1. A single-mode waveguide comprising:
an optical core configured to couple an optical signal between an inversely tapered waveguide and an optical fiber, wherein the core extends longitudinally along an axis of optical signal propagation between the inversely tapered waveguide and the optical fiber; and
an air cladding disposed adjacent to the core along the axis of optical signal propagation.
2. The waveguide of claim 1, wherein the core further comprises:
a slab; and
a ridge disposed on the slab,
wherein the slab and the ridge extend longitudinally along the axis of optical signal propagation, and
wherein the slab and the ridge comprise a silicon dioxide (SiO2) material.
3. The waveguide of claim 2, wherein the ridge comprises a height of about 2 micrometers (\u03bcm) to about 15 \u03bcm.
4. The waveguide of claim 2, wherein the ridge comprises a width of about 2 micrometers (\u03bcm) to about 15 \u03bcm.
5. The waveguide of claim 2, wherein the slab comprises a height of about 0.5 micrometers (\u03bcm) to about 10 \u03bcm.
6. The waveguide of claim 2, wherein the slab comprises:
a base portion; and
a step-up portion positioned adjacent to the base portion,
wherein the base portion and the step-up portion extend along the axis of optical signal propagation,
wherein the base portion comprises a first height, and
wherein the step-up portion comprises a second height that is greater than the first height.
7. The waveguide of claim 6, wherein the ridge is disposed at about a middle portion of the base portion, wherein the ridge comprises a third height that is about equal to the second height of the step-up portion, wherein the base portion comprises a width that is greater than a width of the ridge such that a portion of the air cladding is disposed between the ridge and the step-up portion, and wherein the portion of the air cladding comprises a width that is greater than 1 micrometer (\u03bcm).
8. The waveguide of claim 7, wherein a ratio between the third height of the ridge and the first height of the base portion of the slab is about 1.5 to about 5.
9. The waveguide of claim 6, wherein the slab comprises undercut air holes positioned in the step-up portion along the axis of optical signal propagation, and wherein the undercut air holes extend vertically through the step-up portion of the slab.
10. The waveguide of claim 6, wherein the slab comprises undercut air holes positioned in the base portion along the axis of optical signal propagation.
11. The waveguide of claim 1, wherein the inversely tapered waveguide extends longitudinally along the axis of optical signal propagation within at least a portion of the core, and wherein the inversely tapered waveguide comprises a silicon (Si) material.
12. A method comprising:
introducing an optical signal into an inversely tapered silicon (Si) waveguide;
passing the optical signal from the inversely tapered Si waveguide to a single-mode waveguide comprising a core and an air cladding surrounding the core; and
forwarding the optical signal from the single-mode waveguide towards an optical fiber,
wherein the single-mode waveguide comprises a larger optical mode than the inversely tapered Si waveguide, and
wherein the optical mode of the single-mode waveguide is compatible with an optical mode of the optical fiber.
13. The method of claim 12, wherein the core comprises a silicon dioxide (SiO2) material and a ridge disposed on a slab, wherein the ridge and the slab extend in a direction along an optical path of the optical signal, wherein the optical signal propagates along the ridge, and wherein the ridge is surrounded by the air cladding.
14. The method of claim 13, wherein the slab comprises a base portion positioned between two step-up portions, wherein the ridge is disposed at about a center location of the base portion of the slab, wherein each step-up portion is positioned at a distance away from an edge of the ridge such that the optical signal is not coupled to the step-up portions, and wherein the slab further comprises air holes in the step-up portions, the base portion, or combinations thereof.
15. An optical device, comprising:
a substrate;
a single-mode waveguide disposed on the substrate, wherein the single-mode waveguide comprises a core and an air cladding surrounding the core, wherein the single-mode waveguide comprises a first end and a second end opposite to the first end along an axis of optical signal propagation, and wherein the first end is configured to couple to a single-mode fiber (SMF); and
an inversely tapered waveguide disposed within a portion of the core of the single-mode waveguide, wherein the inversely tapered waveguide extends from the second end toward the first end with decreasing widths, and wherein the inversely tapered waveguide is aligned with the single-mode waveguide along the axis of optical signal propagation to provide an optical path between the inversely tapered waveguide and the optical fiber.
