Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection

Researches in metamaterials and metasurfaces have significant impact on development of terahertz optics and progression of terahertz science and technologies. Further advancement of terahertz systems demands efficient and versatile tunable and reconfigurable metadevices for manipulating various prop...

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Main Authors: Ding, Lu, Luo, Xianshu, Cheng, Liang, Thway, Maung, Song, Junfeng, Chua, Soo Jin, Chia, Elbert E. M., Teng, Jinghua
Other Authors: School of Physical and Mathematical Sciences
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/151590
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1515902023-02-28T19:22:05Z Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection Ding, Lu Luo, Xianshu Cheng, Liang Thway, Maung Song, Junfeng Chua, Soo Jin Chia, Elbert E. M. Teng, Jinghua School of Physical and Mathematical Sciences Agency for Science, Technology and Research National University of Singapore Jilin University Science::Physics Silicon Metasurfaces Broadband Terahertz Antireflection Researches in metamaterials and metasurfaces have significant impact on development of terahertz optics and progression of terahertz science and technologies. Further advancement of terahertz systems demands efficient and versatile tunable and reconfigurable metadevices for manipulating various properties of terahertz radiation. Here an electrically and thermally tunable silicon metasurface for broadband terahertz antireflection applica- tion is demonstrated. The silicon metasurface is composed by interdigitated p–n junctions fabricated using a completely complementary metal-oxide-sem- iconductor (CMOS) compatible process in a silicon photonics foundry. It is atomically smooth without any physically etched pattern nor metal antennas. By supplying bias voltage to the p–n junctions, the complex reflection coefficient of the silicon metasurface is continuously tuned between nega- tive and positive values. Complete antireflection condition can be precisely achieved, represented by the vanishing of the echo pulse in terahertz time- domain spectroscopy (THz-TDS). The transmission amplitude is bias-polarity dependent, while the phase is simultaneously manipulated. The active silicon metasurface has a unique property that it thermally tunes the reflection and electrically tunes transmission. The methodology suggests a new design con- cept using all-silicon platform for making atomically smooth and electrically controlled metadevices in terahertz and other frequency ranges. Agency for Science, Technology and Research (A*STAR) Ministry of Education (MOE) Accepted version The work was financially supported by the Institute of Materials Research and Engineering and the Agency for Science, Technology and Research (A*STAR) under Grant Nos. 152 70 00014 and 152 70 00016, as well as Singapore Ministry of Education AcRF Tier 2 Grant (MOE2015-T2-2-065). 2021-06-24T02:33:24Z 2021-06-24T02:33:24Z 2018 Journal Article Ding, L., Luo, X., Cheng, L., Thway, M., Song, J., Chua, S. J., Chia, E. E. M. & Teng, J. (2018). Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection. Advanced Optical Materials, 6(23), 1800928-1-1800928-6. https://dx.doi.org/10.1002/adom.201800928 2195-1071 https://hdl.handle.net/10356/151590 10.1002/adom.201800928 23 6 1800928-1 1800928-6 en 152 70 00014 152 70 00016 MOE2015‐T2‐2‐065 Advanced Optical Materials doi:10.21979/N9/GNAMB3 This is the peer reviewed version of the following article: Ding, L., Luo, X., Cheng, L., Thway, M., Song, J., Chua, S. J., Chia, E. E. M. & Teng, J. (2018). Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection. Advanced Optical Materials, 6(23), 1800928-1-1800928-6. https://dx.doi.org/10.1002/adom.20180092, which has been published in final form at https://doi.org/10.1002/adom.201800928. This article may be used for non-commercial purposes in accordance with Wiley Terms and Conditions for Use of Self-Archived Versions. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Physics
Silicon Metasurfaces
Broadband Terahertz Antireflection
spellingShingle Science::Physics
Silicon Metasurfaces
Broadband Terahertz Antireflection
Ding, Lu
Luo, Xianshu
Cheng, Liang
Thway, Maung
Song, Junfeng
Chua, Soo Jin
Chia, Elbert E. M.
Teng, Jinghua
Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection
description Researches in metamaterials and metasurfaces have significant impact on development of terahertz optics and progression of terahertz science and technologies. Further advancement of terahertz systems demands efficient and versatile tunable and reconfigurable metadevices for manipulating various properties of terahertz radiation. Here an electrically and thermally tunable silicon metasurface for broadband terahertz antireflection applica- tion is demonstrated. The silicon metasurface is composed by interdigitated p–n junctions fabricated using a completely complementary metal-oxide-sem- iconductor (CMOS) compatible process in a silicon photonics foundry. It is atomically smooth without any physically etched pattern nor metal antennas. By supplying bias voltage to the p–n junctions, the complex reflection coefficient of the silicon metasurface is continuously tuned between nega- tive and positive values. Complete antireflection condition can be precisely achieved, represented by the vanishing of the echo pulse in terahertz time- domain spectroscopy (THz-TDS). The transmission amplitude is bias-polarity dependent, while the phase is simultaneously manipulated. The active silicon metasurface has a unique property that it thermally tunes the reflection and electrically tunes transmission. The methodology suggests a new design con- cept using all-silicon platform for making atomically smooth and electrically controlled metadevices in terahertz and other frequency ranges.
author2 School of Physical and Mathematical Sciences
author_facet School of Physical and Mathematical Sciences
Ding, Lu
Luo, Xianshu
Cheng, Liang
Thway, Maung
Song, Junfeng
Chua, Soo Jin
Chia, Elbert E. M.
Teng, Jinghua
format Article
author Ding, Lu
Luo, Xianshu
Cheng, Liang
Thway, Maung
Song, Junfeng
Chua, Soo Jin
Chia, Elbert E. M.
Teng, Jinghua
author_sort Ding, Lu
title Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection
title_short Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection
title_full Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection
title_fullStr Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection
title_full_unstemmed Electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection
title_sort electrically and thermally tunable smooth silicon metasurfaces for broadband terahertz antireflection
publishDate 2021
url https://hdl.handle.net/10356/151590
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