Patent
US 10,995,001silver
Ag
chromium
Cr
gold
Au
platinum
Pt
indium tin oxide
PEDOT:PSS
polyethylene naphthalate
polyethylene terephthalate
Kapton
polydimethylsiloxane
polyurethane
Figure 6 shows the electrical behaviour of an apparatus comprising a percolation network and a heat shield in response to light exposure; Figure 7a shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure after 100 bending cycles; 15 Figure 7b …
Figure 9 shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure and repeated bending in combination; Figure 10a shows the thickness dimension of a percolation network;
Figure 9 shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure and repeated bending in combination; Figure 10a shows the thickness dimension of a percolation network;
Figure 11 shows the electrical behaviour of an apparatus comprising a percolation network in response to varying humidity; Figure 12a shows the use of an apparatus comprising a plurality of percolation networks of different predetermined thicknesses to detect light; Figure 12b shows the use of an …
percolation network thickness for light or strain sensing | ≥ 500 | reduced graphene oxide flakes |
Thickness | ≥ 500 nm | — |
Thickness | 1–250 nm | — |
Thickness | 100–200 nm | — |
Thickness | 500–1000 nm | — |
Thickness | 500–2000 nm | — |
Thickness | 0.3–5 mm | — |
silver
Ag
chromium
Cr
gold
Au
platinum
Pt
indium tin oxide
PEDOT:PSS
polyethylene naphthalate
polyethylene terephthalate
Kapton
polydimethylsiloxane
polyurethane
Figure 6 shows the electrical behaviour of an apparatus comprising a percolation network and a heat shield in response to light exposure; Figure 7a shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure after 100 bending cycles; 15 Figure 7b …
Figure 9 shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure and repeated bending in combination; Figure 10a shows the thickness dimension of a percolation network;
Figure 9 shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure and repeated bending in combination; Figure 10a shows the thickness dimension of a percolation network;
Figure 11 shows the electrical behaviour of an apparatus comprising a percolation network in response to varying humidity; Figure 12a shows the use of an apparatus comprising a plurality of percolation networks of different predetermined thicknesses to detect light; Figure 12b shows the use of an …
percolation network thickness for light or strain sensing | ≥ 500 | reduced graphene oxide flakes |
Thickness | ≥ 500 nm | — |
Thickness | 1–250 nm | — |
Thickness | 100–200 nm | — |
Thickness | 500–1000 nm | — |
Thickness | 500–2000 nm | — |
Thickness | 0.3–5 mm | — |
silver
Ag
chromium
Cr
gold
Au
platinum
Pt
indium tin oxide
PEDOT:PSS
polyethylene naphthalate
polyethylene terephthalate
Kapton
polydimethylsiloxane
polyurethane
Figure 6 shows the electrical behaviour of an apparatus comprising a percolation network and a heat shield in response to light exposure; Figure 7a shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure after 100 bending cycles; 15 Figure 7b …
Figure 9 shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure and repeated bending in combination; Figure 10a shows the thickness dimension of a percolation network;
Figure 9 shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure and repeated bending in combination; Figure 10a shows the thickness dimension of a percolation network;
Figure 11 shows the electrical behaviour of an apparatus comprising a percolation network in response to varying humidity; Figure 12a shows the use of an apparatus comprising a plurality of percolation networks of different predetermined thicknesses to detect light; Figure 12b shows the use of an …
percolation network thickness for light or strain sensing | ≥ 500 | reduced graphene oxide flakes |
Thickness | ≥ 500 nm | — |
Thickness | 1–250 nm | — |
Thickness | 100–200 nm | — |
Thickness | 500–1000 nm | — |
Thickness | 500–2000 nm | — |
Thickness | 0.3–5 mm | — |
silver
Ag
chromium
Cr
gold
Au
platinum
Pt
indium tin oxide
PEDOT:PSS
polyethylene naphthalate
polyethylene terephthalate
Kapton
polydimethylsiloxane
polyurethane
Figure 6 shows the electrical behaviour of an apparatus comprising a percolation network and a heat shield in response to light exposure; Figure 7a shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure after 100 bending cycles; 15 Figure 7b …
Figure 9 shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure and repeated bending in combination; Figure 10a shows the thickness dimension of a percolation network;
Figure 9 shows the electrical behaviour of an apparatus comprising a percolation network in response to light exposure and repeated bending in combination; Figure 10a shows the thickness dimension of a percolation network;
Figure 11 shows the electrical behaviour of an apparatus comprising a percolation network in response to varying humidity; Figure 12a shows the use of an apparatus comprising a plurality of percolation networks of different predetermined thicknesses to detect light; Figure 12b shows the use of an …
percolation network thickness for light or strain sensing | ≥ 500 | reduced graphene oxide flakes |
Thickness | ≥ 500 nm | — |
Thickness | 1–250 nm | — |
Thickness | 100–200 nm | — |
Thickness | 500–1000 nm | — |
Thickness | 500–2000 nm | — |
Thickness | 0.3–5 mm | — |