Writer with adaptive side gap
US-2022165300-A1 · May 26, 2022 · US
US2025391428A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2025391428-A1 |
| Application number | US-202418751004-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jun 21, 2024 |
| Priority date | Jun 21, 2024 |
| Publication date | Dec 25, 2025 |
| Grant date | — |
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The present embodiments relate to a pre-assisting microwave assisted magnetic recording (MAMR) (PA-MAMR) write-head structure where the STO is disposed within a leading shield (LS). The STO can be used to pump energy into the media before the writing process. The STO can also pre-excite the media and let the media oscillation damp over the time and then switch under the writer field. The present embodiments can be easier to increase the magnetic volume and magnetic moment of the free layer, while also achieving a greater oscillation frequency with magnetization oscillations around the axis in the film plane.
Opening claim text (preview).
What is claimed is: 1 . A write head for a disk drive, the write head comprising: a main pole (MP) configured to provide a magnetic flux to a recording medium; a trailing shield (TS) comprising a hot seed (HS) and write shield (WS) to collect a flux from the MP and increase a downtrack gradient; two side shields (SS) each disposed adjacent to the MP and configured to confine the flux in a crosstrack direction to increase a crosstrack gradient; a leading edge taper (LET) configured to create a taper in a leading side of the MP; a leading shield (LS); and a spin-torque oscillator (STO) patterned in the LS, wherein the STO includes a free magnetic layer to generate a rf field and a pinned magnetic layer as a spin polarizer. 2 . The write head of claim 1 , wherein the free magnetic layer of the STO comprises an out-of-plane axis due to depositing one or more materials comprising any of cobalt (Co)/platinum (Pt) multilayers, Co/palladium (Pd) multilayers, and cobalt-iron-boron (CoFeB)/magnesium oxide (MgO) multilayers, wherein the spin torque device exhibits a circular oscillation mode. 3 . The write head of claim 1 , wherein the free magnetic layer of the STO comprises an in-plane axis due to depositing one or more magnetic materials comprising any of nickel-iron (NiFe) alloys and iron-cobalt (FeCo) alloys, wherein the spin torque device exhibits an elliptical oscillation mode or a circular oscillation mode depending on a bias current to generate linear RF signals in elliptical oscillation modes. 4 . The write head of claim 1 , wherein the pinned magnetic layer of the STO is pinned in an out-of-plane direction or an in-plane direction to provide spin torques to generate a gyromagnetic precession. 5 . The write head of claim 1 , wherein a thickness of the free magnetic layer ranges from between 5-20. nanometers (nm), wherein a width of the free magnetic layer ranges between 30 to 400 nm, and wherein a height of the free magnetic layer ranges from 20 to 400 nm. 6 . The write head of claim 1 , wherein the STO extends into the LET, wherein offsets of the STO with respect to a center track direction reduces impact from skew angles. 7 . The write head of claim 1 , further comprising: conductive materials disposed in a write gap (WG) and a leading gap (LG) that allows a bias current to flow; and insulating materials disposed on one or more sides of the WG and the LG to guide and/or concentrate the bias current. 8 . A device comprising: a main pole (MP) configured to provide a magnetic flux to a recording medium; a leading edge taper (LET) configured to create a taper in a leading side of the MP; a leading shield (LS); and a spin-torque oscillator (STO) patterned in the LS, wherein the STO includes a free magnetic layer to generate a rf field and a pinned magnetic layer as a spin polarizer. 9 . The device of claim 8 , further comprising: a trailing shield (TS) comprising a hot seed (HS) and write shield (WS) to collect a flux from the MP and increase a downtrack gradient; and two side shields (SS) each disposed adjacent to the MP and configured to confine the flux in a crosstrack direction to increase a crosstrack gradient. 10 . The device of claim 8 , wherein the free magnetic layer of the STO comprises an out-of-plane axis due to depositing one or more materials comprising any of cobalt (Co)/platinum (Pt) multilayers, Co/palladium (Pd) multilayers, and cobalt-iron-boron (CoFeB)/magnesium oxide (MgO) multilayers, wherein the spin torque device exhibits a circular oscillation mode. 11 . The device of claim 8 , wherein the free magnetic layer of the STO comprises an in-plane axis due to depositing one or more magnetic materials comprising any of nickel-iron (NiFe) alloys and iron-cobalt (FeCo) alloys, wherein the spin torque device exhibits an elliptical oscillation mode or a circular oscillation mode depending on a bias current to generate linear RF signals in elliptical oscillation modes. 12 . The device of claim 8 , wherein the pinned magnetic layer of the STO is pinned in an out-of-plane direction or an in-plane direction to provide spin torques to generate a gyromagnetic precession. 13 . The device of claim 8 , wherein a thickness of the free magnetic layer ranges from between 5-20. nanometers (nm), wherein a width of the free magnetic layer ranges between 30 to 400 nm, and wherein a height of the free magnetic layer ranges from 20 to 400 nm. 14 . The device of claim 8 , wherein the STO extends into the LET, wherein offsets of the STO with respect to a center track direction reduces impact from skew angles. 15 . The device of claim 8 , further comprising: conductive materials disposed in a write gap (WG) and a leading gap (LG) that allows a bias current to flow; and insulating materials disposed on one or more sides of the WG and the LG to guide and/or concentrate the bias current. 16 . A write head comprising: a main pole (MP); a trailing shield (TS) comprising a hot seed (HS) and write shield (WS); two side shields (SS) each disposed adjacent to the MP; a leading edge taper (LET); a leading shield (LS); and a spin-torque oscillator (STO) patterned in the LS, wherein the STO includes a free magnetic layer to generate a rf field and a pinned magnetic layer as a spin polarizer. 17 . The write head of claim 1 , wherein the free magnetic layer of the STO comprises an out-of-plane axis due to depositing one or more materials comprising any of cobalt (Co)/platinum (Pt) multilayers, Co/palladium (Pd) multilayers, and cobalt-iron-boron (CoFeB)/magnesium oxide (MgO) multilayers, wherein the spin torque device exhibits a circular oscillation mode. 18 . The write head of claim 1 , wherein the free magnetic layer of the STO comprises an in-plane axis due to depositing one or more magnetic materials comprising any of nickel-iron (NiFe) alloys and iron-cobalt (FeCo) alloys, wherein the spin torque device exhibits an elliptical oscillation mode or a circular oscillation mode depending on a bias current to generate linear RF signals in elliptical oscillation modes. 19 . The write head of claim 1 , wherein a thickness of the free magnetic layer ranges from between 5-20. nanometers (nm), wherein a width of the free magnetic layer ranges between 30 to 400 nm, and wherein a height of the free magnetic layer ranges from 20 to 400 nm. 20 . The write head of claim 1 , wherein the STO extends into the LET, wherein offsets of the STO with respect to a center track direction reduces impact from skew angles.
Selection of material for gap filler {(G11B5/232 takes precedence)} · CPC title
Shaping of layers, poles or gaps for improving the form of the electrical signal transduced, e.g. for shielding, contour effect, equalizing, side flux fringing, cross talk reduction between heads or between heads and information tracks (G11B5/3113, G11B5/245 take precedence) · CPC title
magnetic layers · CPC title
specially adapted for magnetisations perpendicular to the surface of the record carrier · CPC title
Microwave assisted recording · CPC title
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