Biography
Chan H. See received a first class B.Eng. Honours degree in Electronic, Telecommunication and Computer Engineering and a Ph.D. degree from the University of Bradford, UK. Currently, He is a Professor in School of Computing, Engineering & the Built Environment, 麻豆社区, UK. Previously, he was head of Electrical Engineering & Mathematics within the School of Engineering and the Built Environment from 2019 to 2022. His teaching covers embedded systems, instrumentation Systems, Communication Electronics, Mobile and microwave communications, and Wireless Sensors and IoT.
His research interests cover Internet of Things (IoTs), wireless sensor network system design, acoustic/microwave sensors, antennas, microwave wireless power transfer, computational electromagnetics, and microwave circuits. He has published over 300 peer-reviewed journal articles and conference papers. He is a co-author for one book and five book chapters. He was named in the recent 2022, 2023 and 2024 edition of the Stanford University list of World Top 2% Scientists.
Since 2023, he has served as the UK representative for Commission K: Electromagnetics in Biology and Medicine within International Union of Radio Science (URSI). Dr. See was awarded a IEEE Malaysia AP/MTT/EMC Joint Chapter- Best Paper Award in 2020. He was also a recipient of two Young Scientist Awards from the International Union of Radio Science (URSI, US) and Asia-Pacific Radio Science Conference (AP-RASC, Japan) in 2008 and 2010, respectively. He was awarded a certificate of excellence for his successful Knowledge Transfer Partnership (KTP) with Yorkshire Water on the design and implementation of a wireless sensor system for sewerage infrastructure monitoring in 2009. Dr. See is a Chartered Engineer (CEng), Senior member of Institute of Electrical and Electronics Engineers (SMIEEE), Fellow of the Institution of Engineering and Technology (FIET). He is also a Fellow of The Higher Education Academy (FHEA), a full member of the EPSRC Review College, an Associate Editor for IEEE Access and an Editor for Journal of Electronics and Electrical Engineering, Scientific Reports, Peerj Computer Science and Wireless Power Transfer journals. According to Web of Science, he has completed over 500 verified reviews and over 300 verified editor records.
Selected publications as follows:
1. F. Paul et al. "RF-sputtered Al-doped ZnO-based transparent electrochemical capacitors developed as a structural energy storage to replace double-glazed window for a smart building." Applied Physics Letters 126.13, 2025, doi: 10.1063/5.0255229
2.A.Zirdour, M. Ayad, M. Alibakhshikenari, C.H. See et al. 鈥淲ideband Endfire Antenna Array for 5G mmWave Mobile Terminals,鈥 in IEEE Access, vol. 12, pp. 39926-39935, 2024, doi: 10.1109/ACCESS.2024.3375811
3. M. H. Jwair et al., "Intelligent Metasurface Layer for Direct Antenna Amplitude Modulation Scheme," in IEEE Access, vol. 11, pp. 77506-77517, 2023, doi: 10.1109/ACCESS.2023.3297264.
4. M.Alibakhshikenari et al., 鈥淒ual-Polarized Highly Folded Bowtie Antenna with Slotted Self-Grounded Structure for Sub-6 GHz 5G Applications,鈥 IEEE Trans. Antennas and Propagations, vol.70, no. 4, pp.3028-3033, April 2022. doi: 10.1109/TAP.2021.3118784.
5.M.Alibakhshikenari et al., 鈥淪ingular Integral Formulations for Electrodynamic Analysis of Metamaterial-Inspired Antenna Array,鈥 IEEE Antennas and Wireless Propagation Letters, vol.20, no.2, pp.179-183, 2021
6. M.Alibakhshikenari et al., 鈥淥ptimum Power Transfer in RF Front End Systems Using Adaptive Impedance Matching Technique,鈥 Scientific Reports, vol.11, Article no. 11825, June 2021.
7. C.H. See et al., 鈥淎n Acoustic Sensor for Combined Sewer Overflow (CSO) Screen Condition Monitoring in a Drainage Infrastructure鈥, Sensors 2021, 21(2), 404, https://doi.org/10.3390/s21020404
8.I.M. Danjuma et al., 鈥淒esign and Optimization of a Slotted Monopole Antenna for Ultra-wide Band Body Centric Imaging Applications鈥, IEEE Journal of Electromagnetics, RF and Microwaves in Medicine and Biology, vol.4, no.2, pp. 140-147, June 2020.
9.N.Soin, P.Zhao, A. Kumar, L.Shi et. al ,鈥淓xpanding the portfolio of tribo-positive materials: aniline formaldehyde condensates for high charge density triboelectric nanogenerators,鈥 Nano Energy, vol.67, pp.1-13, Jan. 2020.
