Net shape ceramic microtruss and ceramic microtruss with metal shell
A ceramic micro-truss structure. In one embodiment green state polymer micro-truss structure is formed by exposing a photomonomer resin through a mask to collimated light from three or more directions. The green state polymer micro-truss structure is shaped and post-cured to form a cured polymer micro-truss structure. The cured polymer micro-truss structure is pyrolyzed to form a ceramic micro-truss structure, which may subsequently be coated with metal.
1. A micro-truss structure, comprising:
a plurality of first truss members extending along a first direction; and
a plurality of second truss members extending along a second direction,
wherein the first and second truss members interpenetrate each other at a plurality of nodes to form a continuous material;
wherein each of the truss members comprises as a major component a ceramic comprising, as a major component, a combination of at least two elements selected from the group consisting of silicon, carbon, nitrogen, oxygen, boron, and aluminum;
wherein the ceramic further comprises sulfur at a concentration of between 0.01 atomic percent (at. %) and 20 at. %; and
wherein each of the truss members comprises an exterior metal coating with a thickness of at least 100 nanometers (nm).
2. The micro-truss structure of claim 1 , wherein each of the truss members further comprises an additive selected from the group consisting of: yttrium, compounds of yttrium, zirconium, compounds of zirconium, aluminum, compounds of aluminum, titanium, compounds of titanium, high-temperature alloys, ceramics, boron, diamond, silicides, and combinations thereof.
3. The micro-truss structure of claim 1 , wherein a cross section of a truss member of the plurality of first truss members and the plurality of second truss members has a cross-sectional shape selected from the group consisting of a circle, a polygon, and an elongated shape with a minor dimension of less than 4 mm.
4. The micro-truss structure of claim 1 , wherein a truss member of the plurality of first truss members and the plurality of second truss members has a circular cross section with a diameter between 0.01 mm and 3 mm.
5. The micro-truss structure of claim 1 , wherein the ceramic comprises, as a major component, a substance selected from the group consisting of silicon, carbon, oxygen, and combinations thereof.
6. The micro-truss structure of claim 1 , wherein a truss member of the plurality of first truss members and the plurality of second truss members has a diameter greater, by at least 30%, than another truss member of the plurality of first truss members and the plurality of second truss members.
7. The micro-truss structure of claim 1 , further comprising a plurality of third truss members extending along a third direction,
wherein the first, second, and third truss members interpenetrate each other at a plurality of nodes to form a continuous material.
8. A micro-truss structure, comprising:
a plurality of first truss members extending along a first direction; and
a plurality of second truss members extending along a second direction,
wherein the first and second truss members interpenetrate each other at a plurality of nodes to form a continuous material;
wherein each of the truss members comprises as a major component a ceramic comprising, as a major component, a combination of at least two elements selected from the group consisting of silicon, carbon, nitrogen, oxygen, boron, and aluminum; and
wherein the structure has an envelope in the shape of a curved sheet, a radius of curvature at a point on the envelope being more than 3 times the thickness of the sheet and less than 100 times the thickness of the sheet,
wherein the ceramic further comprises sulfur at a concentration of between 0.01 atomic percent (at. %) and 20 at. %.
9. The micro-truss structure of claim 8 , wherein a portion of the envelope is conical or tubular.
10. The micro-truss structure of claim 8 , further comprising a plurality of third truss members extending along a third direction,
wherein the first, second, and third truss members interpenetrate each other at a plurality of nodes to form a continuous material.