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<rdf:RDF xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#" xmlns:dc="http://purl.org/dc/elements/1.1/"><rdf:Description rdf:about="https://repozitorij.uni-lj.si/IzpisGradiva.php?id=182842"><dc:title>Single-grain grain-boundary engineering with Nd-Cu for sustainable recycling and reprocessing of Nd-Fe-B magnets</dc:title><dc:creator>Rebernik Gracej,	Mihaela	(Avtor)
	</dc:creator><dc:creator>Šturm,	Sašo	(Avtor)
	</dc:creator><dc:subject>Nd-Fe-B magnets</dc:subject><dc:subject>recycling</dc:subject><dc:subject>Nd-Cu eutectic</dc:subject><dc:subject>spark plasma sintering</dc:subject><dc:subject>single-grain grain-boundary engineering</dc:subject><dc:description>The sustainable recycling and reprocessing of Nd-Fe-B magnets are essential for reducing critical-material dependency in next-generation permanent-magnet manufacturing. This study introduces a single-grain, grain-boundary-engineering strategy that revitalizes RE$_2$Fe$_{14}$B grains recovered and extracted via chemical leaching from end-of-life (EoL) wind-turbine magnets. The study showed that the selective leaching disrupted the matrix grains, producing Nd-, Dy-, and Fe-based oxides that shaped the subsequent microstructural evolution. A detailed transmission-electron-microscopy (TEM) study was employed to track the chemical and structural evolution of the modified grain boundaries and to correlate these changes with microstructural and magnetic performance. Nd$_{70}$Cu$_{30}$ additions proved decisive in dissolving RE$_2$Fe$_{14}$B-based surface oxides into the liquid phase and reprecipitating them at the triple pockets as oxygen-rich secondary phases, enabling surface reconstruction and liquid-phase sintering. The magnetic properties of bulk Nd-Fe-B magnet samples improved markedly with Nd-Cu additions (0–30 wt%): the remanence increased to ≈ 1.05 T, saturating above 5 wt% Nd-Cu due to enhanced grain alignment. The coercivity rose continuously from 50 to 825 kA/m with increasing Nd-Cu, governed primarily by grain-boundary characteristics rather than grain size. The maximum energy product also increased from 10 to 195 kJ/m$^3$ under the same additions. Simulations showed that the effect of in-plane anisotropy due to the presence of RE-oxides at the surface of the Nd$_2$Fe$_{14}$B grains reduces the coercivity. On the other hand, the better grain alignment markedly enhances the coercivity. The low-Fe-concentration grain boundaries, considered to be paramagnetic, act as an effective magnetic decoupling phase. Conversely, excessive non-magnetic secondary phases in the triple pockets generate local demagnetizing fields that lower the coercivity. Thus, optimizing the oxygen pathways with Nd-Cu additions enables the sustainable recycling and reprocessing of Nd-Fe-B magnets by replacing the Nd-rich phases with resource-efficient Nd$_{70}$Cu$_{30}$. The study demonstrates the potential of microstructural single-grain, grain-boundary re-engineering to enhance the properties of recycled magnets.</dc:description><dc:date>2026</dc:date><dc:date>2026-05-25 14:15:00</dc:date><dc:type>Članek v reviji</dc:type><dc:identifier>182842</dc:identifier><dc:language>sl</dc:language></rdf:Description></rdf:RDF>
