TY - JOUR
T1 - Synthesis of nitrogen-doped porous hollow carbon nanospheres with a high nitrogen content
T2 - A sustainable synthetic strategy using energetic precursors
AU - Deng, Peng
AU - Jiao, Qingjie
AU - Ren, Hui
N1 - Publisher Copyright:
© 2020
PY - 2020/4/20
Y1 - 2020/4/20
N2 - Improving the recovery and utilization efficiency of obsolete energetic materials (EMs) is essential for addressing environmental pollution. In this sense, a sustainable one-step high-temperature carbonization strategy using 2,2′,4,4′,6,6′-hexanitrostilbene-based (HNS-based) energetic hollow nanospheres as energetic precursors was used to fabricate nitrogen-doped (N-doped) porous hollow carbon nanospheres with a high N content. The experimental results suggested carbon-based materials with a hollow spherical framework nanostructure can be obtained by the high-temperature carbonization of energetic precursors. The obtained samples possessed N-doped contents of 19.54 wt% at the carbonization temperature of 600 °C and even 6.10 wt% at 900 °C. In addition, hollow carbon nanospheres with a large number of hierarchical pores and a high surface area (503.5 m2/g) were produced at 900 °C. This strategy prevented unnecessary safety risks and improved recovery and utilization efficiency in a more sustainable and economic manner than conventional disposal methods of EMs. Therefore, this work provides a proof-of-principle concept for the fabrication of carbon-based fundamental functional materials from obsolete EMs.
AB - Improving the recovery and utilization efficiency of obsolete energetic materials (EMs) is essential for addressing environmental pollution. In this sense, a sustainable one-step high-temperature carbonization strategy using 2,2′,4,4′,6,6′-hexanitrostilbene-based (HNS-based) energetic hollow nanospheres as energetic precursors was used to fabricate nitrogen-doped (N-doped) porous hollow carbon nanospheres with a high N content. The experimental results suggested carbon-based materials with a hollow spherical framework nanostructure can be obtained by the high-temperature carbonization of energetic precursors. The obtained samples possessed N-doped contents of 19.54 wt% at the carbonization temperature of 600 °C and even 6.10 wt% at 900 °C. In addition, hollow carbon nanospheres with a large number of hierarchical pores and a high surface area (503.5 m2/g) were produced at 900 °C. This strategy prevented unnecessary safety risks and improved recovery and utilization efficiency in a more sustainable and economic manner than conventional disposal methods of EMs. Therefore, this work provides a proof-of-principle concept for the fabrication of carbon-based fundamental functional materials from obsolete EMs.
KW - Carbon nanospheres
KW - Energetic precursor
KW - High nitrogen content
KW - High-temperature carbonization
KW - Sustainable strategy
UR - http://www.scopus.com/inward/record.url?scp=85078125058&partnerID=8YFLogxK
U2 - 10.1016/j.scitotenv.2020.136725
DO - 10.1016/j.scitotenv.2020.136725
M3 - Article
C2 - 31982749
AN - SCOPUS:85078125058
SN - 0048-9697
VL - 714
JO - Science of the Total Environment
JF - Science of the Total Environment
M1 - 136725
ER -