| Literature DB >> 30255013 |
Lingfeng Jin1,2,3, Weigen Chen1,2, Ying Zhang3.
Abstract
Graphene and its hybrid materials, due to their unique structures and properties, have attracted enormous attention for both fundamental and applied research in the gas senEntities:
Keywords: fault characteristic gas; gas sensor; graphene; oil-immersed equipment; sensing mechanism
Year: 2018 PMID: 30255013 PMCID: PMC6141624 DOI: 10.3389/fchem.2018.00399
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Figure 1Schematic illustration of (A) gas sensing experimental platform, (B) structure of planar sensor element, and (C) sensing mechanism between SnO2/rGO hybrid materials and methane.
Summary of recent researches on graphene hybrid materials sensor for sensing of fault characteristic gases in oil-immersed equipment.
| H2 | Pd/G | RT | 1,000 | 1,000 | Δ | 26% | 40/490 | Alfano et al., |
| Pt/G | 320 | 1,000–20,000 | 10,000 | Δ | 1.6% | ~1/0.72 | Harley-Trochimczyk et al., | |
| Pd/Ag/G | 105 | 100-5,000 | 500 | Δ | 9.96% | 102/– | Sharma and Kim, | |
| MoO3/G | RT | 0.5–1,000 | 1,000 | 20.5 | ~10/30 | Yang et al., | ||
| CuO/rGO/CuO | RT | 50–1,500 | 100 | Δ | 4.2% | <80/60 | Zhang et al., | |
| Pd/WO3/G | RT | 1,000–5,0000 | 1,000 | Δ | 12 μA | ~17/– | Chen et al., | |
| CO | rGO | RT | 10–30 | 30 | Δ | ~71% | <30/– | Panda et al., |
| NiO/G | 100 | 5–100 | 100 | Δ | ~120% | 20/152 | Khaleed et al., | |
| CuO/rGO | RT | 0.25–1,000 | 1 | Δ | 2.56% | 70/160 | Zhang et al., | |
| ZnO/rGO | 200 | 1–1,000 | 1,000 | Δ | 85.2% | 9/10 | Ha et al., | |
| GdInO3/rGO | 90 | 20–100 | 20 | Δ | 48% | 14/15 | Balamurugan et al., | |
| Pd/SnO2/rGO | RT | 50–1,600 | 1,500 | Δ | 4% | 70/80 | Shojaee et al., | |
| CO2 | rGO | RT | 100–1,000 | 1000 | Δ | 1.65% | – | Nemade and Waghuley, |
| rGO | RT | 0–1,500 | 1,500 | Δ | 71% | ~4 min | Nemade and Waghuley, | |
| Sb2O3/G | RT | 0–50 | 50 | Δ | ~22% | 16/22 | Wu et al., | |
| Al2O3/G | 125 | 0–200 | 100 | Δ | ~8.1% | 14/22 | Hafiz et al., | |
| Y2O3/G | RT | 0–35 | 35 | Δ | 1.08% | – | Nemade and Waghuley, | |
| CH4 | PANI/rG | RT | 10–3,200 | 100 | ~3 | 85/45 | Wu et al., | |
| NiO/rGO | 260 | 100–6,000 | 100 | Δ | ~2.2% | 6/16 | Zhang et al., | |
| ZnO/rGO | 190 | 100–4,000 | 1000 | Δ | ~12% | ~200 | Zhang et al., | |
| SnO2/rGO | 150 | 1,000–10,000 | 1000 | Δ | 47.6% | 61/330 | Navazani et al., | |
| Pd/SnO2/rGO | RT | 800–16,000 | 14,000 | Δ | 9.8% | 5/7 min | Nasresfahani et al., | |
| C2H2 | SnO2/rGO | 180 | 0.5–500 | 50 | 12.4 | 54/23 | Jin et al., | |
| Ag/ZnO/rGO | 150 | 1–1,000 | 100 | 21.2 | 25/80 | Uddin et al., | ||
| Ag/SnO2/rGO | 90 | 5–500 | 50 | Δ | 15.44 | 235/160 | Jiang et al., |
G, graphene; rGO, reduced graphene oxide; PANI, polyaniline; RT, room temperature; ΔI, which is calculated as the current change of gas sensitive response; ΔG = |G.