CUSTOMIZED POLYMER/GLASS DIFFRACTIVE WAVEGUIDE STACKS FOR AUGMENTED REALITY/MIXED REALITY APPLICATIONS
A diffractive waveguide stack includes first, second, and third diffractive waveguides for guiding light in first, second, and third visible wavelength ranges, respectively. The first diffractive waveguide includes a first material having first refractive index at a selected wavelength and a first target refractive index at a midpoint of the first visible wavelength range. The second diffractive waveguide includes a second material having a second refractive index at the selected wavelength and a second target refractive index at a midpoint of the second visible wavelength range. The third diffractive waveguide includes a third material having a third refractive index at the selected wavelength and a third target refractive index at a midpoint of the third visible wavelength range. A difference between any two of the first target refractive index, the second target refractive index, and the third target refractive index is less than 0.005 at the selected wavelength.
1 .- 20 . (canceled)
21 . A method of fabricating diffractive waveguides for a waveguide stack, the method comprising:
combining a first polymer resin and a second polymer resin in a first ratio to yield a first polymerizable material;
forming a first diffractive waveguide by casting the first polymerizable material in a first diffractive waveguide mold then polymerizing the first polymerizable material, wherein the first diffractive waveguide is configured to guide light in a first visible wavelength range;
combining the first polymer resin and the second polymer resin in a second ratio to yield a second polymerizable material;
forming a second diffractive waveguide by casting the second polymerizable material in a second diffractive waveguide mold then polymerizing the second polymerizable material, wherein the second diffractive waveguide is configured to guide light in a second visible wavelength range; and
forming a third diffractive waveguide by casting the first polymer resin in a third diffractive waveguide mold then polymerizing the first polymer resin, wherein the third diffractive waveguide is configured to guide light in a third visible wavelength range,
wherein:
a wavelength in the first visible wavelength range exceeds a wavelength in the second visible wavelength range, and a wavelength in the second visible wavelength range exceeds a wavelength in the third visible wavelength range, and
a first refractive index of the first diffractive waveguide exceeds a second diffractive index of the second diffractive waveguide, and a second refractive index of the second diffractive waveguide exceeds a third refractive index of the third diffractive waveguide at a selected wavelength.
22 . The method of claim 21 , wherein the selected wavelength is 589 nm.
23 . The method of claim 21 , wherein forming the first diffractive waveguide by casting the first polymerizable material in the first diffractive waveguide mold then polymerizing the first polymerizable material comprises:
providing the first polymerizable material to a first casting head, and polymerizing the first polymerizable material to yield a polycarbonate.
24 . The method of claim 21 , wherein forming the second diffractive waveguide by casting the second polymerizable material in the second diffractive waveguide mold then polymerizing the second polymerizable material comprises:
providing the second polymerizable material to a second casting head, and polymerizing the second polymerizable material to yield a polycarbonate.
25 . The method of claim 21 , wherein forming the third diffractive waveguide by casting the first polymer resin in the third diffractive waveguide mold then polymerizing the first polymer resin comprises:
providing the first polymer resin to a third casting head.
26 . The method of claim 21 , wherein combining a first polymer resin and a second polymer resin in a first ratio to yield a first polymerizable material comprises combining the first polymer resin and the second polymer resin in a 1:1 ratio.
27 . The method of claim 21 , wherein combining the first polymer resin and the second polymer resin in a second ratio to yield a second polymerizable material comprises combining the first polymer resin and the second polymer resin in a 1:0.8 ratio.
28 . The method of claim 21 , wherein the first ratio and the second ratio are different.
29 . The method of claim 21 , wherein polymerizing the first polymerizable material or the second polymerizable material yields a thiol-ene.
30 . The method of claim 21 , further comprising:
superimposing the first diffractive waveguide, the second diffractive waveguide, and the third diffractive waveguide to yield a waveguide stack.
31 . The method of claim 21 , wherein the first polymer resin comprises a monomer and the second polymer resin comprises a monomer.
32 . The method of claim 21 , wherein the first diffractive waveguide has a first yellowness index at the selected wavelength, the second diffractive waveguide has a second yellowness index at the selected wavelength and the third diffractive waveguide has a third yellowness index at the selected wavelength.
33 . The method of claim 32 , wherein first yellowness index exceeds the second yellowness index at the selected wavelength, and the second yellowness index exceeds the third yellowness index at the selected wavelength.
34 . A waveguide stack fabricated by the method of claim 30 .