- By:
- Tung, Chi-Huan ; Huang, Guan-Rong; Wang, Yangyang ; Carrillo, Jan Michael Y; Shinohara, Yuya ; Do, Changwoo ; Rother, Gernot ; Shang, Yingrui ; Chen, Wei-Ren
- Journal Name:
- The Journal of Chemical Physics
- Page Number:
- 164108
- Volume:
- 164
- Publication Date:
- April 23, 2026
- View DOI Listing:
- https://doi.org/10.1063/5.0325436
Abstract
Ultra-small-angle neutron scattering (USANS) using Bonse–Hart optics provides micrometer-scale structural insights but suffers from severe slit-geometry smearing. While well-established for isotropic systems, quantitative desmearing of anisotropic data remains a challenge because conventional corrections break down for non-radial scattering. We address this by developing a resolution-aware Bayesian framework that explicitly incorporates anisotropy via an affine deformation to the scattering pattern, guided by the principle of parsimony. This results in orientation-resolved point-spread functions that enable a self-consistent determination of both the resolution and deformation parameters. Using Gaussian process regression with uncertainty quantification and a probabilistic correction for multiple scattering, we demonstrate the framework’s effectiveness through numerical benchmarks and experimental studies of a stretched polymer melt. Our approach enables the seamless integration of SANS and USANS data, facilitating quantitative structural analysis of deformed materials at nanometer to micrometer scales.