A Neutron Microscope Using a Nested Wolter-I Condenser and a Bank of Diffractive-Refractive Achromatic Objectives

Fuente: arXiv
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Hauptverfasser: Poulsen, Henning Friis, Andersen, Cæcilie, Ravinet, Nolan, Vila-Comamala, Joan, Veeraraj, Mano Raj Dhanalakshmi, Knudsen, Erik Bergbäck, Willendrup, Peter Kjær, Massahi, Sonny, Christensen, Finn Erland, Ferreira, Desiree Della Monica, Strobl, Markus, David, Christian, Kuhn, Luise Theil
Format: Preprint
Veröffentlicht: 2026
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author Poulsen, Henning Friis
Andersen, Cæcilie
Ravinet, Nolan
Vila-Comamala, Joan
Veeraraj, Mano Raj Dhanalakshmi
Knudsen, Erik Bergbäck
Willendrup, Peter Kjær
Massahi, Sonny
Christensen, Finn Erland
Ferreira, Desiree Della Monica
Strobl, Markus
David, Christian
Kuhn, Luise Theil
author_facet Poulsen, Henning Friis
Andersen, Cæcilie
Ravinet, Nolan
Vila-Comamala, Joan
Veeraraj, Mano Raj Dhanalakshmi
Knudsen, Erik Bergbäck
Willendrup, Peter Kjær
Massahi, Sonny
Christensen, Finn Erland
Ferreira, Desiree Della Monica
Strobl, Markus
David, Christian
Kuhn, Luise Theil
contents We propose a nested Wolter-I mirror design for a neutron condenser, which is based on established X-ray telescope technology. We demonstrate through simulations that it can increase the flux density at the ESS imaging instrument ODIN by up to two orders of magnitude. Experimental measurements of reflectivity and figure errors on a prototype mirror element confirm the technical feasibility of the approach. Then, we discuss design strategies for an imaging objective to fully exploit the condenser specifications while achieving spatial resolutions comparable to those of X-ray micro-CT instruments. Analytically, we show that for monochromatic beams suitable solutions exist employing arrays of hundreds of identical objectives, realized either as compound refractive lenses (CRLs) or Fresnel zone plates (FZPs). To mitigate the inherent chromatic aberration of these optics, each individual objective could be replaced by an achromatic FZP/CRL combination. Key optical properties of the resulting microscope are estimated. This novel full-field microscopy concept for highly divergent, polychromatic neutron beams has the potential to improve temporal and spatial resolution for large samples and sample environments and to enable the simultaneous acquisition of hundreds of projections in neutron tomography.
format Preprint
id arxiv_https___arxiv_org_abs_2601_10829
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle A Neutron Microscope Using a Nested Wolter-I Condenser and a Bank of Diffractive-Refractive Achromatic Objectives
Poulsen, Henning Friis
Andersen, Cæcilie
Ravinet, Nolan
Vila-Comamala, Joan
Veeraraj, Mano Raj Dhanalakshmi
Knudsen, Erik Bergbäck
Willendrup, Peter Kjær
Massahi, Sonny
Christensen, Finn Erland
Ferreira, Desiree Della Monica
Strobl, Markus
David, Christian
Kuhn, Luise Theil
Instrumentation and Detectors
Accelerator Physics
We propose a nested Wolter-I mirror design for a neutron condenser, which is based on established X-ray telescope technology. We demonstrate through simulations that it can increase the flux density at the ESS imaging instrument ODIN by up to two orders of magnitude. Experimental measurements of reflectivity and figure errors on a prototype mirror element confirm the technical feasibility of the approach. Then, we discuss design strategies for an imaging objective to fully exploit the condenser specifications while achieving spatial resolutions comparable to those of X-ray micro-CT instruments. Analytically, we show that for monochromatic beams suitable solutions exist employing arrays of hundreds of identical objectives, realized either as compound refractive lenses (CRLs) or Fresnel zone plates (FZPs). To mitigate the inherent chromatic aberration of these optics, each individual objective could be replaced by an achromatic FZP/CRL combination. Key optical properties of the resulting microscope are estimated. This novel full-field microscopy concept for highly divergent, polychromatic neutron beams has the potential to improve temporal and spatial resolution for large samples and sample environments and to enable the simultaneous acquisition of hundreds of projections in neutron tomography.
title A Neutron Microscope Using a Nested Wolter-I Condenser and a Bank of Diffractive-Refractive Achromatic Objectives
topic Instrumentation and Detectors
Accelerator Physics
url https://arxiv.org/abs/2601.10829