TY - JOUR
T1 - Explosive sintering mechanism and heterogeneous interface construction in titanium-based black phosphorus nanocomposites
AU - Feng, Yanyuan
AU - Qiao, Jinchao
AU - Zhou, Qiang
AU - Liu, Yan
AU - Yan, Zichen
AU - Qiao, Rufei
AU - Lyu, Zhuwen
N1 - Publisher Copyright:
© 2026
PY - 2026/9
Y1 - 2026/9
N2 - This study demonstrates the fabrication of titanium-based black phosphorus (Ti-BP) nanocomposites with architected graded heterogeneous structures via the synergistic integration of high-energy ball milling and explosive sintering. Experimental evidence reveals that, under shockwave loading characterized by 7.5 GPa dynamic pressure and ultrahigh strain rates, titanium particles undergo adiabatic shear-induced plastic flow. This process triggers the preferential slip and reorganization of BP nanosheets along the (001) crystallographic plane, yielding a graphene-like layered architecture. Microstructural characterization confirms that dynamic recrystallization effectively suppresses titanium grain coarsening, while lattice distortion within the orthorhombic BP phase enhances interfacial electron coupling. The resultant composites exhibit exceptional comprehensive mechanical performance, attributed to the spatially interlocked metallic/non-metallic architecture and multiscale synergistic strengthening mechanisms. This work establishes an innovative processing paradigm and theoretical foundation for designing advanced structural materials capable of withstanding extreme service conditions.
AB - This study demonstrates the fabrication of titanium-based black phosphorus (Ti-BP) nanocomposites with architected graded heterogeneous structures via the synergistic integration of high-energy ball milling and explosive sintering. Experimental evidence reveals that, under shockwave loading characterized by 7.5 GPa dynamic pressure and ultrahigh strain rates, titanium particles undergo adiabatic shear-induced plastic flow. This process triggers the preferential slip and reorganization of BP nanosheets along the (001) crystallographic plane, yielding a graphene-like layered architecture. Microstructural characterization confirms that dynamic recrystallization effectively suppresses titanium grain coarsening, while lattice distortion within the orthorhombic BP phase enhances interfacial electron coupling. The resultant composites exhibit exceptional comprehensive mechanical performance, attributed to the spatially interlocked metallic/non-metallic architecture and multiscale synergistic strengthening mechanisms. This work establishes an innovative processing paradigm and theoretical foundation for designing advanced structural materials capable of withstanding extreme service conditions.
KW - Dynamic recrystallization
KW - Explosive sintering
KW - Functionally graded materials
KW - Titanium-black phosphorus composites
UR - https://www.scopus.com/pages/publications/105039991451
U2 - 10.1016/j.jssc.2026.126138
DO - 10.1016/j.jssc.2026.126138
M3 - Article
AN - SCOPUS:105039991451
SN - 0022-4596
VL - 361
JO - Journal of Solid State Chemistry
JF - Journal of Solid State Chemistry
M1 - 126138
ER -