16. The optical device of claim 15, wherein the core comprises a slab and a ridge disposed on the slab, wherein the slab comprises a base portion and a step-up portion adjacent to the base portion, wherein the ridge is disposed at about a middle portion of the base portion, and wherein the ridge and the step-up portion are separated by the air cladding.
17. The optical device of claim 16, wherein the slab comprises a plurality of air cavities in the step-up portion along the axis of optical signal propagation, the base portion along the axis of optical signal propagation, or combinations thereof.
18. The optical device of claim 15, wherein at least a portion of the substrate adjacent to the single-mode waveguide is etched away to suspend the single-mode waveguide in air.
19. The optical device of claim 15, wherein the substrate comprises a silicon (Si) material, wherein the single-mode waveguide comprises a silicon dioxide (SiO2) material, and wherein the inversely tapered waveguide comprises a silicon (Si) material.
20. The optical device of claim 15, wherein the core comprises a larger optical mode size than the inversely tapered waveguide, and wherein the optical mode size of the core is compatible with an optical mode size of the SMF.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
What is claimed is:
1. A pleated filter made of a multi-layer filter medium, comprising:
at least one filter paper layer having area weights of 30 to 100 gm2;
at least one microfiber nonwoven fabric layer having area weights of 5 to 120 gm2;
at least one support nonwoven fabric layer of synthetic, polymeric fibers having area weights of 10 to 120 gm2;
at least one fused polymer area contained within the fabric layers, the fused polymer area bonding the fabric layers to the paper layer, and making the fabric layers firmer within themselves; and
when subject to a dust removal test at an initial pressure difference of at most 180 Pa, at a boundary speed of approximately 2.62 ms and a flow speed through the filter medium of approximately 0.13 ms, the pleated filter is able to separate at least 90% of particles greater than 0.3 m, at least 92% of particles greater than 0.5 m, at least 93% of particles greater than 1 m, and at least 97% of particles greater than 3 m, as measured using the standard method DIN EN 60312 (IEC 60312) 5.125.
2. The pleated filter according to claim 1, wherein the filter paper layer has area weights of 30 to 70 gm2, the microfiber nonwoven fabric has area weights of 20 to 80 gm2, and the support nonwoven fabric has area weights of 10 to 60 gm2, and when subject to a dust removal test at an initial pressure difference of at most 180 Pa, at a boundary speed of approximately 2.62 ms and a flow speed through the filter medium of approximately 0.13 ms, the pleated filter is able to separate at least 95% of particles greater than 0.3 m, at least 97% of particles greater than 0.5 m, at least 98% of particles greater than 1 m, and at least 99% of particles greater than 3 m, as measured using the standard method DIN EN 60312 (IEC 60312) 5.125.
3. The filter according to claim 1, wherein the microfiber nonwoven fabric layer is one that is produced by a melt-blown, jet-spin or electrostatic spinning method.
4. The filter according to claim 1, wherein the support nonwoven fabric layer is made of polypropylene, polyester, polyacrylonitrile andor polyamide fibers or filaments, which are bonded in the form of a wet laid nonwoven, spunbonded nonwoven or dry laid nonwoven, using thermal andor chemical bonding.
5. The filter according to claim 1, wherein an additional prefilter layer made of a microfiber nonwoven fabric is provided.
6. The filter according to claim 1, wherein the individual layers have different porosities.
7. The filter according to claim 1, wherein the microfiber nonwoven fabric layer has a higher porosity than the paper filter layer.
8. The filter according to claim 1, wherein the microfiber nonwoven fabric layer is charged electrostatically.
9. The filter according to claim 1, wherein the pleated filter is framed by injection molding material, nonwoven fabric andor cardboard, and is used for upstream or downstream filtration by vacuum cleaners, room air purifiers andor room air-conditioners.