浏览全部资源
扫码关注微信
1. 东南大学信息科学与工程学院,江苏 南京 210096
2. 东南大学毫米波国家重点实验室,江苏 南京 210096
3. 东南大学移动信息通信与安全前沿科学中心,江苏 南京 210096
[ "吴利杰(1997- ),男,浙江丽水人,东南大学博士生,主要研究方向为信息超表面、可重构智能超表面等" ]
[ "杨汉卿(1998- ),男,江苏盐城人,东南大学博士生,主要研究方向为信息超表面、可重构超表面等" ]
[ "程强(1979- ),男,安徽黄山人,博士,东南大学教授,主要研究方向为电磁超材料和信息超材料" ]
[ "崔铁军(1965- ),男,河北承德人,博士,中国科学院院士,东南大学教授,主要研究方向为计算电磁学、智能电磁计算、电磁超材料和信息超材料等" ]
网络出版日期:2022-12,
纸质出版日期:2022-12-25
移动端阅览
吴利杰, 杨汉卿, 程强, 等. 可增强信号覆盖范围的放大型信息超表面设计[J]. 通信学报, 2022,43(12):3-12.
Lijie WU, Hanqing YANG, Qiang CHENG, et al. Design of amplifying information metasurface for enhancing signal coverage[J]. Journal on communications, 2022, 43(12): 3-12.
吴利杰, 杨汉卿, 程强, 等. 可增强信号覆盖范围的放大型信息超表面设计[J]. 通信学报, 2022,43(12):3-12. DOI: 10.11959/j.issn.1000-436x.2022143.
Lijie WU, Hanqing YANG, Qiang CHENG, et al. Design of amplifying information metasurface for enhancing signal coverage[J]. Journal on communications, 2022, 43(12): 3-12. DOI: 10.11959/j.issn.1000-436x.2022143.
传统信息超表面能对电磁波的幅度和相位做出动态调控,在无线中继中控制电磁波的传播方向,但并不能放大入射波的能量,因此这类超表面的工作距离受限,往往要通过较大的阵面面积来实现信号盲区的有效覆盖。为解决这一问题,提出了一种放大型信息超表面,并通过仿真验证了该信息超表面在2.7~3.1 GHz的宽带范围内具有2 bit的相位调制特性和信号放大能力。同时,通过引入功率分配和功率合成网络,使8个超表面单元组成一个1×8的阵列且只需使用一个放大器,以减少放大器的数量,从而降低硬件成本和系统能耗。仿真结果表明,所提出的放大型信息超表面阵列在宽带范围内同时实现了波束成形和信号能量放大,可应用于基于信息超表面的新型无线中继系统中,为增强无线信号覆盖和减小超表面阵面尺寸提供了一种全新的解决方案。
Traditional information metasurfaces can be used in wireless relay systems to control the propagation direction of electromagnetic waves due to their capability to control the amplitude and phase.However
owing to the lack of signal amplification function
these metasurfaces have a limited operating distance.Thus
a large size of metasurfaces is usually demanded to realize the signal coverage of dead zones.To solve this problem
an amplifying information metasurface was designed to realize the 2 bit phase manipulation and signal amplification function within the broad band from 2.7 to 3.1 GHz.Furthermore
a power dividing and combining network was introduced to combine the 1×8 metasurface elements into an array with only one amplifier
which greatly reduced the number of amplifiers
the hardware cost
and the power consumption.The simulation results indicate that the array can realize beamforming and signal amplification over a broad band.Therefore
the proposed amplifying information metasurface array may find important applications in wireless relay systems and provide a new solution to enhancing the signal coverage and reducing the size of the metasurface array.
YU N F , GENEVET P , KATS M A , et al . Light propagation with phase discontinuities:generalized laws of reflection and refraction [J ] . Science , 2011 , 334 ( 6054 ): 333 - 337 .
