AI Article Synopsis

  • - Terahertz time-domain spectroscopy (THz-TDS) offers high signal-to-noise ratios by capturing electric field amplitude over time, providing detailed optical parameters like refractive index, but data extraction remains complex and lacks standardized methods, causing measurement discrepancies.
  • - Low frequency noise can interfere with phase reconstruction of signals, and issues like laser power fluctuations lead to measurement errors if not properly managed.
  • - The research utilizes ensembles of deep neural networks trained on synthetic data to automatically extract the complex refractive index, overcoming challenges like phase unwrapping and laser drift, and outperforming traditional extraction methods.

Article Abstract

Terahertz time-domain spectroscopy (THz-TDS) achieves excellent signal-to-noise ratios by measuring the amplitude of the electric field in the time-domain, resulting in the full, complex, frequency-domain information of materials' optical parameters, such as the refractive index. However the data extraction process is non-trivial and standardization of practices are still yet to be cemented in the field leading to significant variation in sample measurements. One such contribution is low frequency noise offsetting the phase reconstruction of the Fourier transformed signal. Additionally, experimental errors such as fluctuations in the power of the laser driving the spectrometer (laser drift) can heavily contribute to erroneous measurements if not accounted for. We show that ensembles of deep neural networks trained with synthetic data extract the frequency-dependent complex refractive index, whereby required fitting steps are automated and show resilience to phase unwrapping variations and laser drift. We show that training with synthetic data allows for flexibility in the functionality of networks yet the produced ensemble supersedes current extraction techniques.

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Source
http://dx.doi.org/10.1364/OE.507439DOI Listing

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