SOLAR CELL DEVICE AND METHOD FOR MANUFACTURING SAME
It is an object of the present invention to enlarge flexibility with, respect to material selection for transparent conductive oxide layers within a solar cell device especially in view of the respective, material-specific vacuum deposition processes. This object is resolved by a solar cell device which comprises at least one thin film solar cell and an electrically conductive, transparent oxide layer wherein the addressed electrically conductive, transparent oxide layer is of doped TiOx.
1 . A solar cell device comprising at least one thin film solar cell and an electrically conductive, transparent oxide layer, said electrically conductive, transparent oxide layer being of doped TiO x , wherein 1.6≦x≦2.
2 . The solar cell device of claim 1 , wherein said layer is at least a part of an electrode layer to tap off electrical energy from the solar cell device.
3 . The solar cell device of one of claim 1 or 2 , wherein said device comprises at least a first thin film solar cell for receiving incident light and a second thin film solar cell receiving light transmitted through said first thin film solar cell, said layer being at least a part of a layer structure between said first and second thin film solar cells.
4 . The solar device according to one of claims 1 to 3 , wherein said layer of doped TiO x comprises the same dopant which is present in an adjacent layer.
5 . The solar cell device of one of claims 1 to 4 , wherein the material of a layer adjacent said layer of doped TiO x comprises hydrogen.
6 . The device of one of claims 1 to 5 , wherein said doped TiO x is at least one of TiO x :H, N-TiO x , C-TiO x , Ag-TiO x , Y-TiO x , Nb-TiO x , Ta-TiO x .
7 . The solar device of one of claims 1 to 6 , wherein said doped TiO x is non-metal doped.
8 . The device of one of claims 1 to 7 , wherein said doped TiO x is metal doped.
9 . The device of one of claims 1 to 9 , wherein x is essentially 2.
10 . A method for manufacturing a solar cell device comprising at least one solar cell and at least one layer of an electrically conductive, transparent oxide comprising depositing said layer of doped TiO x by plasma enhanced chemical vapor deposition of at least TiO x , wherein 1.6≦x≦2.
11 . The method of claim 10 , further comprising depositing a further layer upon said layer of doped TiO x from an atmosphere comprising plasma activated hydrogen.
12 . The method of claim 10 or claim 11 , wherein x is essentially 2.