Writer with adaptive side gap

US2022165300A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2022165300-A1
Application numberUS-202016953925-A
CountryUS
Kind codeA1
Filing dateNov 20, 2020
Priority dateNov 20, 2020
Publication dateMay 26, 2022
Grant date

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  1. Title

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  2. Abstract

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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Abstract

Official abstract text for this publication.

A PMR (perpendicular magnetic recording) write head configured for thermally assisted magnetic recording (TAMR) and microwave assisted magnetic recording (MAMR) is made adaptive to writing at different frequencies by inserting thin layers of magnetic material into the material filling the side gaps (SG) between the magnetic pole (MP) and the side shields (SS). At high frequencies, the thin magnetic layers saturate and lower the magnetic potential of the bulky side shields

First claim

Opening claim text (preview).

1 . A perpendicular magnetic recording (PMR) writer with adaptive gap structure comprising: a main magnetic pole (MP) having a trapezoidal, planar, air-bearing surface (ABS) face symmetrically positioned relative to surrounding magnetic shields; wherein said trapezoidal face has a narrow leading edge, a trailing edge that is wider than said leading edge and sloping sides connecting said trailing and leading edges; wherein, in said ABS cross-sectional plane, said MP face is separated from inner edges of said surrounding magnetic shields by a connected series of material-filled gaps comprising: a write gap (WG) separating said MP trailing edge from an inner edge of a trailing shield, said WG having a lateral width exceeding said MP trailing edge width; a leading edge gap (LG) separating said MP leading edge from an inner edge of a leading shield (LS) and a pair of mirror-symmetrically placed side gaps (SG) separating said sloping MP sides from said side shields (SS); wherein said two SG intersect said WG and said LG symmetrically, forming a continuous layer completely surrounding said trapezoidal face of said MP; wherein said WG is filled uniformly with non-magnetic, non-conducting material; wherein said two SG and said LG are filled with non-magnetic, non-conducting material in which are completely embedded N sequentially formed and nested thin layers of magnetic material that are completely surrounded by layers of said non-magnetic, non-conducting material, wherein each of said N thin layers of magnetic material is formed as three continuously connected linear edges that partially surround and are parallel to edges of said MP trapezoidal face with the exception of said WG trailing edge; whereby said three connected linear edges of each of said N thin layers of magnetic material are parallel to respective adjacent ones of said sloping sides and said leading edge of said MP trapezoidal face, and are parallel to but separated from inner edges of said SS and LS by layers of non-magnetic, non-conducting material and do not touch adjacent magnetic layers where such layers exist, and terminate at, but do not extend into said WG non-magnetic, non-conducting material, whereby if N is greater than 1, said N thin layers of magnetic material are nested symmetrically within each other and are open at said WG; wherein said gap structure is adaptable to various writing frequencies as said structure comprising N thin, embedded, nested layers has higher permeability at low frequencies and lower permeability at high frequencies and writability of said PMR is enhanced by said variability. 2 . The perpendicular magnetic recording (PMR) writer of claim 1 wherein N=1 and there is one said completely embedded layer of magnetic material and it does not touch either the MP or the surrounding shield material. 3 . The perpendicular magnetic recording (PMR) writer of claim 1 wherein N=2 and there are two said completely embedded layers of magnetic material that are nested symmetrically within each other and wherein neither embedded layer touches the other or the magnetic material of the MP or said shields. 4 . The perpendicular magnetic recording (PMR) writer of claim 1 wherein the thickness of each completely embedded magnetic layer is between 1 nm and 50 nm. 5 . The perpendicular magnetic recording (PMR) writer of claim 2 wherein the single magnetic layer is separated from the shields and the MP by a non-magnetic, non-conducting layer of thickness between 1 nm and 50 nm adjacent to each side of said magnetic layer. 