Accurate and broadband manipulations of harmonic amplitudes and phases to reach 256 QAM millimeter-wave wireless communications by time-domain digital coding metasurface

Author:

Chen Ming Zheng123,Tang Wankai43,Dai Jun Yan125,Ke Jun Chen12,Zhang Lei123,Zhang Cheng1,Yang Jin123,Li Lianlin63,Cheng Qiang123,Jin Shi143,Cui Tie Jun123

Affiliation:

1. Institute of Electromagnetic Space, Southeast University, Nanjing 210096, China

2. State Key Laboratory of Millimeter Waves, Southeast University, Nanjing 210096, China

3. Center of Intelligent Metamaterials, Pazhou Laboratory, Guangzhou 510330, China

4. National Mobile Communications Research Laboratory, Southeast University, Nanjing 210096, China

5. State Key Laboratory of Terahertz and Millimeter Waves, City University of Hong Kong, Hong Kong, China

6. State Key Laboratory of Advanced Optical Communication Systems and Networks, Department of Electronics, Peking University, Beijing 100871, China

Abstract

Abstract We propose a theoretical mechanism and new coding strategy to realize extremely accurate manipulations of nonlinear electromagnetic harmonics in ultrawide frequency band based on a time-domain digital coding metasurface (TDCM). Using the proposed mechanism and coding strategy, we design and fabricate a millimeter-wave (mmWave) TDCM, which is composed of reprogrammable meta-atoms embedded with positive-intrinsic-negative diodes. By controlling the duty ratios and time delays of the digital coding sequences loaded on a TDCM, experimental results show that both amplitudes and phases of different harmonics can be engineered at will simultaneously and precisely in broad frequency band from 22 to 33 GHz, even when the coding states are imperfect, which is in good agreement with theoretical calculations. Based on the fabricated high-performance TDCM, we further propose and experimentally realize a large-capacity mmWave wireless communication system, where 256 quadrature amplitude modulation, along with other schemes, is demonstrated. The new wireless communication system has a much simpler architecture than the currently used mmWave wireless systems, and hence can significantly reduce the hardware cost. We believe that the proposed method and system architecture can find vast application in future mmWave and terahertz-wave wireless communication and radar systems.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

National Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Multidisciplinary

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