Ferroelectric tunnel junction devices with metal-FE interface layer and methods for forming the same
View Patent ↗A memory device, transistor, and methods of making the same, the memory device including a memory device including: a ferroelectric (FE) structure including: a dielectric layer, an FE layer disposed on the dielectric layer, and an interface metal layer disposed on the FE layer, in which the interface metal layer comprises W, Mo, Ru, TaN, or a combination thereof to induce the FE layer to have an orthorhombic phase; and a top electrode layer disposed on the interface metal.
1. A memory device, comprising:
a ferroelectric (FE) structure comprising:
a dielectric layer;
an FE layer disposed on the dielectric layer; and
an interface metal layer disposed on the FE layer, wherein the interface metal layer is configured to induce a formation of an orthorhombic crystal phase in the FE layer; and
a top electrode layer disposed on the interface metal layer.
2. The memory device of claim 1 , wherein the interface metal layer comprises tungsten (W), molybdenum (Mo), ruthenium (Ru), tantalum nitride (TaN), or a combination thereof to induce the FE layer to have the orthorhombic crystal phase.
3. The memory device of claim 1 , wherein the top electrode layer and the interface metal layer are a same material.
4. The memory device of claim 1 , wherein the interface metal layer has a thickness of 1-8 A.
5. The memory device of claim 1 , wherein the FE layer comprises HfO, HfO 2 , HfZrO, Pb[Zr x Ti 1-x ]O 3 , (0≤x≤1), PbTiO 3 , HfLaO, or a combination thereof.
6. The memory device of claim 5 , wherein a primary phase of the FE layer is orthorhombic and induced by an anneal process on the interface metal layer.
7. The memory device of claim 1 , wherein the dielectric layer comprises AlO, MgO, LaAlO 3 , or a combination thereof.
8. The memory device of claim 1 , further comprising:
a bottom electrode layer, wherein the dielectric layer is disposed on the bottom electrode layer such that the FE layer is disposed between the bottom electrode layer and the top electrode layer.
9. The memory device of claim 8 , further comprising:
a substrate; and
a transistor disposed on the substrate, the transistor comprising:
a source region and a drain region formed in the substrate;
a channel region formed in the substrate between the source and drain regions;
a high-k dielectric layer disposed on the channel region; and
a gate electrode disposed on the high-k dielectric layer;
wherein the bottom electrode layer is electrically connected to the drain region.
10. The memory device of claim 9 , further comprising:
a bit line electrically coupled to the source region;
a drain via contact electrically coupled to the drain region and the bottom electrode layer; and
a word line electrically coupled to the gate electrode.
11. A transistor comprising:
a semiconductor layer comprising a source region, a drain region, and a channel region disposed between the source region and the drain region;
a ferroelectric (FE) layer disposed on the channel region;
an interface metal layer disposed on the FE layer, wherein the interface metal layer is configured to induce a formation of an orthorhombic crystal phase in the FE layer; and
a gate electrode disposed on the interface metal layer.
12. The transistor of claim 11 , wherein the interface metal layer comprises tungsten (W), molybdenum (Mo), ruthenium (Ru), tantalum nitride (TaN), or a combination thereof to induce the FE layer to have the orthorhombic crystal phase.
13. The transistor of claim 11 , wherein the gate electrode and the interface metal layer are a same material.
14. The transistor of claim 11 , wherein the interface metal layer has a thickness of 1-8 A.
15. The transistor of claim 11 , wherein the FE layer comprises HfO, HfO 2 , HfZrO, Pb[Zr x Ti 1-x ]O 3 , (0≤x≤1), PbTiO 3 , HfLaO, or a combination thereof.
16. The transistor of claim 11 , wherein the transistor is a fin field-effect transistor, such that the interface metal layer surrounds multiple surfaces of the FE layer.
17. A memory structure, comprising:
a bottom electrode layer;
a ferroelectric (FE) structure comprising:
a dielectric layer disposed on the bottom electrode layer;
an FE layer disposed on the dielectric layer; and
an interface metal layer disposed on the FE layer, wherein the interface metal layer is configured to induce a formation of an orthorhombic crystal phase in the FE layer;
a top electrode layer disposed on the interface metal layer;
a substrate; and
a transistor disposed on the substrate, the transistor comprising:
a source region and a drain region formed in the substrate;
a channel region formed in the substrate between the source and drain regions;
a high-k dielectric layer disposed on the channel region; and
a gate electrode disposed on the high-k dielectric layer,
wherein the bottom electrode layer is electrically connected to the drain region.
18. The memory structure of claim 17 , further comprising:
a bit line electrically coupled to the source region;
a drain via contact electrically coupled to the drain region and the bottom electrode layer; and
a word line electrically coupled to the gate electrode.
19. The memory structure of claim 17 , wherein the interface metal layer comprises tungsten (W), molybdenum (Mo), ruthenium (Ru), tantalum nitride (TaN), or a combination thereof to induce the FE layer to have the orthorhombic crystal phase.
20. The memory structure of claim 17 , wherein the top electrode layer and the interface metal layer are a same material.