Spatial-spectral mapping for long-duration broadband terahertz pulse generation in on-chip waveguide arrays

Fuente: arXiv
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Main Authors: Huang, Yibo, Lu, Yao, Duan, Haoyu, Wang, Chao, Xu, Xitan, Qi, Jiwei, Wu, Qiang, Xu, Jingjun
Format: Preprint
Published: 2025
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_version_ 1866908705529790464
author Huang, Yibo
Lu, Yao
Duan, Haoyu
Wang, Chao
Xu, Xitan
Qi, Jiwei
Wu, Qiang
Xu, Jingjun
author_facet Huang, Yibo
Lu, Yao
Duan, Haoyu
Wang, Chao
Xu, Xitan
Qi, Jiwei
Wu, Qiang
Xu, Jingjun
contents Conventional approaches to terahertz (THz) pulse generation are restricted by the Fourier-transform limit, which hinders the creation of sources that combine long duration with broad bandwidth--a capability crucial for many spectroscopic and sensing applications. In this work, we overcome this challenge in the terahertz domain using an on-chip gradient waveguide array. The key is to spectrally disperse the pulse into spatially separated channels within a lithium niobate chip, effectively decoupling the design of temporal and spectral properties. We validate the source by distinguishing amino acid mixtures, demonstrating its tailored biosensing potential. This work establishes a novel mechanism for integrated THz generation, offering considerable promise for broadband spectroscopy and on-chip photonics.
format Preprint
id arxiv_https___arxiv_org_abs_2512_10677
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Spatial-spectral mapping for long-duration broadband terahertz pulse generation in on-chip waveguide arrays
Huang, Yibo
Lu, Yao
Duan, Haoyu
Wang, Chao
Xu, Xitan
Qi, Jiwei
Wu, Qiang
Xu, Jingjun
Optics
Conventional approaches to terahertz (THz) pulse generation are restricted by the Fourier-transform limit, which hinders the creation of sources that combine long duration with broad bandwidth--a capability crucial for many spectroscopic and sensing applications. In this work, we overcome this challenge in the terahertz domain using an on-chip gradient waveguide array. The key is to spectrally disperse the pulse into spatially separated channels within a lithium niobate chip, effectively decoupling the design of temporal and spectral properties. We validate the source by distinguishing amino acid mixtures, demonstrating its tailored biosensing potential. This work establishes a novel mechanism for integrated THz generation, offering considerable promise for broadband spectroscopy and on-chip photonics.
title Spatial-spectral mapping for long-duration broadband terahertz pulse generation in on-chip waveguide arrays
topic Optics
url https://arxiv.org/abs/2512.10677