COMBINATION DYNAMIC AND SWITCHABLE WINDOW GLASS UNITS
20180328102 ยท 2018-11-15
Assignee
Inventors
Cpc classification
B32B2255/28
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10743
PERFORMING OPERATIONS; TRANSPORTING
B32B2250/44
PERFORMING OPERATIONS; TRANSPORTING
E06B9/24
FIXED CONSTRUCTIONS
B32B27/06
PERFORMING OPERATIONS; TRANSPORTING
E06B3/6715
FIXED CONSTRUCTIONS
B32B17/10055
PERFORMING OPERATIONS; TRANSPORTING
G02F1/13439
PHYSICS
B32B2367/00
PERFORMING OPERATIONS; TRANSPORTING
B32B3/08
PERFORMING OPERATIONS; TRANSPORTING
B32B2270/00
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
G02F2201/44
PHYSICS
G02F1/13
PHYSICS
B32B17/10119
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10211
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10005
PERFORMING OPERATIONS; TRANSPORTING
E06B2009/2464
FIXED CONSTRUCTIONS
B32B27/308
PERFORMING OPERATIONS; TRANSPORTING
G02F1/1334
PHYSICS
B32B2367/00
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10005
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10788
PERFORMING OPERATIONS; TRANSPORTING
International classification
E06B3/67
FIXED CONSTRUCTIONS
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
E06B9/24
FIXED CONSTRUCTIONS
Abstract
An improved insulated glass unit is disclosed having an outboard pane with one or more than one dynamic layer, which may be a thermochromic layer, and an inboard pane with one or more than one switchable layer, which may be a liquid crystal containing layer. Between the panes is a gas space that is sealed around the perimeter of the unit. Preferably, at least one low-e coating is placed in contact with the sealed gas space. The simplicity of manufacture of the window unit and durability of the switchable component is dramatically increased by this invention.
Claims
1. An insulated glass unit for a window comprising in the following order: a first glass substrate; a thermochromic layer; a second glass substrate; an optional low-e coating; a gas space; an optional low-e coating; a third glass substrate; a first adhesive layer; a first plastic substrate; a first transparent conductive layer; an optional dielectric layer; a liquid crystal comprising layer; an optional dielectric layer; a second transparent conductive layer; a second plastic substrate; a second adhesive layer; and a fourth glass substrate wherein the first and second glass substrates are independently selected from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the third and fourth glass substrates are independently selected from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the gas space comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof; wherein the one or more optional low-e coatings comprise a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys; wherein the first and second adhesive layers are independently selected from polyvinylbutyral, thermoplastic polyurethane, ethylene vinyl acetate, ionomers and ionomers comprising metal ions, an acrylic containing layer and a silicone containing layer; wherein the first and second plastic substrates are independently selected from layers of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic and cyclic olefin polymers or copolymers; wherein the first and second transparent conductive layers are independently selected from one layer or a stack of layers selected from the group consisting of fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated; and wherein the liquid crystal comprising layer comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network, dynamic scattering liquid crystals, semectic liquid crystals, siloxane containing semectic liquid crystals, or a combination of any of these liquid crystal types.
2. The insulated glass unit of claim 1, wherein the unit comprises at least one of the optional dielectric layers.
3. The insulated glass unit of claim 1, wherein the thermochromic layer comprises a first layer of thermochromic material, a second layer of thermochromic material, and a separator that separates said first layer of thermochromic material from said second layer of thermochromic material, and wherein the separator is selected from a layer of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass, cyclic olefin polymers or copolymers, or combinations thereof.
4. The insulated glass unit of claim 1 further comprising a spacer, a primary seal, and a secondary seal located around a perimeter of the insulated glass unit to form a sealed interior space.
5. The insulated glass unit of claim 4, wherein one or both of the thermochromic layer and the liquid crystal comprising layer are located in the sealed interior space for protection.
6. An insulated glass unit for a window comprising in the following order: a first glass substrate; a thermochromic layer; a second glass substrate; an optional low-e coating; a gas space; an optional low-e coating; a third glass substrate; a first transparent conductive layer; an optional dielectric layer; a liquid crystal comprising layer; an optional dielectric layer; a second transparent conductive layer; and a fourth glass substrate; wherein the first and second glass substrates are independently selected from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the third and fourth glass substrates are independently selected from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the gas space comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof; wherein the one or more optional low-e coatings comprise a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys; wherein the first and second transparent conductive layers are independently selected from one layer or a stack of layers selected from the group consisting of fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated; and wherein the liquid crystal comprising layer comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network, dynamic scattering liquid crystals, semectic liquid crystals, siloxane containing semectic liquid crystals, or a combination of any of these liquid crystal types.
