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Paracrystalline graphite with combined high strength, plasticity and anomalous conductivity
Saisai Wang1, Yuchen Shang1, Rong Fu2,3
1State Key Laboratory of High Pressure and Superhard Materials, Synergetic Extreme Condition User Facility, College of Physics, Jilin University, Changchun, China.
Abstract:
Paracrystallization provides a route to achieving synergistic properties beyond conventional property trade-offs, but applying it to layered materials is challenging due to strong bonding anisotropy. Here, we report the synthesis of paracrystalline graphite, a paracrystalline state realized in a layered material, through a high-pressure-driven "local graphitization" of C60 crystals. Structural characterization and reverse Monte Carlo simulations reveal a three-dimensional network of graphite-like clusters with ~70° interlamellar angles. This architecture delivers a combination of properties, including an isotropic hardness of 33.7 GPa, a plastic strain of 12% enabled by bond conversion and cluster reorganization, and weakly temperature-dependent semimetallic conductivity that varies by less than 12% from 4 to 450 K. Bridging the gap between crystalline graphite and noncrystalline carbon, this paracrystalline system demonstrates a viable pathway for designing materials with tailored multifunctional properties by engineering medium-range order.