CUI T J , QI M Q , WAN X , et al . Coding metamaterials,digital metamaterials and programmable metamaterials [J ] . Light:Science & Applications , 2014 , 3 ( 10 ): e218 .
CUI T J , LIU S , ZHANG L . Information metamaterials and metasurfaces [J ] . Journal of Materials Chemistry C , 2017 , 5 ( 15 ): 3644 - 3668 .
ZHANG L , CHEN X Q , LIU S , et al . Space-time-coding digital metasurfaces [J ] . Nature Communications , 2018 ,9:4334.
ZHANG L , WU R Y , BAI G D , et al . Transmission-reflection-integrated multifunctional coding metasurface for full-space controls of electromagnetic waves [J ] . Advanced Functional Materials , 2018 , 28 ( 33 ): 1802205 .
DAI J Y , ZHAO J , CHENG Q , et al . Independent control of harmonic amplitudes and phases via a time-domain digital coding metasurface [J ] . Light:Science & Applications , 2018 ,7:90.
GAO X , YANG W L , MA H F , et al . A reconfigurable broadband polarization converter based on an active metasurface [J ] . IEEE Transactions on Antennas and Propagation , 2018 , 66 ( 11 ): 6086 - 6095 .
ZHANG L , CHEN X Q , SHAO R W , et al . Breaking reciprocity with space-time-coding digital metasurfaces [J ] . Advanced Materials , 2019 , 31 ( 41 ): 1904069 .
MA Q , BAI G D , JING H B , et al . Smart metasurface with self-adaptively reprogrammable functions [J ] . Light:Science & Applications , 2019 ,8:98.
DAI J Y , YANG J , TANG W K , et al . Arbitrary manipulations of dual harmonics and their wave behaviors based on space-time-coding digital metasurface [J ] . Applied Physics Reviews , 2020 , 7 ( 4 ): 041408 .
KE J C , DAI J Y , CHEN M Z , et al . Linear and nonlinear polarization syntheses and their programmable controls based on anisotropic time-domain digital coding metasurface [J ] . Small Structures , 2021 , 2 ( 1 ): 2000060 .
DAI J Y , TANG W K , ZHAO J , et al . Wireless communications through a simplified architecture based on time-domain digital coding metasurface [J ] . Advanced Materials Technologies , 2019 , 4 ( 7 ): 1900044 .
TANG W K , CHEN M Z , DAI J Y , et al . Wireless communications with programmable metasurface:new paradigms,opportunities,and challenges on transceiver design [J ] . IEEE Wireless Communications , 2020 , 27 ( 2 ): 180 - 187 .
TANG W K , DAI J Y , CHEN M Z , et al . Programmable metasurface-based RF chain-free 8PSK wireless transmitter [J ] . Electronics Letters , 2019 , 55 ( 7 ): 417 - 420 .
DAI J Y , TANG W K , YANG L X , et al . Realization of multi-modulation schemes for wireless communication by time-domain digital coding metasurface [J ] . IEEE Transactions on Antennas and Propagation , 2020 , 68 ( 3 ): 1618 - 1627 .
TANG W K , DAI J Y , CHEN M Z , et al . MIMO transmission through reconfigurable intelligent surface:system design,analysis,and implementation [J ] . IEEE Journal on Selected Areas in Communications , 2020 , 38 ( 11 ): 2683 - 2699 .
HAN Y , LI X , TANG W K , et al . Dual-polarized RIS-assisted mobile communications [J ] . IEEE Transactions on Wireless Communications , 2022 , 21 ( 1 ): 591 - 606 .
CHEN M Z , TANG W K , DAI J Y , et al . Accurate and broadband manipulations of harmonic amplitudes and phases to reach 256 QAM millimeter-wave wireless communications by time-domain digital coding metasurface [J ] . National Science Review , 2021 , 9 ( 1 ): 31 - 41 .
