| Literature DB >> 28788227 |
Hyun-U Ko1, Seongcheol Mun2, Seung-Ki Min2, Gi-Woo Kim3, Jaehwan Kim4.
Abstract
This paper reports a hybrid nanocomposite of well-aligned zinc oxide (ZnO) nanorods on cellulose and its strain sensing behavior. ZnO nanorods are chemically grown on a cellulose film by using a hydrothermal process, termed as cellulose ZnO hybrid nanocomposite (CEZOHN). CEZOHN is made by seeding and growing of ZnO on the cellulose and its structural properties are investigated. The well-aligned ZnO nanorods in conjunction with the cellulose film shows enhancement of its electromechanical property. Strain sensing behaviors of the nanocomposite are tested in bending and longitudinal stretching modes and the CEZOHN strain sensors exhibit linear responses.Entities:
Keywords: cellulose; nanocomposite; piezoelectric; strain sensor; zinc oxide
Year: 2014 PMID: 28788227 PMCID: PMC5456018 DOI: 10.3390/ma7107000
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Schematic of CEZOHN (cellulose ZnO hybrid nanocomposite) fabrication process: seeding and growing of ZnO.
Figure 2Experimental setup of strain sensor for (a) bending mode and (b) stretching mode.
Figure 3SEM images of CEZOHN without seeding at (a) surface and (b) cross section.
Figure 4SEM images of CEZOHN with seeding and growing processes: (a) seed layer; (b) surface; (c) EDX and (d) cross section.
Figure 5(a) XRD result and (b) FTIR result of CEZOHN and cellulose.
Figure 6Stress-strain and charge curves of CEZOHN.
Comparison of Young’s modulus and piezoelectric charge constant of cellulose and CEZOHN.
| Samples | Young’s modulus (GPa) | Piezoelectric charge constant |
|---|---|---|
| Bare cellulose | 5.3 | 6 |
| Aligned cellulose | 7.0 | 30 |
| CEZOHN | 5.0 | 145 |
Figure 7Bending mode strain sensor: (a) bending displacement and (b) sensor signal.
Figure 8Stretching mode strain sensor: (a) stretching strain and (b) sensor signal.