Electrochromic multi-layer devices with spatially coordinated switching
A multi-layer device comprising a first substrate and a first electrically conductive layer on a surface thereof, the first electrically conductive layer having a sheet resistance to the flow of electrical current through the first electrically conductive layer that varies as a function of position.
1. An electrochromic device comprising a first substrate, a first electrically conductive layer on the first substrate, a second substrate, a second electrically conductive layer on the second substrate, and a first electrode layer comprising a first electrochromic material that is located between the first and the second electrically conductive layers, wherein:
the electrochromic device is switchable from a more transmissive state to a less transmissive state;
the first and second electrically conductive layers have sheet resistances to the flow of electrical current through the first and second electrically conductive layers that vary as a function of position in the first and second electrically conductive layers, respectively; and
the sheet resistances of the first and second electrically conductive layers are asymmetric to one another and cause the electrochromic device to have a directional switch.
2. The electrochromic device of claim 1 , further comprising a first bus bar located along a left side of the electrochromic device and a second bus bar located along a right side of the electrochromic device, wherein the directional switch occurs from left to right across the electrochromic device.
3. The electrochromic device of claim 1 , wherein an apparent velocity of the directional switch is controlled by a difference between sheet resistance profiles in the first and second electrically conducting layers.
4. The electrochromic device of claim 1 , wherein the first and second electrically conductive layers are graded in thickness or composition.
5. The electrochromic device of claim 1 , wherein the first and second electrically conductive layers are patterned, and the patterns cause the flow of electrical current through the first electrically conductive layer to vary as a function of position in the first and second electrically conductive layers.
6. The electrochromic device of claim 1 , wherein a contour map of the sheet resistance within the first electrically conductive layer contains a set of isoresistance lines and a set of resistance gradient lines normal to the isoresistance lines, and the sheet resistance along a gradient line in the set generally increases, generally decreases, generally increases until it reaches a maximum and then generally decreases, or generally decreases until it reaches a minimum and then generally increases.
7. The electrochromic device of claim 1 , wherein a contour map of the sheet resistance within the second electrically conductive layer contains a set of isoresistance lines and a set of resistance gradient lines normal to the isoresistance lines, and the sheet resistance along a gradient line in the set generally increases, generally decreases, generally increases until it reaches a maximum and then generally decreases, or generally decreases until it reaches a minimum and then generally increases.
8. The electrochromic device of claim 1 , further comprising an ion conducting layer located between the first electrode layer and the second electrically conductive layer.
9. The electrochromic device of claim 8 , further comprising a second electrode layer comprising a second electrochromic material located between the ion conducting layer and the second electrically conductive layer.
10. The electrochromic device of claim 1 , further comprising a power supply providing an electric potential to the first and second electrically conductive layers to switch the electrochromic device from a first optical state to a second optical state, wherein the second optical state is an intermediate state.