We report a quantum energy truncation terahertz coherence tomography technique that enables highly localized extraction of molecular-species-specific THz responses. The method exploits resonant photon loss when the emitter THz energy matches molecular vibration quanta. Reflected THz radiation is recorded and mapped into depth-coded image sequences, from which subsurface structural information and molecular fingerprints are retrieved to construct three-dimensional tomograms. This approach resolves major limitations of conventional continuous-wave (CW) THz imaging—namely, its lack of spectroscopic specificity and dependence on angular scanning—by directly correlating molecular excitation spectra with depth information. As a result, quantum energy truncation terahertz coherence tomography enables rapid, three-dimensional THz imaging with selective sensitivity to discrete molecular quantum energy transitions, providing new opportunities for nondestructive characterization of material refractive indices, molecular composition, and subsurface structures.

Three-Dimensional Wide-Bandwidth Quantum Energy Truncation Terahertz Coherence Tomography / Zhu, P., Zhang, H., Sfarra, S., Sarasini, F., Maldague, X., Mandelis, A.. - In: PHYSICAL REVIEW LETTERS. - ISSN 0031-9007. - 137:(2026). [10.1103/spsr-xr47]

Three-Dimensional Wide-Bandwidth Quantum Energy Truncation Terahertz Coherence Tomography

Sarasini, Fabrizio;
2026

Abstract

We report a quantum energy truncation terahertz coherence tomography technique that enables highly localized extraction of molecular-species-specific THz responses. The method exploits resonant photon loss when the emitter THz energy matches molecular vibration quanta. Reflected THz radiation is recorded and mapped into depth-coded image sequences, from which subsurface structural information and molecular fingerprints are retrieved to construct three-dimensional tomograms. This approach resolves major limitations of conventional continuous-wave (CW) THz imaging—namely, its lack of spectroscopic specificity and dependence on angular scanning—by directly correlating molecular excitation spectra with depth information. As a result, quantum energy truncation terahertz coherence tomography enables rapid, three-dimensional THz imaging with selective sensitivity to discrete molecular quantum energy transitions, providing new opportunities for nondestructive characterization of material refractive indices, molecular composition, and subsurface structures.
2026
Coherence tomography; THz imaging; Wide bandwidth
01 Pubblicazione su rivista::01a Articolo in rivista
Three-Dimensional Wide-Bandwidth Quantum Energy Truncation Terahertz Coherence Tomography / Zhu, P., Zhang, H., Sfarra, S., Sarasini, F., Maldague, X., Mandelis, A.. - In: PHYSICAL REVIEW LETTERS. - ISSN 0031-9007. - 137:(2026). [10.1103/spsr-xr47]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1771483
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