. W. Su, “Multi-laptop-antenna designs for 2.4/5/6 GHz WLAN and 5G NR77/78/79 operation,” in Proc. Int. Symp. Antennas Propag. (ISAP), Osaka, Japan, 2020, pp. 421-422.
  21. W. H. Chang and S. W. Su, “Self-Decoupled, 5G NR77/78/79 Two-Antenna System for Notebook Computers,” in Electrical Design Advanced Packaging Systems (EDAPS), Kaohsiung, Taiwan, 2019, pp. 1-3.
  22. C. T. Lee and S. W. Su, “Small-sized, tri-band, two-antenna system aimed for 4 × 4 Gbps notebook applications,” in Proc. Int. Symp. Antennas Propag. (ISAP), Busan, Korea (South), 2018, pp. 1-2.
  23. S. W. Su, “Small-sized, printed 2.4/5-GHz WLAN notebook antenna aimed for 4×4 multiple transmit/receive antennas in future Gbps communications,” in IEEE Int. Symp. Electromagnetic Compatibility/Asia-Pacific Symp. Electromagnetic Compatibility (EMC/APEMC), Suntec City, Singapore, 2018, pp. 1084-1088.
  24. S. W. Su, Y. T. Hsieh, and S. C. Chen, “Integration of very-low-profile slot antenna into notebook metal cover with narrow bezel,” in Proc. Int. Symp. Antennas Propag. (ISAP), Phuket, Thailand, 2017, pp. 1-2.
  25. C. T. Lee, S. W. Su, Y. W. Hsiao, and F. S. Chang, “Dual-wideband LTE/WWAN antenna for notebooks with plastic-clad metal cover,” in IEEE Asia-Pacific Conf. Antennas Propag. (APCAP), Kaohsiung, Taiwan, 2016, pp. 403-404.
  26. C. T. Lee and S. W. Su, “Very-low-profile, stand-alone, tri-band WLAN antenna design for laptop-tablet computer with complete metal-backed cover,” in IEEE Asia-Pacific Conf. Antennas Propag. (APCAP), Kaohsiung, Taiwan, 2016, pp. 189-190.
  27. S. W. Su, “Linearly-polarized patch PIFA for GPS/GLONASS operation inside a metal back cover tablet,” in Proc. Int. Symp. Antennas Propag. (ISAP), Kaohsiung, Taiwan, 2014, pp. 271-272.
  28. S. W. Su, F. H. Chu, and D. Lin, “Internal two-PIFA system with comparable polarization radiation for metal back cover tablet,” in Proc. Int. Symp. Antennas Propag. (ISAP), Kaohsiung, Taiwan, 2014, pp. 313-314.
  29. S. M. Wang, F. S. Chang, S. W. Su, and Y. -W. Chen, “Concurrent dual-band six antenna system for MIMO access points,” in Asia Pacific Microw. Conf. (APMC), Kaohsiung, Taiwan, 2012, pp. 699-701.
  30. S. W. Su, C. T. Lee, and F. S. Chang, “Single-plate, two-in-one PIFA for 2.4 GHz modules,” in IEEE Antennas Propag. Soc. Int. Symp., Chicago, IL, USA, 2012, pp. 1-2.
  31. C. T. Lee, S. W. Su, and F. S. Chang, “Novel, compact, flat-plate antenna for 2.4/5.2/5.8-GHz WLAN operation,” in Proc. Eur. Conf. Antennas Propag. (EuCAP), Prague, Czech Republic, 2012, pp. 1847-1850.
  32. S. W. Su, C. T. Lee, and F. S. Chang, “Dual-polarized dual-loop-antenna system for 2.4/5 GHz WLAN access points,” in IEEE iWEM2011, Taipei, Taiwan, 2011, pp. 24-28.
  33. S. W. Su, “Integrated, single-feed, dual-polarized loop antenna for compact, outdoor access-point applications,” in Proc. Eur. Conf. Antennas Propag. (EuCAP), Rome, Italy, 2011, pp. 1291-1295.
  34. S. W. Su and C. T. Lee, “Printed, low-cost, dual-polarized dual-loop-antenna system for 2.4/5 GHz WLAN access points,” in Proc. Eur. Conf. Antennas Propag. (EuCAP), Rome, Italy, 2011, pp. 1253-1257.
  35. S. W. Su, “Integrable sleeve choke for radiation improvement of a printed monopole antenna for 2.4-GHz USB-dongle applications,” in Proc. Eur. Conf. Antennas Propag. (EuCAP), Rome, Italy, 2011, pp. 1134-1138.
