Perpendicular magnetic anisotropy free layers with iron insertion and oxide interfaces for spin transfer torque magnetic random access memory
View Patent ↗A method of making a spin-torque transfer magnetic random access memory device (STT MRAM) device includes forming a tunnel barrier layer on a reference layer; forming a free layer on the tunnel barrier layer, the free layer comprising a cobalt iron boron (CoFeB) alloy layer and an iron (Fe) layer; and performing a sputtering process to form a metal oxide layer on the Fe layer.
1. A spin-torque transfer magnetic random access memory device (STT MRAM) device, comprising:
a reference layer;
a free layer comprising a discrete cobalt iron boron (CoFeB) alloy layer and a discrete iron (Fe) layer arranged on the discrete CoFeB alloy layer, the discrete Fe layer comprising at least 98 atomic % (at. %) Fe;
a tunnel barrier layer arranged between the reference layer and the free layer; and
a metal oxide layer arranged directly on the discrete Fe layer of the free layer.
2. The STT MRAM device of claim 1 , wherein the discrete Fe layer comprises at least 99 at. % Fe.
3. The STT MRAM device of claim 1 , wherein the discrete Fe layer comprises substantially pure Fe.
4. The STT MRAM device of claim 1 , wherein the discrete Fe layer has a thickness in a range from about 0.2 to about 2 nanometers (nm).
5. The STT MRAM device of claim 1 , wherein the tunnel barrier layer comprises magnesium oxide (MgO).
6. The STT MRAM device of claim 1 , wherein the metal oxide layer has a thickness in a range from about 0.2 to about 2 nm.
7. The STT MRAM device of claim 1 , wherein the CoFeB alloy layer has a thickness in a range from about 0.2 to about 2 nm.
8. The STT MRAM device of claim 1 , wherein the discrete Fe layer has a thickness of about 0.2 to about 2 nm.
9. The STT MRAM device of claim 1 , wherein the discrete CoFeB alloy layer comprises boron (B) in an amount in a range from about 5 to about 50 at. %.
10. The STT MRAM device of claim 1 , wherein the discrete CoFeB alloy layer comprises Fe in an amount in a range from about 20 to about 80 at. %.
11. The STT MRAM device of claim 1 , wherein the discrete CoFeB alloy layer comprises cobalt (Co) in an amount in a range from about 10 to about 50 at. %.
12. The STT MRAM device of claim 1 further comprising a cap layer on the metal oxide layer.
13. The STT MRAM device of claim 1 , wherein the discrete CoFeB alloy layer comprises Co in an amount in a range from about 20 to about 30 at. %.
14. The STT MRAM device of claim 1 , wherein the metal oxide layer has a thickness in a range from about 0.2 to about 2 nm.
15. The STT MRAM device of claim 1 , wherein the metal oxide layer is MgO, tantalum oxide (TaOx), titanium oxide (TiOx), aluminum oxide (AlOx), magnesium titanium oxide (MgTiOx), or any combination thereof.
16. The STT MRAM device of claim 1 , wherein the discrete CoFeB alloy layer comprises B in an amount in a range from about 20 to about 30 at. %.
17. The STT MRAM device of claim 1 , wherein the Fe layer includes additional metals or non-metals.
18. The STT MRAM device of claim 1 , wherein the free layer has a thickness in a range from about 0.6 to about 6 nm.
19. The STT MRAM device of claim 1 , wherein the metal oxide layer comprises Ru, Pd, Pt, Ta, TiN, or a combination thereof.
20. The STT MRAM device of claim 1 further comprising a cap layer arranged on the metal oxide layer, the cap layer having a thickness of about 1 to about 10 nm.