10.C.Zebiri et al., 鈥淎ntenna for Ultra-Wideband Applications with Non-Uniform Defected Ground Plane and Offset Aperture-Coupled Cylindrical Dielectric Resonators,鈥 IEEE Access, vol.7, no. 1, pp.166776-166787, Dec. 2019
11.C.H. See et al., 鈥淒esign of Mobile Band Subsurface Antenna for Drainage Infrastructure Monitoring鈥, IET Microwaves, Antennas & Propagation, vol.13, no. 13, pp.2380-2385, Nov. 2019
12. A. Bati et al., 鈥淒ynamic Response Analysis of a Class E2 Converter for Low Power Inductive Links,鈥 IET Circuits, Devices & Systems, vol.13, no.3, pp.399-405, May 2019
13.C.H.See et al., 鈥淟ink Budget Maximization for a Mobile-Band Subsurface Wireless Sensor in Challenging Water Utility Environments鈥, IEEE Trans. Industrial Electronics, vol.65, no.1, pp.616-625, Jan.2018, DOI: 10.1109/TIE.2017.2719602
14. A.F. Mirza, C.H. See, et al., 鈥 An Active Microwave System for Near Field Imaging,鈥 IEEE Sensors Journal, vol.17, no.9, pp.2749-2758, May 2017
15. C.H.See et al., 鈥淐alibration Model for Detection of Potential Demodulating Behaviour in Biological Media Exposed to RF Energy,鈥 IET Science, Measurement and Techniques ,vol.11, no.7, pp.900-906, October 2017
16.H. Plihal et al., 鈥淎 novel method for rapid inspection of sewer networks: Combining acoustic and Optical means,鈥 Urban Water Journal, vol.13, no.1, pp.3-14, January 2016.
17.F. Zhu et al., 鈥淯ltra-Wideband Dual-Polarized Patch Antenna with Four Capacitively Coupled Feeds,鈥 IEEE Trans. Antennas and Propagation, vol.62, no.5, pp.2240-2249, May 2014.
18. A. Abu-Almal et al., 鈥淪tatistical Analysis of Refractivity Gradient and 尾o Parameter in the Gulf region, IEEE Trans. Antennas and Propagation, vol.61, no.12, pp.6250-6254, Dec. 2013.
19.F. Zhu et al., 鈥淢ultiple Band-Notched UWB Antenna with Band-Rejected Elements Integrated in the Feed Line,鈥 IEEE Trans. Antennas and Propagation , vol.61, no.8, pp.3952-3960, August 2013
20. C.H. See et al. ,鈥淎 Low-Profile Ultra-Wideband Modified Planar Inverted-F Antenna,鈥 IEEE Trans. Antennas and Propagation, vol.61, no. 1, pp.100-108, Jan. 2013.
21. A.G.Alhaddad et al., 鈥淔olded Loop Balanced Coplanar Antenna for WLAN Applications,鈥 IEEE Trans. Antennas and Propagation, vol.60, no.10, pp. 4916-4920, Oct. 2012.
22. F. Zhu et al., 鈥淢iniaturized Tapered Slot Antenna with Signal Rejection in 5-6 GHz Band Using a Balun,鈥 IEEE Antenna Wireless Propagation Letters, vol.11, pp.507-510, May 2012.
23.C.H. See et al., 鈥淭he Design of a Resistively Loaded Bowtie Antenna for Applications in Breast Cancer Detection Systems,鈥 IEEE Trans. Antennas and Propagation, vol.60, no.5, pp.2526-2530, May 2012.
24.C.H. See et al. ,鈥淎 Low Power Wireless Sensor Network for Gully Pot Monitoring in Urban Catchments鈥, IEEE Sensors Journal, vol.12, no. 5, pp.1545-1553, May 2012.
25.C.H. See et al., 鈥淲ideband Printed MIMO/Diversity Monopole Antenna for WiFi/WiMAX Applications,鈥 IEEE Trans. Antennas and Propagation, vol.60, no.4, pp.2028-2035, April 2012
26.C.H.See et al., 鈥淎 Broadband Dual Planar Inverted F-Antenna for WLAN/WiMAX and Lower-band UWB Wireless Applications鈥, IET Microwaves, Antennas & Propagation, vol.5, no.6, pp.644-650, 2011.
27.C.H.See et al., 鈥淎 Planar Inverted F-L Antenna (PIFLA) with a Rectangular Feeding Plate for Lower-band UWB Applications鈥, IEEE Antenna Wireless Propagation Letters, vol.9, pp.149-151,2010.
28.C.H.See et al., 鈥淎 Crescent-shaped Multiband Planar Monopole Antenna for Mobile Wireless Applications鈥, IEEE Antenna Wireless Propagation Letters, vol.9, pp.152-155, 2010.
29.R. A. Abd-Alhameed et al., "A Wire-Grid Adaptive Meshing Program for Microstrip Patch Antenna Designs Using a Genetic Algorithm", IEEE Antennas and Propagation Magazine, vol.51, no.1, pp. 147-151, Feb 2009
30.C.H. See et al., 鈥淒ual-Frequency Planar Inverted F-L-Antenna (PIFLA) for WLAN and Short Range Communication Systems鈥, IEEE Transactions on Antennas and Propagation, vol.56, No.10, pp.3318-3320, Oct. 2008
31.C.H. See et al., 鈥淐omputation of Electromagnetic Fields in Assemblages of Biological Cells Using a Modified Finite Difference Time Domain Scheme鈥, IEEE Transactions on Microwave Theory and Techniques, vol.55, no.9, pp.1986-1994, Sept. 2007.
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