TY - JOUR
T1 - Gram-scale synthesis of simple cubic phase black phosphorus via shock-induced phase transformation
T2 - Mechanistic insights and process-dependent phase control
AU - Qiao, Jinchao
AU - Zhou, Qiang
AU - Qiao, Rufei
AU - Lyu, Zhuwen
AU - Zhong, Longhai
AU - Wang, Tianchu
AU - Liu, Yan
AU - Yan, Junbo
AU - Bai, Fan
AU - Gao, Xin
AU - Chen, Pengwan
AU - Si, Peng
N1 - Publisher Copyright:
© 2025 China Ordnance Society
PY - 2025
Y1 - 2025
N2 - Simple cubic black phosphorus (BP) has been recognized as a strategic material due to its exceptional structural stability under extreme conditions. In this investigation, simple cubic BP was successfully synthesized through shock-induced phase transformation, utilizing amorphous red phosphorus as the precursor material. The phase evolution process was systematically investigated using plane shock loading apparatus, with shock pressure and temperature parameters being precisely controlled to optimize transformation kinetics. Comprehensive phase characterization revealed the correlation between thermodynamic loading profiles and cubic BP formation efficiency. Precursor modification strategies were implemented through orthorhombic BP utilization, resulting in enhanced cubic phase yield and crystallinity. The synthesized cubic BP variants are considered promising candidates for advanced protective material systems, particularly where combinations of mechanical resilience and thermal stability are required under extreme operational conditions. This research provides critical insights into shock-induced phase transformation mechanics, while establishing foundational protocols for manufacturing non-equilibrium materials with potential applications in next-generation defensive technologies.
AB - Simple cubic black phosphorus (BP) has been recognized as a strategic material due to its exceptional structural stability under extreme conditions. In this investigation, simple cubic BP was successfully synthesized through shock-induced phase transformation, utilizing amorphous red phosphorus as the precursor material. The phase evolution process was systematically investigated using plane shock loading apparatus, with shock pressure and temperature parameters being precisely controlled to optimize transformation kinetics. Comprehensive phase characterization revealed the correlation between thermodynamic loading profiles and cubic BP formation efficiency. Precursor modification strategies were implemented through orthorhombic BP utilization, resulting in enhanced cubic phase yield and crystallinity. The synthesized cubic BP variants are considered promising candidates for advanced protective material systems, particularly where combinations of mechanical resilience and thermal stability are required under extreme operational conditions. This research provides critical insights into shock-induced phase transformation mechanics, while establishing foundational protocols for manufacturing non-equilibrium materials with potential applications in next-generation defensive technologies.
KW - Orthorhombic black phosphorus
KW - Pressure-responsive polymorphs
KW - Rhombohedral black phosphorus
KW - Shock-induced phase transformation
KW - Shock-wave engineered materials
KW - Simple cubic black phosphorus
UR - http://www.scopus.com/pages/publications/105010328126
U2 - 10.1016/j.dt.2025.06.022
DO - 10.1016/j.dt.2025.06.022
M3 - Article
AN - SCOPUS:105010328126
SN - 2096-3459
JO - Defence Technology
JF - Defence Technology
ER -