| Literature DB >> 35630186 |
Lishuang Liu1, Ruirong Wang1,2, Hao Guo1, Jinping Liu1, Xin Li1, Yue Qin1, Jun Tang1.
Abstract
In this paper, a carbon nanotube (CNT)/polydimethylsiloxane (PDMS) composite force-sensitive structure with good flexibility is proposed and fabricated, and the measurement of scanning electron microscopy (SEM) and Raman are carried out. The equivalent circuit of force-sensitive test of structure is performed and analyzed under direct current (DC) and alternating current (AC) conditions. Under AC conditions, experimental results further show that the sensitivity and sensitivity factors of force-sensitive structures are 0.15 KPa-1 and 2.17 in the pressure range of 600-1000 KPa compressive stress and 20-50% tensile stress, respectively. These results are increased by 36.4% and 38.2% compared to the results of compressive stress (0.11 KPa-1) and tensile stress (1.57) under DC conditions, respectively. It shows that the carbon nanotube/PDMS composite has higher test accuracy under AC conditions.Entities:
Keywords: carbon nanotube/polydimethylsiloxane (CNT/PDMS); force-sensitive test; high sensitivity
Year: 2022 PMID: 35630186 PMCID: PMC9145778 DOI: 10.3390/mi13050719
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 3.523
Figure 1The equivalent circuit of CNT/PDMS force-sensitivity test (a,b) DC condition (c,d) AC condition.
Figure 2Processing of CNT/PDMS force-sensitive structure.
Figure 3CNT/PDMS (a) physical diagram of force-sensitive structure (b) SEM diagram (c) test results of Raman spectrum.
Figure 4Schematic diagram of sensitivity test of CNT/PDMS force-sensitive structure (a) under DC conditions (b) under AC conditions.
Figure 5The relative resistance change of CNT/PDMS composites under (a) pressure and (b) tensile strain.
Figure 6The relative impedance change of CNT/PDMS composite under (a) pressure and (b) tensile strain.
Figure 7The comparison of relative impedance and resistance change of CNT/PDMS composite under (a) pressure and (b) tensile strain.
The comparison between our flexible sensors test results and other sensor test results.
| Source | Key Material | Mechanical | Transduction | Sensitivity | Range |
|---|---|---|---|---|---|
| H.B.Yao [ | graphene-polyurethane sponge | Pressure | Piezoresistivity | 0.03 KPa−1 | 2–10 KPa |
| A.D. Smith [ | graphene membranes | Pressure | Piezoresistivity | 2.25 × 10−3 KPa−1 | 0–100 KPa |
| S. Chun [ | double-layer graphene | Pressure | Piezoresistivity | 0.034 KPa−1 | 1–8 KPa |
| C. Sungwoo [ | CNT-sheet-film | Pressure | Capacitance | 0.02–0.04% | 20–40 KPa |
| This work | CNT/PDMS | Pressure | Impedance | 0.11 KPa−1 | 600–1000 KPa |
Figure 8The sensitive characteristic test of force-sensitive structure (a) the schematic test diagram (b) and (c) the result of frequency variation under different tensile strains.