JOURNAL ARTICLE

Hyperspectral terahertz microscopy via nonlinear ghost imaging

Abstract

Ghost imaging, based on single-pixel detection and multiple pattern illumination, is a crucial investigative tool in difficult-to-access wavelength regions. In the terahertz domain, where high-resolution imagers are mostly unavailable, ghost imaging is an optimal approach to embed the temporal dimension, creating a “hyperspectral” imager. In this framework, high resolution is mostly out of reach. Hence, it is particularly critical to developing practical approaches for microscopy. Here we experimentally demonstrate time-resolved nonlinear ghost imaging, a technique based on near-field, optical-to-terahertz nonlinear conversion and detection of illumination patterns. We show how space–time coupling affects near-field time-domain imaging, and we develop a complete methodology that overcomes fundamental systematic reconstruction issues. Our theoretical-experimental platform enables high-fidelity subwavelength imaging and carries relaxed constraints on the nonlinear generation crystal thickness. Our work establishes a rigorous framework to reconstruct hyperspectral images of complex samples inaccessible through standard fixed-time methods.

Keywords:
Hyperspectral imaging Terahertz radiation Nonlinear system Optics Microscopy Computer science Wavelength Quadratic equation Physics Artificial intelligence Computer vision Mathematics

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208
Cited By
15.74
FWCI (Field Weighted Citation Impact)
59
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1.00
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Citation History

Topics

Random lasers and scattering media
Physical Sciences →  Physics and Astronomy →  Acoustics and Ultrasonics
Terahertz technology and applications
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
Optical Coherence Tomography Applications
Physical Sciences →  Engineering →  Biomedical Engineering

Related Documents

JOURNAL ARTICLE

Terahertz Hyperspectral Microscopy via Nonlinear Ghost Imaging

Juan Sebastian Totero GongoraLuana OlivieriLuke PetersVittorio CecconiAntonio CutronaJacob TunesiRobyn TuckerAlessia PasquaziMarco Peccianti

Journal:   OSA Advanced Photonics Congress (AP) 2020 (IPR, NP, NOMA, Networks, PVLED, PSC, SPPCom, SOF) Year: 2020 Pages: JM2E.6-JM2E.6
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