  36. S. W. Su, T. C. Hong, and F. S. Chang, “Compact and printed, coupled-fed, 2.4 GHz loop antenna,” Int. Conf. Applications Electromagnetism Student Innovation Competition Awards (AEM2C), Taipei, Taiwan, 2010, pp. 157-161.
  37. S. W. Su and F. S. Chang, “Wideband Rod-dipole antenna with a modified feed for DTV signal reception,” in IEEE Antennas Propag. Soc. Int. Symp., Toronto, ON, Canada, 2010, pp. 1-4.
  38. S. M. Wang, F. S. Chang, S. W. Su, K. C. Chao, W. C. Chen, and C. F. Tu, “Compact broadband patch antenna with high gain for 2.4 GHz WLAN operation,” in IEEE Antennas Propag. Soc. Int. Symp., Toronto, ON, Canada, 2010, pp. 1-4.
  39. S. W. Su, “High-gain shorted monopole antennas for concurrent access-point applications,” in IEEE Antennas Propag. Soc. Int. Symp., Toronto, ON, Canada, 2010, pp. 1-4.
  40. S. W. Su, “Concurrent 2.4/5-GHz multi-loop MIMO antennas with wide 3-dB beamwidth radiation for access-point applications,” in Proc. Eur. Conf. Antennas Propag. (EuCAP), Barcelona, Spain, 2010, pp. 1-5.
  41. S. W. Su and F. S. Chang, “High-gain dual-WLAN-band dual-loop antennas for MIMO access-points,” in Proc. Eur. Conf. Antennas Propag. (EuCAP), Barcelona, Spain, 2010, pp. 1-5.
  42. C. Y. Hung, K. C. Chao, S. W. Su, and F. S. Chang, “Broadband circularly polarized patch antenna,” in IEEE Antennas Propag. Soc. Int. Symp., North Charleston, SC, USA, 2009, pp. 1-4.
  43. S. W. Su and F. S. Chang, “Compact coaxial-line-fed printed monopole antenna for lower-band ultrawideband applications,” in IEEE Antennas Propag. Soc. Int. Symp., North Charleston, SC, USA, 2009, pp. 1-4.
  44. S. W. Su and J. H. Chou, “Hybrid of monopole and dipole antennas for concurrent 2.4- and 5-GHz WLAN access point,” in Proc. Eur. Conf. Antennas Propag. (EuCAP), Berlin, Germany, 2009, pp. 545-548.
  45. S. W. Su and J. H. Chou, “Internal wideband monopole antenna for MIMO access-point applications,” in IEEE Antennas Propag. Soc. Int. Symp., San Diego, CA, USA, 2008, pp. 1-4.
  46. C. H. Wu, K. L. Wong, Y. C. Lin, and S. W. Su, “Conformal bluetooth antenna for the watch-type wireless communication device application,” in IEEE Antennas Propag. Soc. Int. Symp., Honolulu, HI, USA, 2007, pp. 4156-4159.
  47. J. H. Chou and S. W. Su, “Internal ultra-wideband metal-plate monopole antenna for a wireless USB dongle,” in IEEE Antennas Propag. Soc. Int. Symp., Honolulu, HI, USA, 2007, pp. 5745-5745.
  48. Y. T. Liu, S. W. Su, F. S. Chang, and H. T. Chen, “Internal shorted patch antenna integrated with a shielding metal case for UMTS mobile phone application,” in IEEE Antennas Propag. Soc. Int. Symp., Honolulu, HI, USA, 2007, pp. 1096-1099.
  49. S. W. Su, K. L. Wong, C. L. Tang, and Shih-Huang Yeh, “Internal shorted patch antenna for UMTS mobile phone,” in IEEE Antennas Propag. Soc. Int. Symp., Washington, DC, USA, 2005, pp. 343-346.
  50. S. W. Su, K. L. Wong, and F. S. Chang, “Compact printed band-notched ultra-wideband slot antenna,” in IEEE Antennas Propag. Soc. Int. Symp., Washington, DC, USA, 2005, pp. 572-575.
  51. K. L. Wong, S. W. Su, and C. L. Tang, “Omnidirectional broadband step-shaped metal-plate monopole antenna,” in Proc. Int. Symp. Antennas Propag. (ISAP), Sendai, Japan, 2004, pp. 1189-1192.

