TY - JOUR
T1 - High Strength Conductive Composites with Plasmonic Nanoparticles Aligned on Aramid Nanofibers
AU - Lyu, Jing
AU - Wang, Xinzhi
AU - Liu, Lehao
AU - Kim, Yoonseob
AU - Tanyi, Ekembu K.
AU - Chi, Hang
AU - Feng, Wenchun
AU - Xu, Lizhi
AU - Li, Tiehu
AU - Noginov, Mikhail A.
AU - Uher, Ctirad
AU - Hammig, Mark D.
AU - Kotov, Nicholas A.
N1 - Publisher Copyright:
© 2016 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2016/12/13
Y1 - 2016/12/13
N2 - Rapidly evolving fields of biomedical, energy, and (opto)electronic devices bring forward the need for deformable conductors with constantly rising benchmarks for mechanical properties and electronic conductivity. The search for conductors with improved strength and strain have inspired the multiple studies of nanocomposites and amorphous metals. However, finding conductors that defy the boundaries of classical materials and exhibit simultaneously high strength, toughness, and fast charge transport while enabling their scalable production, remains a difficult materials engineering challenge. Here, composites made from aramid nanofibers (ANFs) and gold nanoparticles (Au NPs) that offer a new toolset for engineering high strength flexible conductors are described. ANFs are derived from Kevlar macrofibers and retain their strong mechanical properties and temperature resilience. Au NPs are infiltrated into a porous, free-standing aramid matrix, becoming aligned on ANFs, which reduces the charge percolation threshold and facilitates charge transport. Further thermal annealing at 300 °C results in the Au-ANF composites with an electrical conductivity of 1.25 × 104 S cm−1 combined with a tensile strength of 96 MPa, a Young's modulus of 5.29 GPa, and a toughness of 1.3 MJ m−3. These parameters exceed those of most of the composite materials, and are comparable to those of amorphous metals but have no volume limitations. The plasmonic optical frequencies characteristic for constituent NPs are present in the composites with ANFs enabling plasmon-based optoelectronic applications.
AB - Rapidly evolving fields of biomedical, energy, and (opto)electronic devices bring forward the need for deformable conductors with constantly rising benchmarks for mechanical properties and electronic conductivity. The search for conductors with improved strength and strain have inspired the multiple studies of nanocomposites and amorphous metals. However, finding conductors that defy the boundaries of classical materials and exhibit simultaneously high strength, toughness, and fast charge transport while enabling their scalable production, remains a difficult materials engineering challenge. Here, composites made from aramid nanofibers (ANFs) and gold nanoparticles (Au NPs) that offer a new toolset for engineering high strength flexible conductors are described. ANFs are derived from Kevlar macrofibers and retain their strong mechanical properties and temperature resilience. Au NPs are infiltrated into a porous, free-standing aramid matrix, becoming aligned on ANFs, which reduces the charge percolation threshold and facilitates charge transport. Further thermal annealing at 300 °C results in the Au-ANF composites with an electrical conductivity of 1.25 × 104 S cm−1 combined with a tensile strength of 96 MPa, a Young's modulus of 5.29 GPa, and a toughness of 1.3 MJ m−3. These parameters exceed those of most of the composite materials, and are comparable to those of amorphous metals but have no volume limitations. The plasmonic optical frequencies characteristic for constituent NPs are present in the composites with ANFs enabling plasmon-based optoelectronic applications.
KW - Kevlar
KW - aramid nanofibers
KW - electrical conductivity
KW - gold nanoparticles
KW - high strength composites
KW - nanocomposites
KW - plasmonic composites
UR - http://www.scopus.com/inward/record.url?scp=84991823766&partnerID=8YFLogxK
U2 - 10.1002/adfm.201603230
DO - 10.1002/adfm.201603230
M3 - 文章
AN - SCOPUS:84991823766
SN - 1616-301X
VL - 26
SP - 8435
EP - 8445
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 46
ER -