Detecting Polarized Side-Scattering Signals in Media with Ultra-Low-Scattering Coefficients: An Improved Monte Carlo Simulation Approach
Highlights
- A novel polarized Monte Carlo algorithm integrating backward ray tracing with geometric projection correction is proposed to address the geometric mismatch in side-scattering simulations for low-scattering coefficient media ( ≤ 1 cm−1).
- Experimental validation using 500 nm polystyrene microspheres and 5 nm TiO2 nanoparticles under 532 nm laser illumination shows that the proposed method accurately reproduces the spatial distribution of scattered light and the monotonic decrease in the degree of linear polarization with increasing concentration in ultra-low-scattering regimes ( ~ 10−5 cm−1).
- This work extends the applicability of polarized Monte Carlo simulations to media with scattering coefficients as low as 10−5 cm−1, providing a reliable tool for studying light scattering in dilute particulate systems.
- The proposed algorithm enhances simulation fidelity in scenarios relevant to nanoparticle characterization, biomedical imaging, and flow diagnostics, where low-scattering conditions are prevalent.
Abstract
1. Introduction
- (1)
- Retro-projection correction via backward ray tracing: analytically mapping photon exit coordinates onto the detector plane significantly reduces lateral positional errors, and the procedure has been experimentally validated.
- (2)
- Research the variation law of side-scattering DoLP in ultra-low media: using a 532 nm wavelength sheet laser on 5 nm diameter TiO2 solutions (concentration 10−3–10−2 g/L, 1.06 × 10−6–1.06 × 10−5 cm−1). We quantify the monotonic decrease in DoLP with increasing concentration, a trend that differs from the non-monotonic behavior reported in Ref. [20]. Our results therefore correct and refine the earlier findings in Ref. [20], demonstrating that DoLP declines steadily throughout the investigated concentration range.
2. Materials and Methods
2.1. Experimental Setup
2.2. Algorithm for Side-Scattering of Polarized Light in Media
2.3. Backward Ray Tracing Algorithm
3. Result
3.1. Experiment 1: Low-Scattering Coefficient 500 nm Diameter Polystyrene Microsphere Solution
3.2. Experiment 2: Ultra-Low-Scattering Coefficient 5 nm Diameter TiO2 Nanoparticle Solution
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Shan, C.; He, L.; Jin, B.; Wu, Z.; Yi, S. Detecting Polarized Side-Scattering Signals in Media with Ultra-Low-Scattering Coefficients: An Improved Monte Carlo Simulation Approach. Sensors 2026, 26, 2105. https://doi.org/10.3390/s26072105
Shan C, He L, Jin B, Wu Z, Yi S. Detecting Polarized Side-Scattering Signals in Media with Ultra-Low-Scattering Coefficients: An Improved Monte Carlo Simulation Approach. Sensors. 2026; 26(7):2105. https://doi.org/10.3390/s26072105
Chicago/Turabian StyleShan, Chenyu, Lin He, Bingjie Jin, Zhengbang Wu, and Shihe Yi. 2026. "Detecting Polarized Side-Scattering Signals in Media with Ultra-Low-Scattering Coefficients: An Improved Monte Carlo Simulation Approach" Sensors 26, no. 7: 2105. https://doi.org/10.3390/s26072105
APA StyleShan, C., He, L., Jin, B., Wu, Z., & Yi, S. (2026). Detecting Polarized Side-Scattering Signals in Media with Ultra-Low-Scattering Coefficients: An Improved Monte Carlo Simulation Approach. Sensors, 26(7), 2105. https://doi.org/10.3390/s26072105

