MULTILAYER FILM WITH ELECTRICALLY CONTROLLABLE OPTICAL PROPERTIES AND AT LEAST ONE ELECTRICAL CONTACT REGION
A multilayer film having electrically controllable optical properties. The multilayer film has a first carrier film, a first planar electrode, an active layer having one or more layers in sequence, a second planar electrode, and a second carrier film, arranged one above the other in a flat manner. In a contact region, the first carrier film, the first planar electrode, and the active layer are removed, such that the second planar electrode is exposed. The contact region is designed in the shape of a strip with tapered ends.
1 .- 15 . (canceled)
16 . A multilayer film having electrically controllable optical properties, comprising in the order specified and arranged one above the other in a flat manner:
a) a first carrier film,
b) a first planar electrode,
c) an active layer comprising one or more layers in sequence, the active layer having electrically controllable optical properties,
d) a second planar electrode and
e) a second carrier film,
wherein, in a first contact region, the first carrier film, the first planar electrode and the active layer are removed, such that the second planar electrode is exposed,
wherein the first contact region is in the shape of a strip with tapered ends.
17 . The multilayer film according to claim 16 , wherein the first contact region is in the shape of an elongated hexagon.
18 . The multilayer film according to claim 16 , wherein the first contact region is in the shape of a trapezoid.
19 . The multilayer film according to claim 16 , wherein the tapered ends are defined by two touching sections of a boundary line of the first contact region, which form an angle of less than 90°.
20 . The multiplayer film according to claim 19 , wherein the angle is greater than 50°.
21 . The multilayer film according to claim 16 , wherein the tapered ends are defined by two touching sections of a boundary line of the first contact region, further comprising a cut in at least the first carrier film, the cut extending from each of said sections and having a length of at least 1 mm.
22 . The multilayer film according to claim 16 , further comprising a current busbar arranged in the contact region on the second planar electrode, wherein the current busbar is a strip of an electrically conductive film.
23 . The multilayer film according to claim 16 , wherein, in a second contact region the second carrier film, the second planar electrode and the active layer are removed, such that the first planar electrode is exposed, wherein the second contact region is in the shape of a strip with tapered ends.
24 . The multilayer film according to claim 16 , wherein the multilayer film is an electrochromic multilayer film having electrochromic active layers, the electrochromic active layers comprising in the order specified and arranged one above the other in a flat manner:
c1) an ion storage layer,
c2) an electrolyte layer, and
c3) an electrochromic layer.
25 . A laminated pane comprising two glass panes and a multilayer film according to claim 16 , wherein the multilayer film is arranged between the two glass panes and is connected to each pane via at least one thermoplastic connecting film.
26 . A method for producing a multilayer film having electrically controllable optical properties, the method comprising:
(A) providing a multilayer film having electrically controllable optical properties, the multilayer film comprising in the order specified and arranged one above the other in a flat manner:
a) a first carrier film,
b) a first planar electrode,
c) an active layer comprising one or more layers in sequence, the active layer having electrically controllable optical properties,
d) a second planar electrode and
e) a second carrier film,
(B) separating at least one region of the first carrier film from surrounding regions of the first carrier film by a cut, wherein the cut surrounds a contact region in the shape of a strip with tapered ends,
(C) peeling off said at least one region of the first carrier film together with a region of the first planar electrode adhering thereto, the peeling starting from one of the tapered ends, and
(D) cleaning the second planar electrode in the contact region of residue of the active layer.
27 . The method according to claim 26 , wherein the cut is created by radiation of a laser.
28 . The method according to claim 27 , wherein a wavelength of the radiation is from 3 μm to 50 μm.
29 . The method according to claim 28 , wherein the wavelength of the radiation is from 5 μm to 20 μm.
30 . The method according to claim 27 , wherein the radiation has an output of from 1 W to 50 W.
31 . The method according to claim 30 , wherein the output is from 5 W to 20 W.
32 . The method according to claim 27 , wherein the laser is operated in pulsed mode with a pulse frequency of 500 Hz to 5000 Hz and with a pulse length of 10 μs to 100 μs.
33 . The method according to claim 32 , wherein the pulse frequency is from 1000 Hz to 3000 Hz.
34 . The method according to claim 26 , wherein the residues of the active layer are removed with an organic solvent.