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Main Authors: Chicharo, Alexandre, Kaspar, Zdenek, Rappoport, Tatiana G., Punjal, Ajinkya, Liao, Chun-Da, De Beule, Pieter, Borme, Jerome, Peres, Nuno M. R., Alpuim, Pedro
Format: Preprint
Published: 2021
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Online Access:https://arxiv.org/abs/2102.10029
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author Chicharo, Alexandre
Kaspar, Zdenek
Rappoport, Tatiana G.
Punjal, Ajinkya
Liao, Chun-Da
De Beule, Pieter
Borme, Jerome
Peres, Nuno M. R.
Alpuim, Pedro
author_facet Chicharo, Alexandre
Kaspar, Zdenek
Rappoport, Tatiana G.
Punjal, Ajinkya
Liao, Chun-Da
De Beule, Pieter
Borme, Jerome
Peres, Nuno M. R.
Alpuim, Pedro
contents Terahertz polarizers are essential for advanced spectroscopic systems but face challenges like low transmission, short bandwidths and low extinction ratios. This study demonstrates the development of ultrabroadband THz polarizers using nanoimprint lithography, achieving high performance through double-wire-grid polarizer (DWGP) structures on cyclic olefin copolymer (COC) substrates. Compared to silicon-based alternatives, the polymer DWGPs demonstrated over twice the TM-polarized transmittance across the 0.1 - 25 THz range. The degree of polarization exceeded 98% in a 0.1-16 THz range, with a maximum extinction ratio above 65.4 dB at 4.2 THz. Simultaneous characterization of materials using THz time-domain spectroscopy (THz-TDS) and Fourier-transform infrared spectroscopy (FTIR) covered extended frequency ranges of 0.1 - 40 THz and 0.9 - 20 THz, respectively. Nanofabricated polymer DWGP revealed the superior optical properties, including enhanced TM transmittance and reduced TE leakage when compared to Si DWGP. Additionally, the fabricated polymer polarizers showcased cost-effectiveness, scalability, and durability, offering a sustainable alternative to conventional Si-based polarizers. The significant developments demonstrated in this study position polymer-based DWGPs as significant components for THz imaging, sensing, and wireless communication systems, paving the way for next-generation technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2102_10029
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle Broadband High-Performance Terahertz Polarizers by Nanoimprint Lithography for Advanced Applications
Chicharo, Alexandre
Kaspar, Zdenek
Rappoport, Tatiana G.
Punjal, Ajinkya
Liao, Chun-Da
De Beule, Pieter
Borme, Jerome
Peres, Nuno M. R.
Alpuim, Pedro
Optics
Mesoscale and Nanoscale Physics
Terahertz polarizers are essential for advanced spectroscopic systems but face challenges like low transmission, short bandwidths and low extinction ratios. This study demonstrates the development of ultrabroadband THz polarizers using nanoimprint lithography, achieving high performance through double-wire-grid polarizer (DWGP) structures on cyclic olefin copolymer (COC) substrates. Compared to silicon-based alternatives, the polymer DWGPs demonstrated over twice the TM-polarized transmittance across the 0.1 - 25 THz range. The degree of polarization exceeded 98% in a 0.1-16 THz range, with a maximum extinction ratio above 65.4 dB at 4.2 THz. Simultaneous characterization of materials using THz time-domain spectroscopy (THz-TDS) and Fourier-transform infrared spectroscopy (FTIR) covered extended frequency ranges of 0.1 - 40 THz and 0.9 - 20 THz, respectively. Nanofabricated polymer DWGP revealed the superior optical properties, including enhanced TM transmittance and reduced TE leakage when compared to Si DWGP. Additionally, the fabricated polymer polarizers showcased cost-effectiveness, scalability, and durability, offering a sustainable alternative to conventional Si-based polarizers. The significant developments demonstrated in this study position polymer-based DWGPs as significant components for THz imaging, sensing, and wireless communication systems, paving the way for next-generation technologies.
title Broadband High-Performance Terahertz Polarizers by Nanoimprint Lithography for Advanced Applications
topic Optics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2102.10029