7. The insulated glass unit of claim 6, wherein the thermochromic layer comprises a first layer of thermochromic material, a second layer of thermochromic material, and a separator that separates said first layer of thermochromic material from said second layer of thermochromic material, and wherein the separator is selected from a layer of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass, cyclic olefin polymers or copolymers, or combinations thereof.
8. The insulated glass unit of claim 6 further comprising a spacer, a primary seal, and a secondary seal located around a perimeter of the insulated glass unit to form a sealed interior space.
9. The insulated glass unit of claim 8, wherein one or both of the thermochromic layer and the liquid crystal comprising layer are located in the sealed interior space for protection.
10. An insulated glass unit for a window comprising in the following order: a first glass substrate; a thermochromic layer; a second glass substrate; an optional low-e coating; a gas space; an optional low-e coating; a first plastic substrate; a first transparent conductor layer; an optional dielectric layer; a liquid crystal comprising layer; an optional dielectric layer; a second transparent conductor layer; a second plastic substrate; an adhesive layer; and a third glass substrate; wherein the first and second glass substrates are independently selected from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the third glass substrate is selected from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the gas space comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof; wherein the one or more optional low-e coatings comprise a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys; wherein the first and second plastic substrates are selected from layers of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic and cyclic olefin polymers or copolymers; wherein the first and second transparent conductive layers are independently selected from one layer or a stack of layers selected from the group consisting of fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated; wherein the liquid crystal comprising layer comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network, dynamic scattering liquid crystals, semectic liquid crystals, siloxane containing semectic liquid crystals, or a combination of any of these liquid crystal types; and wherein the adhesive layer is selected from polyvinylbutyral, thermoplastic polyurethane, ethylene vinyl acetate, ionomers and ionomers comprising metal ions, an acrylic containing layer, and a silicone containing layer.
11. The insulated glass unit of claim 10, wherein the unit comprises at least one of the optional dielectric layers.
12. The insulated glass unit of claim 10, wherein the thermochromic layer comprises a first layer of thermochromic material, a second layer of thermochromic material, and a separator that separates said first layer of thermochromic material from said second layer of thermochromic material, and wherein the separator is selected from a layer of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass, cyclic olefin polymers or copolymers, or combinations thereof.
13. The insulated glass unit of claim 10 further comprising a spacer, a primary seal, and a secondary seal located around a perimeter of the insulated glass unit to form a sealed interior space.
14. The insulated glass unit of claim 13, wherein one or both of the thermochromic layer and the liquid crystal comprising layer are located in the sealed interior space for protection.
15. An insulated glass unit for a window comprising in the following order: a first glass substrate; a thermochromic layer; a first plastic substrate; an optional low-e coating; a gas space; an optional low-e coating; a second plastic substrate; a first transparent conductive layer; an optional dielectric layer; a liquid crystal comprising layer; an optional dielectric layer; a second transparent conductive layer; and a second glass substrate; wherein the first glass substrate is selected from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the second glass substrate is selected from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the gas space comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof; wherein the one or more optional low-e coatings comprise a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys; wherein the first and second plastic substrates are independently selected from layers of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic and cyclic olefin polymers or copolymers; wherein the first and second transparent conductive layers are independently selected from one layer or a stack of layers selected from the group consisting of fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated; and wherein the liquid crystal comprising layer comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network, dynamic scattering liquid crystals, semectic liquid crystals, siloxane containing semectic liquid crystals, or a combination of any of these liquid crystal types.
16. The insulated glass unit of claim 15, wherein the unit comprises at least one of the optional dielectric layers.
17. The insulated glass unit of claim 15, wherein the thermochromic layer comprises a first layer of thermochromic material, a second layer of thermochromic material, and a separator that separates said first layer of thermochromic material from said second layer of thermochromic material, and wherein the separator is selected from a layer of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass, cyclic olefin polymers or copolymers, or combinations thereof.
