Purpose
We are developing a monolithic deep-silicon photon-counting sensor targeting spatial resolution on the order of 1 μm. This work investigates how pixel pitch, noise level, threshold number, and threshold placement affect the achievable tangential and wafer-thickness resolution to guide the CMOS electronics and sensor design.
Approach
Allpix Squared simulations were used to evaluate pixel pitches with two noise levels and two threshold-placement schemes over varying threshold numbers. Interaction position was estimated in both dimensions using lookup tables trained on the thresholded pixel output, and performance was quantified using the MTF.
Results
Decreasing pixel pitch strongly improved tangential resolution for Compton interactions, whereas photoelectric interactions showed a weaker dependence on pixel pitch and threshold placement. Equal-counting thresholds approached the achievable resolution with fewer thresholds than equidistant thresholds. For eight equal-counting thresholds, the 10% MTF across the studied pixel sizes ranged from 1284 lp/cm to 2452 lp/cm in the tangential direction and from 15 to 71 lp/cm in the wafer-thickness direction for Compton interactions, compared with 409 to 507 lp/cm and 18 to 79 lp/cm, respectively, for photoelectric interactions. RMSE analysis further showed that some interactions for the 25 μm pitch reached below 2 μm tangentially and a few tens of micrometers in the wafer-thickness direction.
Conclusions
Spatial resolution improved with a threshold number up to about 8 to 10, beyond which additional programmable thresholds gave only modest gain. The achieved tangential resolution also suggests that analyzer-free phase-contrast imaging is feasible for realistic geometries and expected interference patterns.
QC 20260831