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DOE OSTI Β· 3364171

One-dimensional neutron diffraction from layered graphite: Reciprocal space structure and grating behavior

Abstract

In this work we report observations of one-dimensional neutron diffraction from highly oriented pyrolytic graphite (HOPG), where the scattering angle varies continuously with incident angle following classical grating-like behavior. The 2D polycrystalline structure of HOPGβ€”with highly aligned layers along the 𝑐 axis but random in-plane rotationsβ€”creates planes of scattering intensity in reciprocal space at 𝑄 𝑐 =𝑛⁒(2β’πœ‹/𝑑) where 𝑑=3.35Γ… is the interlayer spacing. As the Ewald sphere sweeps through reciprocal space during sample rotation, it continuously intersects these planes, producing the observed angular dispersion. We observe both first-order (𝑛=1) and second-order (𝑛=2) diffraction at conventional scattering angles (25°–70Β°), with peak positions that remain temperature-independent between 10 K and 294 K and follow quantitative agreement with momentum conservation 𝑄 𝑐 =π‘˜β’[sinβ‘πœ“βˆ’sinβ‘πœ“ 𝑓 ]=𝑛⁒(2β’πœ‹/𝑑). X-ray diffraction under similar conditions shows no comparable behavior, confirming that sharp nuclear-vacuum contrast is essential. While diffraction intensities are weak (∼10 βˆ’6 of Bragg peaks), the observations demonstrate how the interplay of atomic-scale periodicity, nuclear contrast, and structural disorder enables observation of continuous diffraction curves at thermal neutron wavelengths, illustrating how HOPG's unique microstructure determines its scattering properties beyond conventional Bragg diffraction.

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BibTeXRIS

Vaknin, David [Ames Laboratory (AMES), Ames, IA (United States); Iowa State Univ., Ames, IA (United States)] (ORCID:0000000208999248). 2026-05-04. One-dimensional neutron diffraction from layered graphite: Reciprocal space structure and grating behavior. https://doi.org/10.1103/lkpv-2x71

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