| name | first-in-human-quantum-entanglement-imaging |
| description | First-in-human quantum entanglement imaging methodology using J-PET plastic scintillator scanner. Measures polarization correlations of annihilation photons from positron-electron annihilation in vivo for clinical diagnostics. Use when: quantum PET imaging, entanglement-based medical imaging, J-PET scanner design, polarization-correlated tomography, quantum entanglement degree as biomarker, 68Ga radiopharmaceutical quantum imaging. |
| metadata | {"arxiv_id":"2606.29421","published":"2026-06-28","authors":"Pawel Moskal et al.","tags":["quantum-imaging","PET","entanglement","medical-diagnostics","J-PET","clinical"]} |
First-in-Human Quantum Entanglement Imaging
Core Concept
First in vivo imaging of quantum entanglement degree from positron-electron annihilation in human subjects using the J-PET (Jagiellonian Positron Emission Tomography) scanner constructed from plastic scintillators. Exploits the quantum-entangled polarization of annihilation photons — a phenomenon previously unutilized in medical diagnostics.
Key Technical Insights
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Plastic scintillator advantage: In plastics, annihilation photons interact primarily via Compton effect, providing simultaneous measurement of photon interaction position, time, AND polarization plane — enabling entanglement degree imaging alongside standard PET imaging.
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Dual-imaging capability: The J-PET scanner simultaneously determines (1) standard radiopharmaceutical uptake image and (2) quantum entanglement degree image from the relative angle between polarization planes of annihilation photon pairs.
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Entanglement degree values: For 68Ga-DOTA-TATE labeled patient, liver and spleen entanglement degrees are smaller than maximally entangled two-photon states but larger than separable photons — demonstrating measurable quantum correlations at clinically relevant activities.
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Clinical diagnostic potential: Opens new dimension for clinical diagnostics — entanglement degree as a potential biomarker reflecting tissue microstructure and molecular environment effects on photon polarization correlations.
Methodology
- Radiopharmaceutical injection: Patient injected with 68Ga-DOTA-TATE (somatostatin receptor targeting).
- J-PET detection: Plastic scintillator rings detect annihilation photons via Compton scattering.
- Polarization plane extraction: From Compton scattering kinematics, extract polarization plane orientation for each photon.
- Entanglement degree calculation: Compute relative angle distribution between polarization planes of coincidence photon pairs.
- Image reconstruction: Generate entanglement degree image parallel to standard PET uptake image.
- Tissue analysis: Compare entanglement degrees across organ regions (liver, spleen, tumor).
Applications
- Quantum-enhanced PET imaging with additional information channel
- Tissue characterization via entanglement degree as biomarker
- Low-cost quantum imaging (plastic scintillators vs crystal detectors)
- Clinical validation of quantum correlations in human subjects
Pitfalls
- Compton scattering statistics: Polarization measurement via Compton scattering has lower efficiency than dedicated polarimeters — requires higher activity or longer acquisition times.
- Entanglement degradation: Scattering in tissue before detection reduces observable entanglement degree — must model transport effects for quantitative interpretation.
- Not a replacement for standard PET: Currently complementary — adds entanglement information alongside, not instead of, standard uptake imaging.
Activation Keywords
- quantum entanglement imaging, J-PET, plastic scintillator PET, polarization-correlated tomography, entanglement degree biomarker, 68Ga quantum imaging, in vivo quantum measurement, clinical quantum diagnostics