TY - JOUR
T1 - Chemically Driven, Water-Soluble Composites of Carbon Nanotubes and Silver Nanoparticles as Stretchable Conductors
AU - Ki, Hangil
AU - Jang, Jaewon
AU - Jo, Yejin
AU - Kim, Dong Yong
AU - Chee, Sang Soo
AU - Oh, Byeong Yun
AU - Song, Changsik
AU - Lee, Sun Sook
AU - Choi, Sungho
AU - Choi, Youngmin
AU - Jeong, Sunho
AU - Ham, Moon Ho
N1 - Publisher Copyright:
© 2015 American Chemical Society.
PY - 2015/7/21
Y1 - 2015/7/21
N2 - In the past decade, hybrid materials for highly stretchable, conductive electrodes have received tremendous attention in the fields of emerging wearable electronic, optoelectronic, and sensing devices. Here, we present a previously unrecognized aqueous route to producing stretchable conductors composed of silver nanoparticles (AgNPs) and single-walled carbon nanotubes (SWNTs) embedded in a polyurethane (PU) matrix, in contrast to ones dispersed in toxic organic solvents reported to date. The intact chemical interaction between one-dimensional SWNTs, for endowing the capability of establishing conductive pathways even in stretching conditions, and AgNPs, for enabling high conductivity of the composites, is achieved in an aqueous medium with an anionic polyelectrolyte, poly(acrylic acid), that undergoes pH-dependent conformational evolution. With this aqueous approach, we demonstrate that AgNP-SWNT-PU composites supported on PDMS substrates have the conductivities of 620 and 120 S cm-1 in unstrained and 90% elongated conditions, respectively, and display repeatable reversibility at a strain of 60%. (Figure Presented).
AB - In the past decade, hybrid materials for highly stretchable, conductive electrodes have received tremendous attention in the fields of emerging wearable electronic, optoelectronic, and sensing devices. Here, we present a previously unrecognized aqueous route to producing stretchable conductors composed of silver nanoparticles (AgNPs) and single-walled carbon nanotubes (SWNTs) embedded in a polyurethane (PU) matrix, in contrast to ones dispersed in toxic organic solvents reported to date. The intact chemical interaction between one-dimensional SWNTs, for endowing the capability of establishing conductive pathways even in stretching conditions, and AgNPs, for enabling high conductivity of the composites, is achieved in an aqueous medium with an anionic polyelectrolyte, poly(acrylic acid), that undergoes pH-dependent conformational evolution. With this aqueous approach, we demonstrate that AgNP-SWNT-PU composites supported on PDMS substrates have the conductivities of 620 and 120 S cm-1 in unstrained and 90% elongated conditions, respectively, and display repeatable reversibility at a strain of 60%. (Figure Presented).
UR - https://www.scopus.com/pages/publications/84937501487
U2 - 10.1021/acsmacrolett.5b00374
DO - 10.1021/acsmacrolett.5b00374
M3 - Article
AN - SCOPUS:84937501487
SN - 2161-1653
VL - 4
SP - 769
EP - 773
JO - ACS Macro Letters
JF - ACS Macro Letters
IS - 7
ER -