TY - JOUR
T1 - Natural wood templated hierarchically cellular NbC/Pyrolytic carbon foams as Stiff, lightweight and High-Performance electromagnetic shielding materials
AU - Liu, Xingmin
AU - Liu, Heqiang
AU - Xu, Hailong
AU - Xie, Wenjie
AU - Li, Minghang
AU - Liu, Jianxi
AU - Liu, Guoqiang
AU - Weidenkaff, Anke
AU - Riedel, Ralf
N1 - Publisher Copyright:
© 2021 Elsevier Inc.
PY - 2022/1/15
Y1 - 2022/1/15
N2 - Hierarchically cellular, stiff, and lightweight niobium carbide (NbC)-pyrolytic carbon (PyC) monolithic foam composites possessing excellent electromagnetic interference shielding effectiveness (EMI SE) were developed via a natural wood template-based method. Pyrolytic carbon derived from the decomposed cellulose in the wood worked as the carbon source for the growth of NbC phase, and the NbC-PyC heterogeneous nano-interface formed between the residual PyC and the freshly formed NbC. Multi-loss mechanisms (e.g. conductive loss, dipole polarization loss, and especially interface polarization loss) were established by controlling the NbC content and residual PyC phase in the NbC-PyC foams, which significantly improved the absorption capability. Compared to 28.0 dB of PyC monolith, the EMI SE of NbC-PyC foam can reach 54.8 dB when the thickness is 0.5 mm, which outperforms the other porous-based shielding materials. Due to the highly porous structure of pristine wood, the resulting NbC-PyC foam exhibited a low density of 0.48 g/cm3, which is ~ 1/16 of dense NbC (7.78 g/cm3). Generally, this work introduces innovative ideas for designing novel and advanced transition metal carbide–carbon composite materials.
AB - Hierarchically cellular, stiff, and lightweight niobium carbide (NbC)-pyrolytic carbon (PyC) monolithic foam composites possessing excellent electromagnetic interference shielding effectiveness (EMI SE) were developed via a natural wood template-based method. Pyrolytic carbon derived from the decomposed cellulose in the wood worked as the carbon source for the growth of NbC phase, and the NbC-PyC heterogeneous nano-interface formed between the residual PyC and the freshly formed NbC. Multi-loss mechanisms (e.g. conductive loss, dipole polarization loss, and especially interface polarization loss) were established by controlling the NbC content and residual PyC phase in the NbC-PyC foams, which significantly improved the absorption capability. Compared to 28.0 dB of PyC monolith, the EMI SE of NbC-PyC foam can reach 54.8 dB when the thickness is 0.5 mm, which outperforms the other porous-based shielding materials. Due to the highly porous structure of pristine wood, the resulting NbC-PyC foam exhibited a low density of 0.48 g/cm3, which is ~ 1/16 of dense NbC (7.78 g/cm3). Generally, this work introduces innovative ideas for designing novel and advanced transition metal carbide–carbon composite materials.
KW - Electromagnetic shielding
KW - NbC foam
KW - NbC-PyC heterogeneous nano-interfaces
KW - Wood template
UR - http://www.scopus.com/inward/record.url?scp=85114218088&partnerID=8YFLogxK
U2 - 10.1016/j.jcis.2021.08.110
DO - 10.1016/j.jcis.2021.08.110
M3 - 文章
C2 - 34500157
AN - SCOPUS:85114218088
SN - 0021-9797
VL - 606
SP - 1543
EP - 1553
JO - Journal of Colloid and Interface Science
JF - Journal of Colloid and Interface Science
ER -