Taiwan / U.S. Patents:

  1. Miniature Slotted Antenna Device, Taiwan, R.O.C., M654394
  2. Multiband Dual-Antenna Device, Taiwan, R.O.C., M649790
  3. Miniature Antenna Device, Taiwan, R.O.C., M648218
  4. Antenna-in-Package Device, Taiwan, R.O.C., M647527
  5. Antenna Device, Taiwan, R.O.C., M645094
  6. Broadband Millimeter-Wave Antenna Device, Taiwan, R.O.C., I798118
  7. Multiband Dual-Antenna Device, Taiwan, R.O.C., M638323
  8. Dual-Band Dual-Antenna Device, Taiwan, R.O.C., M635400
  9. Multiband Dual-Antenna Device, Taiwan, R.O.C., M631242
  10. Multiband Antenna Device, Taiwan, R.O.C., M624820
  11. Dual-Antenna System, Taiwan, R.O.C., M617237
  12. Multi-Antenna System and Electronic Device Thereof, Taiwan, R.O.C., I734061
  13. Dual-Band Antenna Device, Taiwan, R.O.C., M614820
  14. Broadband Antenna Device, Taiwan, R.O.C., M605399
  15. Single-Antenna System, Taiwan, R.O.C., I712217
  16. Multiband Antenna System, Taiwan, R.O.C., M603204
  17. Loop-Type Dual-Antenna System, Taiwan, R.O.C., I700862
  18. Multiband Antenna Device, Taiwan, R.O.C., M599482
  19. Dual-Antenna Structure, Taiwan, R.O.C., M593665
  20. Dual-Antenna Structure, Taiwan, R.O.C., M593666
  21. Loop Antenna, Taiwan, R.O.C., I667844
  22. Dual-Antenna Element, Taiwan, R.O.C., M580810
  23. Loop Antenna, Taiwan, R.O.C., I661614
  24. Monopole Antenna, Taiwan, R.O.C., I659569
  25. Mobile Terminal Device and Antenna Module Thereof, Taiwan, R.O.C., M575198
  26. Dual-Antenna Element, Taiwan, R.O.C., M571056
  27. Antenna Element, Taiwan, R.O.C., I635653
  28. Wireless Communication Device, Taiwan, R.O.C., I630755
  29. Antenna and Electronic Device Thereof, Taiwan, R.O.C., I594501
  30. Wearable Electronic Device, Taiwan, R.O.C., M538608
  31. Wearable Electronic Device, Taiwan, R.O.C., I515542
  32. Wireless Communication Device and Antenna System Thereof, Taiwan, R.O.C., I514663
  33. Dual-Feed Antenna, Taiwan, R.O.C., I513103
  34. Electronic Device, Taiwan, R.O.C., I495191
  35. Antenna and Electronic Device Having the Same, Taiwan, R.O.C., I492455
  36. Wide-Beamwidth Multi-Loop Antenna Module, Taiwan, R.O.C., I485927
  37. Electronic Device, Taiwan, R.O.C., I483566
  38. Standalone Multiband Antenna, Taiwan, R.O.C., I473349
  39. Antenna Device with Sleeve Choke Structure, Taiwan, R.O.C., I473345
  40. Wearable Electronic Device, Taiwan, R.O.C., M493362
  41. Hybrid Multi-Antenna System and Wireless Communication Device Thereof, Taiwan, R.O.C., I464962
  42. Multiband Antenna and Electronic Device Having the Same, Taiwan, R.O.C., I464963
  43. Multi-Loop Antenna System and Electronic Device Having the Same, Taiwan, R.O.C., I462394
  44. Multi-Antenna System and Electronic Device Having the Same, Taiwan, R.O.C., I462392
  45. High-Gain Loop Array Antenna System and Electronic Device, Taiwan, R.O.C., I451632
  46. Multi-Loop Antenna System and Electronic Device Having the Same, Taiwan, R.O.C., I449264
  47. Embedded FM Transmitting Antenna for Mobile Devices, Taiwan, R.O.C., I445246
  48. Multiple-Input Multiple-Output Antenna Device, Taiwan, R.O.C., I440252
  49. Dipole Antenna and Electronic Device Having the Same, Taiwan, R.O.C., I440253
  50. High-Gain Broadband Planar Antenna, Taiwan, R.O.C., I435497
  51. Embedded Multi-Antenna Module, Taiwan, R.O.C., I433391
