Cherenkov-excited fluorescence imaging for small-field dosimetry and SRS plan verification: a feasibility study
- Journal
- Physics in medicine and biology (Q1)
- Published
- 10 September 2026
- Study design
- Unclassified
- Evidence level
- Level 5, Expert Opinion (CEBM 5)
- Authors
- Mehmet Fazil Enkavi, Hasan Uysal, Kaan Oysul, Sait Sirin, Hülya Yavuz Ersan
- PMID
- 42722011
- DOI
- 10.1088/1361-6560/aea5cf
Why clinicians should know about it
- Picked for Medical Physics (paper of the day, 13 September 2026): Cherenkov fluorescence small-field dosimetry
Abstract
To develop a high-spatial-resolution Cherenkov-excited fluorescence dosimetry system (CEFD) with rapid optical readout using quinine sulfate solution and evaluate its feasibility for small-field dosimetry and verification of patient-derived stereotactic radiosurgery (SRS) dose distributions.
Approach. A 3D-printed optical phantom containing 1 g/L quinine sulfate solution was imaged with a CMOS camera through a 45° mirror. Sensitive-volume thicknesses of 2.5, 5, 10 and 15 mm were compared using calibration response, signal-to-noise ratio, output factors, dose-rate dependence, and small-field beam profiles benchmarked against a PTW 60023 microSilicon detector. The selected CEFD configuration was further evaluated for thermal response, repeatability, signal drift, low-MU response, and small-field gamma performance, and then used for fixed-gantry verification of 31 patient-derived SRS dose distributions. GafChromic EBT3 film was used as the high-spatial-resolution comparator.
Main results. The CEFD achieved 0.065 mm/pixel spatial sampling. CEFD-10 showed the most balanced overall performance across sensitivity, dose-rate response, output-factor agreement, and small-field profile measurements. Dose-rate deviations remained within 1.7% at 300-1400 MU/min. Passive heat sinking reduced the coefficient of variation from 0.26% to 0.13% and limited signal drift from 4.3% to 0.97% over 30 consecutive measurements. For the 0.5 × 0.5 cm² field, the CEFD-10 central-axis dose ratio relative to the TPS-projected dose remained within ±2% from 10 MU onward. For 0.5 × 0.5-3 × 3 cm² static fields, CEFD-10 achieved 99.56%-100.0% global 2%/1 mm gamma passing rates with a 10% low-dose threshold. For patient-derived SRS verification, CEFD-10 achieved mean global gamma passing rates of 99.47 ± 1.58% and 97.53 ± 3.58% for 2%/2 mm and 2%/1 mm criteria, respectively, with mean differences from EBT3 film of -0.32% and -0.21%, respectively.
Significance. This study demonstrates compact, high-spatial-resolution, rapid-readout optical dosimetry for small-field and patient-derived SRS dose patterns. Agreement with EBT3 film supports CEFD-10 as a controlled-geometry SRS dose verification.
Abstract as published, via PubMed.
For healthcare professionals. The summary is generated by AI from the published abstract, and the evidence level is assigned automatically from the study design on the Oxford CEBM hierarchy. Neither is medical advice. Read the full paper before changing practice.