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Updated: Jan 16, 2026

Optimized Fabrication Procedure for High-Quality Graphene-based Moiré Superlattice Devices
Published on: July 11, 2025
Reversing the doping paradox: graphene spatial nesting enhances intergranular connectivity while inducing minimal
Wenbin Jin1, Fang Cheng1, Nan Liu2
1Materials and Chemistry College, International Exchange and Cooperation Office of China Jiliang University, Hangzhou, People's Republic of China.
Abstract:
This study systematically investigates the influence of pre-treated graphene doping on the microstructure and superconducting properties of MgB2, focusing on the effects of pretreatment processes, doping content (graphene and Cu), and sintering temperature. Key findings reveal that graphene pretreatment enhances dispersion homogeneity but has a limited impact on coated boron powders. Low-temperature sintering with trace Cu enables finer grain control, though graphene shifts the dominant reaction mechanism to solid-solid (Mg-B), impeding Mg diffusion and causing incomplete reactions even at high temperatures. System equilibrium requires prolonged low-temperature treatment or optimized doping. Crucially, the 5 wt.% Gr + 5 wt.% Cu sample, sintered at 800 °C, exhibits a decrease in the full width at half maximum of the phonon density of states peak. This arises from the tensile strain induced by high-quality graphene that counters residual stress and lattice distortion from carbon substitution, evidenced by mitigatingTcdegradation observed in Raman andTcmeasurements. In order to illustrate the results in contradiction to the conventional theory, a primary enhancement mechanism is proposed in the present work which is relevant to the co-growth of MgB2, Mg-Cu alloy, and amorphous phases on graphene micro-substrates. It is indicated that a dense, interconnected, spatially nested architecture within the MgB2matrix is the key point to overcome the doping-induced poor intergranular connectivity and prevent the low-field performance suppression.
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