  52. Dual-Loop Antenna and Multiband Multi-Antenna Module, Taiwan, R.O.C., I416800
  53. Dual-Branch Broadband Antenna and Digital TV Device Thereof, Taiwan, R.O.C., I414109
  54. Broadband Digital TV Antenna Structure, Taiwan, R.O.C., I414105
  55. Shorted Monopole Antenna, Taiwan, R.O.C., I379459
  56. Multiple-Input Multiple-Output Antenna System, Taiwan, R.O.C., I376052
  57. Metal-Wire Antenna, Taiwan, R.O.C., I374578
  58. High-Gain Broadband Planar Antenna, Taiwan, R.O.C., I361518
  59. Dual-Feed Dual-Band Antenna, Taiwan, R.O.C., I352452
  60. Dipole Antenna Element and Dipole Antenna System, Taiwan, R.O.C., I347709
  61. Antenna Element and Antenna System Using the Same, Taiwan, R.O.C., I343672
  62. Miniaturized Digital TV Receiving Antenna, Taiwan, R.O.C., I342639
  63. Electronic Device and Shorted Dipole Antenna Thereof, Taiwan, R.O.C., I338978
  64. Broadband Circularly Polarized Planar Antenna, Taiwan, R.O.C., M392448
  65. Ultra-Wideband Antenna and Plug-and-Play Device Using the Same, Taiwan, R.O.C., I331822
  66. Broadband Dipole Antenna, Taiwan, R.O.C., I331826
  67. Dual-Band Shorted Dipole Antenna, Taiwan, R.O.C., I331825
  68. Hybrid Multiple-Input Multiple-Output Antenna Module and System Thereof, Taiwan, R.O.C., M388116
  69. Internal Antenna for Mobile Device, Taiwan, R.O.C., I328310
  70. Ultra-Wideband Shorted Dipole Antenna, Taiwan, R.O.C., I326942
  71. Ultra-Wideband Antenna Structure, Taiwan, R.O.C., I314371
  72. Omnidirectional Ultra-Wideband Antenna for Plug-and-Play Transmission Device, Taiwan, R.O.C., I312595
  73. Electronic Device Having a Dipole Antenna, Taiwan, R.O.C., M312790
  74. RF Module Package Integrating an Antenna and a Heat-Dissipating Metal Case, Taiwan, R.O.C., I280683
  75. Omnidirectional Ultra-Wideband Monopole Antenna, Taiwan, R.O.C., I279025
  76. Embedded Mobile Phone Antenna, Taiwan, R.O.C., I262620
  77. Mobile Phone Antenna, Taiwan, R.O.C., I258891
  78. Planar Monopole Antenna, Taiwan, R.O.C., I248231
  79. Ultra-Wideband Antenna, Taiwan, R.O.C., I245455
  80. Antenna Structure, Taiwan, R.O.C., I239121
  81. Omnidirectional Broadband Monopole Antenna, Taiwan, R.O.C., I239122
  82. Quasi-Self-Complementary Antenna, Taiwan, R.O.C., 595041
  83. Dual-Band Planar Monopole Antenna with a U-Shaped Slot, Taiwan, R.O.C., 571460
  84. Plastic Chip Antenna Capable of Dual-Band Operation, Taiwan, R.O.C., 518803
  85. Wideband millimeter-wave antenna device,  US-12080960-B2 
  86. Single antenna system, US-11289812-B2
  87. Loop-like dual-antenna system, US-11394118-B2
  88. Multi-antenna system and electronic device thereof, US-11056770-B2
  89. Loop antenna, US-10811775-B2
  90. Loop antenna, US-10811774-B2
  91. Monopole antenna, US-10693212-B2
  92. Antenna element, US-10770797-B2
  93. Wearable electronic device, US-10236565-B2
  94. Wireless communication device, US-10686248-B2
  95. Antenna and electric device using the same, US-10637126-B2
  96. Wearable electronic device, US-9833159-B2
  97. Wearable electronic device, US-9722303-B2
  98. Wireless communication apparatus and antenna system thereof, US-9627746-B2
  99. Multiple-input-multiple-output antenna device, US-9444530-B2
  100. Antenna device with choke sleeve structures, US-8854274-B2
  101. Multi-band antenna and electronic apparatus having the same, US-8593368-B2