18. The insulated glass unit of claim 15 further comprising a spacer, a primary seal, and a secondary seal located around a perimeter of the insulated glass unit to form a sealed interior space.
19. The insulated glass unit of claim 18, wherein one or both of the thermochromic layer and the liquid crystal comprising layer are located in the sealed interior space for protection.
20. An insulated glass unit for a window comprising in the following order: a first glass substrate; a thermochromic layer; a second glass substrate; an optional low-e coating; a gas space; an optional low-e coating; a plastic substrate; a first transparent conductive layer; an optional dielectric layer; a liquid crystal comprising layer; an optional dielectric layer; a second transparent conductive layer; and a third glass substrate; wherein the first and second glass substrates are independently selected from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the third glass substrate is selected from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass; wherein the gas space comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof; wherein the one or more optional low-e coatings comprise a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys; wherein the plastic substrate is selected from layers of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic and cyclic olefin polymers or copolymers; wherein the first and second transparent conductive layers are independently selected preferably from one layer or a stack of layers selected from the group consisting of fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated; and wherein the liquid crystal comprising layer comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network, dynamic scattering liquid crystals, semectic liquid crystals, siloxane containing semectic liquid crystals, or a combination of any of these liquid crystal types.
21. The insulated glass unit of claim 20, wherein the unit comprises at least one of the optional dielectric layers.
22. The insulated glass unit of claim 20, wherein the thermochromic layer comprises a first layer of thermochromic material, a second layer of thermochromic material, and a separator that separates said first layer of thermochromic material from said second layer of thermochromic material, and wherein the separator is selected from a layer of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass, cyclic olefin polymers or copolymers, or combinations thereof.
23. The insulated glass unit of claim 20 further comprising a spacer, a primary seal, and a secondary seal located around a perimeter of the insulated glass unit to form a sealed interior space.
24. The insulated glass unit of claim 23, wherein one or both of the thermochromic layer and the liquid crystal comprising layer are located in the sealed interior space for protection.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
DETAILED DESCRIPTION
[0018] In all the embodiments disclosed below the identified substrates, interlayers, layers and spaces may be in contact with the adjacent substrates, interlayers, layers or spaces.
[0019] Embodiment 1 of the invention is an insulated glass unit for a window comprising in the following order:
[0020] 1. a first glass substrate
[0021] 2. a thermochromic layer
[0022] 3. a second glass substrate
[0023] 4. an optional low-e coating
[0024] 5. a gas space
[0025] 6. an optional low-e coating
[0026] 7. a third glass substrate
[0027] 8. a first adhesive layer
[0028] 9. a first plastic substrate
[0029] 10. a first transparent conductive layer
[0030] 11. an optional dielectric layer
[0031] 12. a liquid crystal comprising layer
[0032] 13. an optional dielectric layer
[0033] 14. a second transparent conductive layer
[0034] 15. a second plastic substrate
[0035] 16. a second adhesive layer
[0036] 17. a fourth glass substrate
wherein the first and second glass substrates are independently selected preferably from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the third and fourth glass substrates are independently selected preferably from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the thermochromic layer comprises one or more than one layer comprising thermochromic material(s) and/or system(s) and a separator if there is more than one thermochromic layer wherein the separator for thermochromic layers preferably is selected from a layer of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass and cyclic olefin polymers or copolymers and wherein the gas space preferably comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof and wherein the optional low-e coating is generally a series of coatings and preferably comprises a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys and wherein the first and second adhesive layers or interlayers are independently selected preferably from polyvinylbutyral, thermoplastic polyurethane, ethylene vinyl acetate, ionomers and ionomers comprising metal ions, an acrylic containing layer and a silicone containing layer and wherein the first and second plastic substrates are independently selected preferably from layers of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic and cyclic olefin polymers or copolymers and wherein the first and second transparent conductive layers are independently selected preferably from one layer or a stack of layers which include fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated and wherein the optional dielectric layers are thin layers of high dielectric strength materials like insulating metal oxides or polymers and the unit comprises at least one of the optional dielectric layers and wherein the liquid crystal comprising layer preferably comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network or dynamic scattering liquid crystals or semectic liquid crystals or siloxane containing semectic liquid crystals or a combination of any of these liquid crystal types.