6 . A perpendicular magnetic recording (PMR) writer configured for TAMR operation and having an adaptive gap structure, comprising: the perpendicular magnetic recording (PMR) writer with adaptive gap structure of claim 1 a source of optical radiation; a waveguide configured to carry said optical radiation to said ABS a near-field transducer configured to couple to said waveguide and generate near-field energy at a recording spot on a magnetic recording medium said PMR of claim 1 , providing a magnetic flux for recording at said spot. 7 . A perpendicular magnetic recording (PMR) writer configured for MAMR operation and having an adaptable gap structure, comprising: the perpendicular magnetic recording (PMR) writer with adaptive gap structure of claim 1 a source of microwave radiation; a transducer configured to couple to said microwave radiation and generate microwave energy in the form of resonant precessional motion of magnetic recording bits at a recording spot on a magnetic recording medium; said PMR of claim 1 , providing a magnetic flux for recording at said spot. 8 . A perpendicular magnetic recording (PMR) writer configured for MAMR operation and having an adaptable gap structure, comprising: the perpendicular magnetic recording (PMR) writer with adaptive gap structure of claim 1 a source of microwave radiation; a transducer configured to couple to said microwave radiation and generate microwave energy at a recording spot on a magnetic recording medium; the PMR of claim 1 further configured for spin-assisted writing wherein a spin-torque layer formed within a write gap, assists a flux guiding layer (FGL), also within said write gap, to flip a magnetization in an opposite direction to a write-gap magnetic field, thereby strengthening the magnetic field emerging from the ABS surface of the MP and returning through the trailing shield, thereby providing an enhanced magnetic flux for recording at said spot. said PMR of claim 1 providing said enhanced magnetic flux. 9 . A head-gimbal assembly, comprising: the TAMR-configured read/write head of claim 6 a suspension that elastically supports said TAMR-configured read/write head, a flexure affixed to said suspension and a load beam having one end attached to said flexure and another end attached to a base plate. 10 . A HDD (Hard Disk Drive), comprising: the head gimbal assembly of claim 9 a magnetic recording medium positioned opposite to said slider-mounted PMR; a spindle motor that rotates and drives said magnetic recording medium; a device that supports the slider and that positions said slider relative to said magnetic recording medium. 11 . A head-gimbal assembly, comprising: the MAMR-configured read/write head of claim 8 a suspension that elastically supports said TAMR-configured read/write head, a flexure affixed to said suspension and a load beam having one end attached to said flexure and another end attached to a base plate. 12 . A HDD (Hard Disk Drive), comprising: the head gimbal assembly of claim 11 a magnetic recording medium positioned opposite to said slider-mounted PMR; a spindle motor that rotates and drives said magnetic recording medium; a device that supports the slider and that positions said slider relative to said magnetic recording medium. 13 . A head-gimbal assembly, comprising: the MAMR-configured read/write head of claim 7 a suspension that elastically supports said TAMR-configured read/write head, a flexure affixed to said suspension and a load beam having one end attached to said flexure and another end attached to a base plate. 14 . A HDD (Hard Disk Drive), comprising: the head gimbal assembly of claim 13 a magnetic recording medium positioned opposite to said slider-mounted PMR; a spindle motor that rotates and drives said magnetic recording medium; a device that supports the slider and that positions said slider relative to said magnetic recording medium.

Assignees

Inventors

Classifications

  • Microwave assisted recording · CPC title

  • G11B5/315Primary

    Shield layers on both sides of the main pole, e.g. in perpendicular magnetic heads · CPC title

  • specially adapted for magnetisations perpendicular to the surface of the record carrier · CPC title

  • G11B5/23Primary

    Gap features {(G11B5/1871, G11B5/1875, G11B5/265, G11B5/29, G11B5/488 and subgroups, G11B5/4907 and subgroups, G11B5/4969 and subgroups take precedence)} · CPC title

  • Shielding of head against electric or magnetic fields · CPC title

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What does patent US2022165300A1 cover?
A PMR (perpendicular magnetic recording) write head configured for thermally assisted magnetic recording (TAMR) and microwave assisted magnetic recording (MAMR) is made adaptive to writing at different frequencies by inserting thin layers of magnetic material into the material filling the side gaps (SG) between the magnetic pole (MP) and the side shields (SS). At high frequencies, the thin magn…
Who is the assignee on this patent?
Headway Tech Inc
What technology area does this patent fall under?
Primary CPC classification G11B5/315. Mapped technology areas include Physics.
When was this patent published?
Publication date Thu May 26 2022 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).