| Literature DB >> 24121656 |
Yuan Li, Ning Hu, Liangke Wu, Weifeng Yuan, Xianghe Peng, Bin Gu, Christiana Chang, Yaolu Liu, Huiming Ning, Jinhua Li, Satoshi Atobe, Hisao Fukunaga.
Abstract
A temperature sensor was fabricated from a polymer nanocomposite with multi-walled carbon nanotube (MWCNT) as nanofiller (i.e., MWCNT/epoxy). The electrical resistance and temperature coefficient of resistance (TCR) of the temperature sensor were characterized experimentally. The effects of temperature (within the range 333-373 K) and MWCNT content (within the range 1-5 wt%) were investigated thoroughly. It was found that the resistance increases with increasing temperature and decreasing MWCNT content. However, the resistance change ratio related to the TCR increases with increasing temperature and MWCNT content. The highest value of TCR (0.021 K(-1)), which was observed in the case of 5 wt% MWCNT, is much higher than those of traditional metals and MWCNT-based temperature sensors. Moreover, the corresponding numerical simulation-conducted to explain the above temperature-dependent piezoresistivity of the nanocomposite temperature sensor-indicated the key role of a temperature-dependent tunneling effect.Entities:
Year: 2013 PMID: 24121656 DOI: 10.1088/0957-4484/24/45/455501
Source DB: PubMed Journal: Nanotechnology ISSN: 0957-4484 Impact factor: 3.874