Origami metamaterials for ultra-wideband and large-depth reflection modulation
The dynamic control of electromagnetic waves is a persistent pursuit in modern industrial development. The state-of-the-art dynamic devices suffer from limitations such as narrow bandwidth, limited modulation range, and expensive features. To address these issues, we fuse origami techniques with met...
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Published in | Nature communications Vol. 15; no. 1; pp. 3181 - 9 |
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Main Authors | , , , , , , , , , , , |
Format | Journal Article |
Language | English |
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Nature Publishing Group UK
12.04.2024
Nature Publishing Group Nature Portfolio |
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Abstract | The dynamic control of electromagnetic waves is a persistent pursuit in modern industrial development. The state-of-the-art dynamic devices suffer from limitations such as narrow bandwidth, limited modulation range, and expensive features. To address these issues, we fuse origami techniques with metamaterial design to achieve ultra-wideband and large-depth reflection modulation. Through a folding process, our proposed metamaterial achieves over 10-dB modulation depth over 4.96 – 38.8 GHz, with a fractional bandwidth of 155% and tolerance to incident angles and polarizations. Its ultra-wideband and large-depth reflection modulation performance is verified through experiments and analyzed through multipole decomposition theory. To enhance its practical applicability, transparent conductive films are introduced to the metamaterial, achieving high optical transparency (>87%) from visible to near-infrared light while maintaining cost-effectiveness. Benefiting from lightweight, foldability, and low-cost properties, our design shows promise for extensive satellite communication and optical window mobile communication management.
The researchers fuse metamaterials and origami technical to achieve ultra-wideband and large-depth reflection modulation. Flexible electronics amplify its lightweight, transparency, and cost-effectiveness, making it ideal for satellite communications. |
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AbstractList | The dynamic control of electromagnetic waves is a persistent pursuit in modern industrial development. The state-of-the-art dynamic devices suffer from limitations such as narrow bandwidth, limited modulation range, and expensive features. To address these issues, we fuse origami techniques with metamaterial design to achieve ultra-wideband and large-depth reflection modulation. Through a folding process, our proposed metamaterial achieves over 10-dB modulation depth over 4.96 – 38.8 GHz, with a fractional bandwidth of 155% and tolerance to incident angles and polarizations. Its ultra-wideband and large-depth reflection modulation performance is verified through experiments and analyzed through multipole decomposition theory. To enhance its practical applicability, transparent conductive films are introduced to the metamaterial, achieving high optical transparency (>87%) from visible to near-infrared light while maintaining cost-effectiveness. Benefiting from lightweight, foldability, and low-cost properties, our design shows promise for extensive satellite communication and optical window mobile communication management. Abstract The dynamic control of electromagnetic waves is a persistent pursuit in modern industrial development. The state-of-the-art dynamic devices suffer from limitations such as narrow bandwidth, limited modulation range, and expensive features. To address these issues, we fuse origami techniques with metamaterial design to achieve ultra-wideband and large-depth reflection modulation. Through a folding process, our proposed metamaterial achieves over 10-dB modulation depth over 4.96 – 38.8 GHz, with a fractional bandwidth of 155% and tolerance to incident angles and polarizations. Its ultra-wideband and large-depth reflection modulation performance is verified through experiments and analyzed through multipole decomposition theory. To enhance its practical applicability, transparent conductive films are introduced to the metamaterial, achieving high optical transparency (>87%) from visible to near-infrared light while maintaining cost-effectiveness. Benefiting from lightweight, foldability, and low-cost properties, our design shows promise for extensive satellite communication and optical window mobile communication management. The dynamic control of electromagnetic waves is a persistent pursuit in modern industrial development. The state-of-the-art dynamic devices suffer from limitations such as narrow bandwidth, limited modulation range, and expensive features. To address these issues, we fuse origami techniques with metamaterial design to achieve ultra-wideband and large-depth reflection modulation. Through a folding process, our proposed metamaterial achieves over 10-dB modulation depth over 4.96 - 38.8 GHz, with a fractional bandwidth of 155% and tolerance to incident angles and polarizations. Its ultra-wideband and large-depth reflection modulation performance is verified through experiments and analyzed through multipole decomposition theory. To enhance its practical applicability, transparent conductive films are introduced to the metamaterial, achieving high optical transparency (>87%) from visible to near-infrared light while maintaining cost-effectiveness. Benefiting from lightweight, foldability, and low-cost properties, our design shows promise for extensive satellite communication and optical window mobile communication management.The dynamic control of electromagnetic waves is a persistent pursuit in modern industrial development. The state-of-the-art dynamic devices suffer from limitations such as narrow bandwidth, limited modulation range, and expensive features. To address these issues, we fuse origami techniques with metamaterial design to achieve ultra-wideband and large-depth reflection modulation. Through a folding process, our proposed metamaterial achieves over 10-dB modulation depth over 4.96 - 38.8 GHz, with a fractional bandwidth of 155% and tolerance to incident angles and polarizations. Its ultra-wideband and large-depth reflection modulation performance is verified through experiments and analyzed through multipole