ZHANG L , CHEN M Z , TANG W K , et al . A wireless communication scheme based on space- and frequency-division multiplexing using digital metasurfaces [J ] . Nature Electronics , 2021 , 4 ( 3 ): 218 - 227 .
HUANG C X , ZHANG J J , CHENG Q , et al . Polarization modulation for wireless communications based on metasurfaces [J ] . Advanced Functional Materials , 2021 , 31 ( 36 ): 2103379 .
DAI J Y , TANG W K , CHEN M Z , et al . Wireless communication based on information metasurfaces [J ] . IEEE Transactions on Microwave Theory and Techniques , 2021 , 69 ( 3 ): 1493 - 1510 .
CHEN X Y , KE J C , TANG W K , et al . Design and implementation of MIMO transmission based on dual-polarized reconfigurable intelligent surface [J ] . IEEE Wireless Communications Letters , 2021 , 10 ( 10 ): 2155 - 2159 .
CUI T J , LIU S , BAI G D , et al . Direct transmission of digital message via programmable coding metasurface [J ] . Research,2019 , 2019 :2584509.
梁竟程 , 陈伟聪 , 程强 , 等 . 基于信息超表面的无线通信(特邀) [J ] . 红外与激光工程 , 2022 , 51 ( 1 ): 324 - 339 .
LIANG J C , CHEN W C , CHENG Q , et al . Wireless communications based on information metasurfaces(invited) [J ] . Infrared and Laser Engineering , 2022 , 51 ( 1 ): 324 - 339 .
WU Q Q , ZHANG R . Towards smart and reconfigurable environment:intelligent reflecting surface aided wireless network [J ] . IEEE Communications Magazine , 2020 , 58 ( 1 ): 106 - 112 .
WU Q Q , ZHANG R . Intelligent reflecting surface enhanced wireless network via joint active and passive beamforming [J ] . IEEE Transactions on Wireless Communications , 2019 , 18 ( 11 ): 5394 - 5409 .
WANG P L , FANG J , YUAN X J , et al . Intelligent reflecting surface-assisted millimeter wave communications:joint active and passive precoding design [J ] . IEEE Transactions on Vehicular Technology , 2020 , 69 ( 12 ): 14960 - 14973 .
HAN Y , TANG W K , JIN S , et al . Large intelligent surface-assisted wireless communication exploiting statistical CSI [J ] . IEEE Transactions on Vehicular Technology , 2019 , 68 ( 8 ): 8238 - 8242 .
WU Q Q , ZHANG R . Weighted sum power maximization for intelligent reflecting surface aided SWIPT [J ] . IEEE Wireless Communications Letters , 2020 , 9 ( 5 ): 586 - 590 .
XU Y J , XIE H , WU Q Q , et al . Robust max-min energy efficiency for RIS-aided HetNets with distortion noises [J ] . IEEE Transactions on Communications , 2022 , 70 ( 2 ): 1457 - 1471 .
徐勇军 , 高正念 , 王茜竹 , 等 . 基于智能反射面辅助的无线供电通信网络鲁棒能效最大化算法 [J ] . 电子与信息学报 , 2022 , 44 ( 7 ): 2317 - 2324 .
XU Y J , GAO Z N , WANG Q Z , et al . Robust energy efficiency maximization algorithm for intelligent reflecting surface-aided wireless powered-communication networks [J ] . Journal of Electronics & Information Technology , 2022 , 44 ( 7 ): 2317 - 2324 .
黎赛 , 杨亮 , 崔琪楣 , 等 . RIS辅助的混合RF/THz系统性能分析 [J ] . 通信学报 , 2022 , 43 ( 1 ): 49 - 58 .
LI S , YANG L , CUI Q M , et al . Performance analysis of RIS-assisted mixed RF/THz system [J ] . Journal on Communications , 2022 , 43 ( 1 ): 49 - 58 .
LONG R Z , LIANG Y C , PEI Y Y , et al . Active reconfigurable intelligent surface-aided wireless communications [J ] . IEEE Transactions on Wireless Communications , 2021 , 20 ( 8 ): 4962 - 4975 .