  102. Antenna and electronic device having the same, US-9225053-B2
  103. Multi-loop antenna system and electronic apparatus having the same, US-8791865-B2
  104. Loop array antenna system and electronic apparatus having the same, US-8648762-B2
  105. Antenna system with planar dipole antennas and electronic apparatus having the same, US-8723751-B2
  106. Multi-loop antenna system and electronic apparatus having the same, US-8525741-B2
  107. Stand-alone multi-band antenna, US-8907860-B2
  108. Hybrid multi-antenna system and wireless communication apparatus using the same, US-8854270-B2
  109. Dipole antenna and electronic device having the same, US-8576126-B2
  110. Hybrid multiple-input multiple-output antenna module and system of using the same, US-8482471-B2
  111. Shorted monopole antenna, US-8059042-B2
  112. Multi-loop antenna module with wide beamwidth, US-8269682-B2
  113. Built-in FM transmitting antenna applied to a mobile device, US-8681049-B2
  114. Dual-loop antenna and multi-frequency multi-antenna module, US-8344950-B2
  115. Dual-feed antenna, US-8174458-B2
  116. Wideband antenna for receiving digital TV signals, US-8081132-B2
  117. Built-in multi-antenna module, US-8159398-B2
  118. Multi-input multi-output antenna system, US-8130169-B2
  119. Wire antenna, US-8797215-B2
  120. Dual-feed and dual-band antenna, US-7965248-B2
  121. Dipole antenna device and dipole antenna system, US-7768471-B2
  122. Electronic device and short-circuited dipole antenna thereof, US-7667661-B2
  123. Antenna device and antenna system utilizing said antenna device, US-7956810-B2
  124. Ultra-wideband shorted dipole antenna, US-7692599-B2
  125. Dual-band dipole antenna, US-7548214-B2
  126. Two-branch broadband antenna, US-7609213-B2
  127. Ultra-wide band antenna and plug-and-play device using the same, US-7889140-B2
  128. Broadband dipole antenna, US-7636069-B2
  129. Digital television receiving antenna for plug-and-play device, US-7525503-B2
  130. Ultra-wideband antenna structure, US-7649501-B2
  131. Wideband omnidirectional antenna for plug and play device, US-7365692-B1
  132. Electronic device having dipole antenna, US-7432867-B2
  133. Compact DTV receiving antenna, US-7595758-B2
  134. Digital-television receiving antenna, US-7391384-B2
  135. Internal antenna for mobile device, US-8044860-B2
  136. Mobile phone antenna, US-7209087-B2
  137. Ultra-wideband antenna, US-7061442-B1
  138. Planar monopole antenna, US-7126543-B2
  139. Omnidirectional ultra-wideband monopole antenna, US-7495616-B2
  140. Omnidirectional broadband monopole antenna, US-7327327-B2
  141. Antenna, US-7250919-B2
  142. Dual-band planar monopole antenna with a U-shaped slot, US-6774853-B2

 

Others:

  • World's Top 2% Scientists 2020-2025 (Career Long) by Stanford University
  • IEEE Tainan Section 2016 Outstanding Technical Achievement Award
  • IEEE Senior Member (2014~present)
  • Reviewer of IEEE Transactions on Antennas and Propagation, IEEE Antennas and Wireless Propagation Letters, IEEE Access 

 

蘇紹文 助理教授(英)

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Copyright © 2008 Department of Computer and Communication Engineering, NKUST.

Address: Room F331, 3rd Floor, College of Engineering, No. 1, University Rd., Yanchao Dist., Kaohsiung City 811, Taiwan
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