[0037]
[0038] Embodiment 2 of the invention is an insulated glass unit for a window comprising in the following order:
[0039] 1. a first glass substrate
[0040] 2. a thermochromic layer
[0041] 3. a second glass substrate
[0042] 4. an optional low-e coating
[0043] 5. a gas space
[0044] 6. an optional low-e coating
[0045] 7. a third glass substrate
[0046] 8. a first transparent conductive layer
[0047] 9. an optional dielectric layer
[0048] 10. a liquid crystal comprising layer
[0049] 11. an optional dielectric layer
[0050] 12. a second transparent conductive layer
[0051] 13. a fourth glass substrate
wherein the first and second glass substrates are independently selected preferably from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the third and fourth glass substrates are independently selected preferably from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the thermochromic layer comprises one or more than one layer comprising thermochromic material(s) and/or system(s) and a separator if there is more than one thermochromic layer wherein the separator for thermochromic layers preferably is selected from a layer of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass and cyclic olefin polymers or copolymers and wherein the gas space preferably comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof and wherein the optional low-e coating is generally a series of coatings and preferably comprises a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys and wherein the first and second transparent conductive layers are independently selected preferably from one layer or a stack of layers which include fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated or color compensated and wherein the optional dielectric layers are thin layers of high dielectric strength materials like insulating metal oxides or polymers and the unit comprises at least one of the optional dielectric layers and wherein the liquid crystal comprising layer preferably comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network or dynamic scattering liquid crystals or semectic liquid crystals or siloxane containing semectic liquid crystals or a combination of any of these liquid crystal types.
[0052]
[0053] Embodiment 3 of the invention is an insulated glass unit for a window comprising in the following order:
[0054] 1. a first glass substrate
[0055] 2. a thermochromic layer
[0056] 3. a second glass substrate
[0057] 4. an optional low-e coating
[0058] 5. a gas space
[0059] 6. an optional low-e coating
[0060] 7. a first plastic substrate
[0061] 8. a first transparent conductor layer
[0062] 9. an optional dielectric layer
[0063] 10. a liquid crystal comprising layer
[0064] 11. an optional dielectric layer
[0065] 12. a second transparent conductor layer
[0066] 13. a second plastic substrate
[0067] 14. an adhesive layer
[0068] 15. a third glass substrate
wherein the first and second glass substrates are independently selected preferably from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the third glass substrate is preferably selected from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the thermochromic layer comprises one or more than one layer comprising thermochromic material(s) and/or system(s) and a separator if there is more than one thermochromic layer wherein the separator for thermochromic layers preferably is selected from a layer of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass and cyclic olefin polymers or copolymers and wherein the gas space preferably comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof and wherein the optional low-e coating is generally a series of coatings and preferably comprises a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys and wherein the first and second plastic substrates are independently selected preferably from layers of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic and cyclic olefin polymers or copolymers and wherein the first and second transparent conductive layers are independently selected preferably from one layer or a stack of layers which include fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated and wherein the optional dielectric layers are thin layers of high dielectric strength materials like insulating metal oxides or polymers and the unit comprises at least one of the optional dielectric layers and wherein the liquid crystal comprising layer preferably comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network or dynamic scattering liquid crystals or semectic liquid crystals or siloxane containing semectic liquid crystals or a combination of any of these liquid crystal types and wherein the adhesive layer or interlayer is independently selected from polyvinylbutyral, thermoplastic polyurethane, ethylene vinyl acetate, ionomers and ionomers comprising metal ions, an acrylic containing layer and a silicone containing layer.
