| Literature DB >> 29022690 |
Shinsuke Ishihara, Curtis J O'Kelly, Takeshi Tanaka1, Hiromichi Kataura1, Jan Labuta, Yoshitaka Shingaya, Tomonobu Nakayama, Takeo Ohsawa, Takashi Nakanishi, Timothy M Swager2.
Abstract
As-synthesized single-walled carbon nanotubes (SWCNTs) are a mixture of metallic and semiconducting tubes, and separation is essential to improve the performances of SWCNT-based electric devices. Our chemical sensor monitors the conductivity of an SWCNT network, wherein each tube is wrapped by an insulating metallosupramolecular polymer (MSP). Vapors of strong electrophiles such as diethyl chlorophosphate (DECP), a nerve agent simulant, can trigger the disassembly of MSPs, resulting in conductive SWCNT pathways. Herein, we report that separated SWCNTs have a large impact on the sensitivity and selectivity of chemical sensors. Semiconducting SWCNT (S-SWCNT) sensors are the most sensitive to DECP (up to 10000% increase in conductivity). By contrast, the responses of metallic SWCNT (M-SWCNT) sensors were smaller but less susceptible to interfering signals. For saturated water vapor, increasing and decreasing conductivities were observed for S- and M-SWCNT sensors, respectively. Mixtures of M- and S-SWCNTs revealed reduced responses to saturated water vapor as a result of canceling effects. Our results reveal that S- and M-SWCNTs compensate sensitivity and selectivity, and the combined use of separated SWCNTs, either in arrays or in single sensors, offers advantages in sensing systems.Entities:
Keywords: carbon nanotubes; chemical warfare agents; chemiresistors; gas sensors; metal ligand complexes; semiconductors; supramolecular polymers
Year: 2017 PMID: 29022690 DOI: 10.1021/acsami.7b12992
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229