Amorphous metal thin film transistors
Described herein are various amorphous metal thin film transistors. Embodiments of such transistors include an amorphous metal gate electrode and a channel conductor formed on a non-conducting substrate. Further embodiments of such transistors include an amorphous metal source electrode, an amorphous metal drain electrode, and a channel conductor formed on a non-conducting substrate. Methods of forming such transistors are also described.
1. A method, comprising:
forming an amorphous metal alloy gate electrode on a flexible substrate;
forming an aluminum oxide insulating layer on the amorphous metal alloy gate electrode, the aluminum oxide insulating layer having a first surface and a second surface opposite the first surface, a third surface and a fourth surface opposite the third surface, the second surface facing the amorphous metal alloy gate electrode, the third surface and the fourth surface extending from the first surface;
forming a channel conductor on the aluminum oxide insulating layer to cover the first, third, and fourth surfaces of the aluminum oxide insulating layer;
forming either a source electrode or a drain electrode on the aluminum oxide insulating layer so that either the source electrode or the drain electrode overlaps the amorphous metal alloy gate electrode at a selected distance from a plan view;
wherein the channel conductor, the amorphous metal alloy gate electrode, and at least one of the source electrode or the drain electrode overlaps each other at the selected distance from a plan view.
2. The method of claim 1 , wherein forming the channel conductor including forming the channel conductor such that the channel conductor directly contacts the first, third, and fourth surfaces of the aluminum oxide insulating layer.
3. The method of claim 1 , further including forming an insulating layer on the channel conductor and the source and drain electrodes.
4. A method, comprising:
forming a first insulator layer having a first planar surface on a non-conductive substrate;
forming an amorphous metal alloy source electrode on the first planar surface of the first insulator layer on the non-conducting substrate;
forming an amorphous metal alloy drain electrode on the first planar surface of the first insulator layer on the non-conducting substrate;
forming a channel conductor overlapping with the amorphous metal alloy source electrode and the amorphous metal alloy drain electrode, the channel conductor being in direct contact with the first planar surface of the first insulator, the channel conductor having a second planar surface opposite the first planar surface of the first insulator;
forming a first aluminum oxide insulator on the amorphous metal alloy source electrode and the amorphous metal alloy drain electrode, the first aluminum oxide insulator including a trench-like shaped portion; and
forming a gate electrode on the first aluminum oxide insulator,
wherein at least a portion of the gate electrode extends into the trench-like shaped portion of the first aluminum oxide insulator, and
wherein either the amorphous metal alloy drain electrode or the amorphous metal alloy source electrode is in direct contact with the second planar surface of the channel conductor.
5. The method of claim 4 , wherein the gate electrode being an amorphous metal alloy.
6. The method of claim 5 , further including forming a second aluminum oxide insulator on the non-conducting substrate before forming the channel conductor.
7. A device, comprising:
a non-conductive flexible substrate;
a first titanium aluminum amorphous metal electrode;
an aluminum oxide insulating layer in direct contact with the non-conductive flexible substrate;
an InGaZnO channel conductor having a first surface and a second surface opposite the first surface, the second surface of the InGaZnO channel conductor in direct contact with the aluminum oxide insulating layer;
a first metal oxide electrode on a first end of the InGaZnO channel conductor, the first metal oxide electrode having a third surface;
a second metal oxide electrode on a second end of the InGaZnO channel conductor, the second metal oxide electrode having a fourth surface opposite the third surface of the first metal oxide electrode, the first metal oxide electrode being spaced from the second metal oxide electrode, the third surface of the first metal oxide electrode and the fourth surface of the second metal oxide electrode facing each other;
an insulating layer on the first and second metal oxide electrodes and the InGaZnO channel conductor, the insulating layer in direct contact with the first surface of the InGaZnO channel conductor and in direct contact with the third surface of the first metal oxide electrode and the fourth surface of the second metal oxide electrode,
wherein the first titanium aluminum amorphous metal electrode is on and contacting the insulating layer.
8. The device of claim 7 wherein the aluminum oxide insulating layer is between 10 and 20 nanometers.
9. The device of claim 7 wherein the titanium aluminum is TiAl 3 .
10. The device of claim 7 , wherein the channel conductor on the aluminum oxide insulating layer is approximately 20 nm.
11. The device of claim 7 , further comprising an organic light emitting diode on the non-conducting flexible substrate.
12. The device of claim 7 , wherein the channel conductor is wider than the first titanium aluminum amorphous metal electrode in a first direction.
13. The device of claim 7 , comprising a second titanium aluminum amorphous metal electrode in direct contact with the non-conductive flexible substrate, the aluminum oxide insulating layer in direct contact with the second titanium aluminum amorphous metal electrode.
14. The device of claim 13 , wherein the source electrode, the drain electrode, the first electrode, and the second electrode are made of the same material.