[0069]
[0070] Embodiment 4 of the invention is an insulated glass unit for a window comprising in the following order:
[0071] 1. a first glass substrate
[0072] 2. a thermochromic layer
[0073] 3. a first plastic substrate
[0074] 4. an optional low-e coating
[0075] 5. a gas space
[0076] 6. an optional low-e coating
[0077] 7. a second plastic substrate
[0078] 8. a first transparent conductive layer
[0079] 9. an optional dielectric layer
[0080] 10. a liquid crystal comprising layer
[0081] 11. an optional dielectric layer
[0082] 12. a second transparent conductive layer
[0083] 13. a second glass substrate
wherein the first glass substrate is preferably selected from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the second glass substrate is preferably selected from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the thermochromic layer comprises one or more than one layer comprising thermochromic material(s) and/or system(s) and a separator if there is more than one thermochromic layer wherein the separator for thermochromic layers preferably is selected from a layer of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass and cyclic olefin polymers or copolymers and wherein the gas space preferably comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof and wherein the optional low-e coating is generally a series of coatings and preferably comprises a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys and wherein the first and second plastic substrates are independently selected preferably from layers of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic and cyclic olefin polymers or copolymers and wherein the first and second transparent conductive layers are independently selected preferably from one layer or a stack of layers which include fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated and wherein the optional dielectric layers are thin layers of high dielectric strength materials like insulating metal oxides or polymers and the unit comprises at least one of the optional dielectric layers and wherein the liquid crystal comprising layer preferably comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network or dynamic scattering liquid crystals or semectic liquid crystals or siloxane containing semectic liquid crystals or a combination of any of these liquid crystal types.
[0084]
[0085]
[0086] Embodiment 5 of the invention is an insulated glass unit for a window comprising in the following order:
[0087] 1. a first glass substrate
[0088] 2. a thermochromic layer
[0089] 3. a second glass substrate
[0090] 4. an optional low-e coating
[0091] 5. a gas space
[0092] 6. an optional low-e coating
[0093] 7. a plastic substrate
[0094] 8. a first transparent conductive layer
[0095] 9. an optional dielectric layer
[0096] 10. a liquid crystal comprising layer
[0097] 11. an optional dielectric layer
[0098] 12. a second transparent conductive layer
[0099] 13. a third glass substrate
wherein the first and second glass substrates are preferably selected from chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the third glass substrate is preferably selected from annealed, chemically strengthened, heat strengthened or tempered soda lime glass and untreated or chemically strengthened borosilicate, alkali-boroaluminosilicate, boroaluminosilicate, aluminosilicate or alkali-aluminosilicate glass and wherein the thermochromic layer comprises one or more than one film comprising thermochromic material(s) and/or system(s) and separator sheet(s) if there is more than one thermochromic film wherein the separator sheet(s) for thermochromic films preferably is selected from a sheet(s) of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic, glass and cyclic olefin polymers or copolymers and wherein the gas space preferably comprises air, nitrogen, argon, krypton, sulfur hexafluoride, carbon dioxide or combinations thereof and wherein both of the optional low-e coatings is generally a series of coatings and preferably comprises a transparent conductive metal oxide layer and/or thin layers of silver or silver alloys and wherein the plastic substrate is independently selected preferably from layers of polyester, polyethylene terephthalate, polyethylene naphthalate, acrylic and cyclic olefin polymers or copolymers and wherein the first and second transparent conductive layers are independently selected preferably from one layer or a stack of layers which include fluorine doped tin oxide, fluorine doped zinc oxide, tin doped indium oxide (ITO), aluminum doped zinc oxide, silver and alloys of silver that are optionally color suppressed or color compensated and wherein the optional dielectric layers are thin layers of high dielectric strength materials like insulating metal oxides or polymers and the unit comprises at least one of the optional dielectric layers and wherein the liquid crystal comprising layer preferably comprises cholesteric and/or nematic liquid crystals in droplets or small domains within a polymer matrix or network or dynamic scattering liquid crystals or semectic liquid crystals or siloxane containing semectic liquid crystals or a combination of any of these liquid crystal types.
[0100]
[0101]
[0102]
[0103]
[0104] Any of the thermochromic layers 600a, 600b or 600c may be used in any embodiment of the invention.
[0105]
[0106] For the thermochromic layers of the invention, U.S. Pat. Nos. 6,084,702; 6,446,402; 7,525,717; 7,538,931; 7,542,196; 7,817,328; 8,018,639; 8,154,788; 8,182,718; 8,431,045; 8,623,243; 9,011,734; 9,128,307; 9,321,251; 9,465,239 and 9,776,379 disclose thermochromic materials, systems, windows and related technologies. The entire contents of these patents are hereby incorporated by reference. Also, published U.S. Patent Applications 20170028686 and 20170361577 disclose materials, systems, windows, window configurations, seals and related technologies. The entire contents of these patent applications are hereby incorporated by reference. Having described the invention in detail and by reference to the various embodiments, it should be understood that modifications and variations thereof are possible without departing from the scope of the claims of the present application.