decomposition theory. To enhance its practical applicability, transparent conductive films are introduced to the metamaterial, achieving high optical transparency (>87%) from visible to near-infrared light while maintaining cost-effectiveness. Benefiting from lightweight, foldability, and low-cost properties, our design shows promise for extensive satellite communication and optical window mobile communication management. The dynamic control of electromagnetic waves is a persistent pursuit in modern industrial development. The state-of-the-art dynamic devices suffer from limitations such as narrow bandwidth, limited modulation range, and expensive features. To address these issues, we fuse origami techniques with metamaterial design to achieve ultra-wideband and large-depth reflection modulation. Through a folding process, our proposed metamaterial achieves over 10-dB modulation depth over 4.96 – 38.8 GHz, with a fractional bandwidth of 155% and tolerance to incident angles and polarizations. Its ultra-wideband and large-depth reflection modulation performance is verified through experiments and analyzed through multipole decomposition theory. To enhance its practical applicability, transparent conductive films are introduced to the metamaterial, achieving high optical transparency (>87%) from visible to near-infrared light while maintaining cost-effectiveness. Benefiting from lightweight, foldability, and low-cost properties, our design shows promise for extensive satellite communication and optical window mobile communication management. The researchers fuse metamaterials and origami technical to achieve ultra-wideband and large-depth reflection modulation. Flexible electronics amplify its lightweight, transparency, and cost-effectiveness, making it ideal for satellite communications. The dynamic control of electromagnetic waves is a persistent pursuit in modern industrial development. The state-of-the-art dynamic devices suffer from limitations such as narrow bandwidth, limited modulation range, and expensive features. To address these issues, we fuse origami techniques with metamaterial design to achieve ultra-wideband and large-depth reflection modulation. Through a folding process, our proposed metamaterial achieves over 10-dB modulation depth over 4.96 – 38.8 GHz, with a fractional bandwidth of 155% and tolerance to incident angles and polarizations. Its ultra-wideband and large-depth reflection modulation performance is verified through experiments and analyzed through multipole decomposition theory. To enhance its practical applicability, transparent conductive films are introduced to the metamaterial, achieving high optical transparency (>87%) from visible to near-infrared light while maintaining cost-effectiveness. Benefiting from lightweight, foldability, and low-cost properties, our design shows promise for extensive satellite communication and optical window mobile communication management.The researchers fuse metamaterials and origami technical to achieve ultra-wideband and large-depth reflection modulation. Flexible electronics amplify its lightweight, transparency, and cost-effectiveness, making it ideal for satellite communications. |
ArticleNumber | 3181 |
Author | Wang, Tianyu Qiu, Cheng-Wei Zhang, Ruicong Min, Pingping Zhu, Jiaqi Han, Jiecai Wang, Xianchao He, Yurong Song, Zicheng Cao, Wenxin Zhu, Juan-Feng Wu, Lin |
Author_xml | – sequence: 1 givenname: Zicheng orcidid: 0000-0003-3248-0291 surname: Song fullname: Song, Zicheng organization: Center for Composite Materials and Structures, Harbin Institute of Technology, Zhengzhou Research Institute, Harbin Institute of Technology – sequence: 2 givenname: Juan-Feng orcidid: 0000-0002-8364-8667 surname: Zhu fullname: Zhu, Juan-Feng organization: Science, Mathematics and Technology, Singapore University of Technology and Design (SUTD) – sequence: 3 givenname: Xianchao surname: Wang fullname: Wang, Xianchao organization: School of Mathematics, Harbin Institute of Technology – sequence: 4 givenname: Ruicong surname: Zhang fullname: Zhang, Ruicong organization: Center for Composite Materials and Structures, Harbin Institute of Technology, Zhengzhou Research Institute, Harbin Institute of Technology – sequence: 5 givenname: Pingping surname: Min fullname: Min, Pingping organization: Center for Composite Materials and Structures, Harbin Institute of Technology, Zhengzhou Research Institute, Harbin Institute of Technology – sequence: 6 givenname: Wenxin surname: Cao fullname: Cao, Wenxin organization: Center for Composite Materials and Structures, Harbin Institute of Technology, Zhengzhou Research Institute, Harbin Institute of Technology – sequence: 7 givenname: Yurong surname: He fullname: He, Yurong organization: School of Energy Science & Engineering, Harbin Institute of Technology – sequence: 8 givenname: Jiecai surname: Han fullname: Han, Jiecai organization: Center for Composite Materials and Structures, Harbin Institute of Technology – sequence: 9 givenname: Tianyu surname: Wang fullname: Wang, Tianyu email: tianyu_wang@hit.edu.cn organization: School of Energy Science & Engineering, Harbin Institute of Technology – sequence: 10 givenname: Jiaqi orcidid: 0000-0002-2142-7260 surname: Zhu fullname: Zhu, Jiaqi email: zhujq@hit.edu.cn organization: Center for Composite Materials and Structures, Harbin Institute of Technology, Zhengzhou Research Institute, Harbin Institute of Technology – sequence: 11 givenname: Lin orcidid: 0000-0002-3188-0640 surname: Wu fullname: Wu, Lin email: lin_wu@sutd.edu.sg organization: Science, Mathematics and Technology, Singapore University of Technology and Design (SUTD), Institute of High Performance Computing (IHPC) – sequence: 12 givenname: Cheng-Wei surname: Qiu fullname: Qiu, Cheng-Wei email: chengwei.qiu@nus.edu.sg organization: Department of Electrical and Computer Engineering, College of Design and Engineering, National University of Singapore |
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SubjectTerms | 142/126 639/624/1075 639/624/399 Angle of reflection Bandwidths Cost analysis Dynamic control Effectiveness Electromagnetic radiation Flexible components Humanities and Social Sciences Industrial development Lightweight Metamaterials Modulation multidisciplinary Multipoles Optical properties Satellite communications Science Science (multidisciplinary) Ultrawideband |
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