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Composite Yarns of Multiwalled Carbon Nanotubes with Metallic Electrical Conductivity
Author(s) -
Randeniya Lakshman K.,
Bendavid Avi,
Martin Philip J.,
Tran CanhDung
Publication year - 2010
Publication title -
small
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.785
H-Index - 236
eISSN - 1613-6829
pISSN - 1613-6810
DOI - 10.1002/smll.201000493
Subject(s) - materials science , carbon nanotube , composite number , composite material , electrical conductor , nanoparticle , electrical resistivity and conductivity , nanotechnology , metal , metallurgy , engineering , electrical engineering
Unique macrostructures known as spun carbon‐nanotube fibers (CNT yarns) can be manufactured from vertically aligned forests of multiwalled carbon nanotubes (MWCNTs). These yarns behave as semiconductors with room‐temperature conductivities of about 5 × 10 2 S cm −1 . Their potential use as, for example, microelectrodes in medical implants, wires in microelectronics, or lightweight conductors in the aviation industry has hitherto been hampered by their insufficient electrical conductivity. In this Full Paper, the synthesis of metal–CNT composite yarns, which combine the unique properties of CNT yarns and nanocrystalline metals to obtain a new class of materials with enhanced electrical conductivity, is presented. The synthesis is achieved using a new technique, self‐fuelled electrodeposition (SFED), which combines a metal reducing agent and an external circuit for transfer of electrons to the CNT surface, where the deposition of metal nanoparticles takes place. In particular, the Cu–CNT and Au–CNT composite yarns prepared by this method have metal‐like electrical conductivities (2–3 × 10 5 S cm −1 ) and are mechanically robust against stringent tape tests. However, the tensile strengths of the composite yarns are 30–50% smaller than that of the unmodified CNT yarn. The SFED technique described here can also be used as a convenient means for the deposition of metal nanoparticles on solid electrode supports, such as conducting glass or carbon black, for catalytic applications.