TY - JOUR
T1 - Tailoring the geometry of silicon nitride nanofillers to simultaneously strengthen and toughen carbon/carbon composites
AU - Feng, Lei
AU - Guo, Liyuan
AU - Chen, Qiang
AU - Tian, Rui
AU - Zhang, Jiaxu
AU - Song, Qiang
AU - Wei, Peng
AU - Xiao, Caixiang
AU - Fu, Qiangang
N1 - Publisher Copyright:
© 2024
PY - 2024/12/10
Y1 - 2024/12/10
N2 - Incorporating one-dimensional (1D) nanofillers into carbon/carbon composites (C/Cs) can increase their mechanical strength. However, this method is ineffective in improving the fracture toughness of C/Cs because cracks can easily pass over the 1D nanofillers, resulting in a flat fracture surface. Herein, we propose a new technique to significantly improve both the strength and toughness of C/Cs by incorporating 2D ribbon-shaped nanofillers. Silicon nitride nanoribbons (SiNNRs) are assembled into a film-like structure and inserted into each layer of a carbon fiber laminate, which is then densified with a pyrocarbon matrix. Due to the large interfacial contact area between the nanoribbon and matrix, ribbon-shaped SiNNRs can efficiently arrest and deflect cracks in both two and three dimensions, exhibiting a higher reinforcement efficiency than that of slender silicon nitride nanowires (SiNNWs). Mechanical tests show that the percentage increases in fracture toughness, flexural strength, and compressive strength of C/Cs produced by SiNNRs are approximately 9.8, 1.8, and 1.25 times higher than those produced by SiNNWs at the same volume fraction of nanofillers, respectively. This study suggests that 2D ribbon-shaped nanofillers are more effective than 1D fibrous nanofillers in enhancing the strength and toughness of C/Cs.
AB - Incorporating one-dimensional (1D) nanofillers into carbon/carbon composites (C/Cs) can increase their mechanical strength. However, this method is ineffective in improving the fracture toughness of C/Cs because cracks can easily pass over the 1D nanofillers, resulting in a flat fracture surface. Herein, we propose a new technique to significantly improve both the strength and toughness of C/Cs by incorporating 2D ribbon-shaped nanofillers. Silicon nitride nanoribbons (SiNNRs) are assembled into a film-like structure and inserted into each layer of a carbon fiber laminate, which is then densified with a pyrocarbon matrix. Due to the large interfacial contact area between the nanoribbon and matrix, ribbon-shaped SiNNRs can efficiently arrest and deflect cracks in both two and three dimensions, exhibiting a higher reinforcement efficiency than that of slender silicon nitride nanowires (SiNNWs). Mechanical tests show that the percentage increases in fracture toughness, flexural strength, and compressive strength of C/Cs produced by SiNNRs are approximately 9.8, 1.8, and 1.25 times higher than those produced by SiNNWs at the same volume fraction of nanofillers, respectively. This study suggests that 2D ribbon-shaped nanofillers are more effective than 1D fibrous nanofillers in enhancing the strength and toughness of C/Cs.
KW - Carbon/carbon composites
KW - Fracture toughness
KW - Nanoribbons
KW - Nanowires
KW - Strength
UR - http://www.scopus.com/inward/record.url?scp=85192216326&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2024.01.100
DO - 10.1016/j.jmst.2024.01.100
M3 - 文章
AN - SCOPUS:85192216326
SN - 1005-0302
VL - 202
SP - 183
EP - 191
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -