scholarly journals A reconfigurable intelligent surface with integrated sensing capability

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Idban Alamzadeh ◽  
George C. Alexandropoulos ◽  
Nir Shlezinger ◽  
Mohammadreza F. Imani

AbstractReconfigurable reflective surfaces can alter the propagation environment to improve wireless communication and power transfer. Paramount to this operation—which has attracted much attention recently—is the assumption that the reflective surface has prior knowledge of the propagation environment, for example, the direction/location of the transmitter and the intended receiver(s). To address this need, we propose a reconfigurable reflective metasurface with integrated sensing capabilities. By modifying the tunable meta-atoms constituting the metasurface, we couple small portions of the incident wave to an array of sensing waveguides. As an illustrative example, we demonstrate the ability to use the sampled incident wave to detect its angle of arrival. In addition, we propose and numerically demonstrate the possibility to reduce the required sensors, i.e., the number of radio frequency (RF) chains needed to acquire the sensed signals, by leveraging the inherent metasurface’s tunable multiplexing capability. A reconfigurable reflective metasurface with integrated sensing capabilities can benefit wireless communications, wireless power transfer, RF sensing, and smart sensors.

Author(s):  
Liuqing Gao ◽  
Yansong Yang ◽  
Arakawa Brandon ◽  
Justin Postma ◽  
Songbin Gong

IEEE Access ◽  
2016 ◽  
Vol 4 ◽  
pp. 3349-3359 ◽  
Author(s):  
Nam-Phong Nguyen ◽  
Trung Q. Duong ◽  
Hien Quoc Ngo ◽  
Zoran Hadzi-Velkov ◽  
Lei Shu

Author(s):  
K Pirapaharan ◽  
K Gunawickrama ◽  
D. S. De Silva ◽  
M. S. S. R. De Silva ◽  
T. L. K. C. Dharmawardhana ◽  
...  

Energies ◽  
2019 ◽  
Vol 12 (14) ◽  
pp. 2728 ◽  
Author(s):  
Dongsheng Yang ◽  
Sokhui Won ◽  
Jiangwei Tian ◽  
Zixin Cheng ◽  
Jongho Kim

In general, for the WPT (Wireless Power Transfer) system, as the mutual inductance and load resistance are calculated according to the measured data of both the transmitter and receiver, the wireless communication modules are needed to share data. A method for estimating mutual inductance and load resistance without wireless communication is proposed, based on the fundamental and third harmonic components. The circuit is decomposed with respect to the frequencies, by which the mathematic model is established. The fundamental and harmonic components of the output voltage and current of a high-frequency inverter are found by FFT (Fast Fourier Transform). The experimental WPT system with a SiC power MOSFET is designed, and the effectiveness of the proposed method is verified by the simulation and experiment results. Additional hardware and frequency scanning operation are not needed because of the use of the harmonic components.


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