ZHANG Z J , DAI L L , CHEN X B , et al . Active RIS vs.Passive RIS:which will prevail in 6G [J ] . arXiv Preprint,arXiv:2103.15154 , 2021 .
BIALKOWSKI M E , ROBINSON A W , SONG H J . Design,development,and testing of X-band amplifying reflectarrays [J ] . IEEE Transactions on Antennas and Propagation , 2002 , 50 ( 8 ): 1065 - 1076 .
KISHOR K K , HUM S V . An amplifying reconfigurable reflectarray antenna [J ] . IEEE Transactions on Antennas and Propagation , 2012 , 60 ( 1 ): 197 - 205 .
YANG X , XU S H , YANG F , et al . A distributed power-amplifying reflectarray antenna for EIRP boost applications [J ] . IEEE Antennas and Wireless Propagation Letters , 2017 , 16 : 2742 - 2745 .
WANG X , HAN J Q , TIAN S C , et al . Amplification and manipulation of nonlinear electromagnetic waves and enhanced nonreciprocity using transmissive space-time-coding metasurface [J ] . Advanced Science , 2022 , 9 ( 11 ): 2105960 .
MA Q , CHEN L , JING H B , et al . Controllable and programmable nonreciprocity based on detachable digital coding metasurface [J ] . Advanced Optical Materials , 2019 , 7 ( 24 ): 1901285 .
QIU T S , JIA Y X , WANG J F , et al . Controllable reflection-enhancement metasurfaces via amplification excitation of transistor circuit [J ] . IEEE Transactions on Antennas and Propagation , 2021 , 69 ( 3 ): 1477 - 1482 .
TARAVATI S , ELEFTHERIADES G V . Full-duplex reflective beamsteering metasurface featuring magnetless nonreciprocal amplification [J ] . Nature Communications , 2021 ,12:4414.
WU L J , LOU K , KE J C , et al . A wideband amplifying reconfigurable intelligent surface [J ] . IEEE Transactions on Antennas and Propagation , 2022 , 70 ( 11 ): 10623 - 10631 .
LUO Z J , WANG Q , ZHANG X G , et al . Intensity-dependent metasurface with digitally reconfigurable distribution of nonlinearity [J ] . Advanced Optical Materials , 2019 , 7 ( 19 ): 1900792 .
LUO Z J , CHEN M Z , WANG Z X , et al . Digital nonlinear metasurface with customizable nonreciprocity [J ] . Advanced Functional Materials , 2019 , 29 ( 49 ): 1906635 .
LUO Z J , REN X Y , ZHOU L , et al . A high-performance nonlinear metasurface for spatial-wave absorption [J ] . Advanced Functional Materials , 2022 , 32 ( 16 ): 2109544 .
LIU C , MA Q , LUO Z J , et al . A programmable diffractive deep neural network based on a digital-coding metasurface array [J ] . Nature Electronics , 2022 , 5 ( 2 ): 113 - 122 .
BILGIC M M , YEGIN K . Wideband high-gain aperture coupled antenna for ku band phased-array systems [J ] . Microwave and Optical Technology Letters , 2013 , 55 ( 6 ): 1291 - 1295 .
KUMAR G , RAY K P . Broadband microstrip antennas:artech house [R ] . 2003 .
PAULA I L D , LEMEY S , BOSMAN D , et al . Cost-effective high-performance air-filled SIW antenna array for the global 5G 26 GHz and 28 GHz bands [J ] . IEEE Antennas and Wireless Propagation Letters , 2021 , 20 ( 2 ): 194 - 198 .
LIU K Z , ZHANG Z J , DAI L L , et al . Active reconfigurable intelligent surface:fully-connected or sub-connected? [J ] . IEEE Communications Letters , 2022 , 26 ( 1 ): 167 - 171 .
0
浏览量
384
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构