- By:
- Tung, Chi-Huan ; Huang, Guan-Rong; Wang, Yangyang ; Carrillo, Jan Michael Y; Kim, Tae-Hwan; Astner, Anton F; Porcar, Lionel; Shinohara, Yuya ; Shang, Yingrui ; Rother, Gernot ; Do, Changwoo ; Chen, Wei-Ren
- Journal Name:
- The Journal of Chemical Physics
- Page Number:
- 174112
- Volume:
- 164
- Publication Date:
- May 21, 2026
- View DOI Listing:
- https://doi.org/10.1063/5.0331405
Abstract
Multiple scattering in small-angle neutron scattering (SANS) redistributes spectral weight and distorts structural interpretation, particularly for thick or strongly scattering samples. We develop a finite-dimensional spectral desmearing framework that corrects multiple scattering without resorting to integral transforms or model-dependent extrapolation. The primary intensity is expanded in an orthonormal basis adapted to the isotropic transverse-momentum measure, under which convolution reduces to a recursive tensor contraction, allowing the Poisson-weighted multiple-scattering series to be evaluated directly in a finite-dimensional basis representation. This formulation yields a stable forward–inverse mapping between apparent and primary spectra. Numerical tests demonstrate convergence under repeated convolution and accurate recovery of the single-scattering intensity. Application to SANS measurements collected at multiple neutron facilities, including the Spallation Neutron Source, the High Flux Isotope Reactor, and the Institut Laue-Langevin, shows the quantitative reconstruction of the underlying primary spectrum across a wide range of transmission conditions, including strongly attenuating samples. The method provides a stable, model-agnostic framework for multiple-scattering correction in SANS and enables consistent structural interpretation across instruments and scattering regimes.