A conventional heat assisted magnetic recording (HAMR) transducer typically includes at least a waveguide, a near-field transducer (NFT), a main pole and a coil for energizing the main pole. The conventional HAMR transducer uses light, or energy, received from a conventional laser in order to write to a magnetic recording media. Light from the laser is incident on and coupled into the waveguide. Light is guided by the conventional waveguide to the NFT 20 near the ABS. The NFT focuses the light to magnetic recording media (not shown), such as a disk. This region is thus heated. The main pole is energized and field from the pole tip is used to write to the heated portion of the recording media.
Although the conventional HAMR transducer functions, there are drawbacks. During use, the NFT and surrounding region, including the main pole tip and waveguide, may be subjected to very high temperatures. As a result, the structure and performance of the NFT, waveguide and/or write pole may be degraded. Performance and reliability of the conventional HAMR transducer may thus be adversely affected.
The HAMR disk drive 100 includes media 102, a slider 110, a laser subassembly 112 and a HAMR transducer 120. Additional and/or different components may be included in the HAMR disk drive 100. Although not shown, the slider 110, and thus the laser assembly 112 and HAMR transducer 120 are generally attached to a suspension (not shown). The laser assembly 112 includes a laser 114 and a submount 116. The submount 116 is a substrate to which the laser 114 may be affixed for improved mechanical stability, ease of manufacturing and better robustness. The laser 114 may be a chip such as a laser diode or other laser.
The HAMR transducer 120 is fabricated on the slider 110 and includes an air-bearing surface (ABS) proximate to the media 102 during use. In general, the HAMR write transducer 120 and a read transducer are present in the HAMR head. However, for clarity, only the HAMR write transducer 120 is shown. As can be seen in
One or more diffusion barrier layers 170 and 180 may also be present. The diffusion barrier 170 is adjacent to the bottom of the main pole 160 and resides between the main pole 160 and the NFT 130. In some embodiments, the diffusion barrier 170 adjoins the bottom of the main pole 160. The diffusion barrier 180 resides adjacent to the sides of the main pole 160. In the embodiment shown, the diffusion barrier 180 is at least at the back of the main pole. In some embodiments, the diffusion barrier layer 180 is adjacent to the sides of the main pole 160. The diffusion barrier layer 180 may be adjacent to both the back and sides of the main pole 160. In some embodiments, the diffusion barrier 180 adjoins the sides and/or back of the main pole 160. Although the structures 170 and 180 are both diffusion barriers, the structures 170 and 180 may be configured to reduce or prevent diffusion of different materials. In some embodiments, diffusion barrier layers 170 and 180 are present. In other embodiments, one of the diffusion barrier layers 170 or 180 may be omitted.
The diffusion barrier layer 170 is desired to insulate the write pole 160 from diffusion of material(s) such as those in the NFT 130. The diffusion barrier layer 170 may also prevent or reduce diffusion of materials used in a heat sink and/or heat spreader (not shown in
In contrast, the diffusion barrier layer 180 may include a barrier to diffusion of constituent(s) of the main pole 160. Thus, one or more materials in the main pole 160 may be prevented from diffusing to the surrounding dielectric. For example, the diffusion barrier layer 180 be a barrier to diffusion of Fe in the main pole 160. For example, the diffusion barrier layer 180 may include at least one of W and Ru. In some embodiments, the diffusion barrier layer 180 is a single layer. In other embodiments, the diffusion barrier layer 180 may be a multilayer including multiple sublayers. For example, the second diffusion barrier layer 180 may include a W sublayer and a Ru sublayer on the W sublayer. In some embodiments, the same material(s) may be used for the diffusion barrier layer 170 as the diffusion barrier layer 180. For example, W may be used for both structures 170 and 180.
The HAMR disk drive 100 may exhibit enhanced performance. More specifically, the presence of the diffusion barrier layer 170 and/or 180 may improve the HAMR transducer 100. The diffusion barrier layer 170 may prevent or reduce diffusion of portions of the NFT 130 or other analogous materials into the main pole 160. Similarly, the diffusion barrier layer 180 may prevent or reduce diffusion of portions of the main pole 160 into the surrounding structures. Thus, intermixing of the layers of the transducer 120 may be reduced. The desired properties of components of the transducer 120 may be maintained and failure of the components prevented. Thus, performance and reliability of the HAMR transducer 130 and the disk drive 100 may be enhanced.
The HAMR transducer 120 includes NFT 130, waveguide 140, write pole 160, return pole 162 and coils 145. The coil(s) 145 may be spiral, or pancake, coils. In other embodiments, the coil(s) 145 may be solenoidal. The coil(s) 145 may be used to energize the write pole 140 during writing.
The waveguide 140 directs energy from the laser 114 to the ABS. The waveguide 140 includes cladding 144 and 146 as well as core 142. The NFT 130 is optically coupled with the waveguide 140 and receives energy from the core 142. The NFT 130 is proximate to the ABS. For example, the NFT 130 is shown as having a surface occupying a portion of the ABS. The NFT 130 is depicted as including a pin 132 and a disk 134. The pin 132 is between the disk 134 and the ABS. The disk 134 is recessed from the ABS and thus is shown by a dashed line in the ABS view of
The write pole 160 is configured to write to the region of the media heated by the NFT 130. In some embodiments, the write pole 160 does not extend more than across the disk 134 of the NFT in the track width direction in the pole tip region. Thus, for example, the width of the write pole 160 in the track width direction at the ABS may be less than two hundred nanometers.
In the embodiment shown, a heat sink 150 and heat spreader 152 are also included in the transducer 120. In alternate embodiment, one or both structures 150 and/or 152 may be omitted. The heat sink 150 is thermally coupled with the NFT 130 and the main pole 160. The heat spreader 152 may also be thermally connected with the NFT 130 and the main pole 160. The heat sink 150 and heat spreader 152 may be used in thermal management for the transducer 120. Thus, the heat sink 150 and heat spreader 152 are desired to have a high thermal conductivity. For example, a material such as gold or a gold alloy may be used for the heat sink 150 and/or the heat spreader 152. The materials used for the heat sink 150 and heat spreader 152 may be similar to materials used in the NFT 130. The heat sink 150 and heat spreader 152 may be used to conduct heat from the NFT 130 and allow for heat dissipation over a wider area of the HAMR transducer 120.
Diffusion barrier layers 170 and 180 are also shown in
The diffusion barrier layer 180 resides on the back and sides of the main pole 160, as shown in
In some embodiments, the diffusion barrier layer(s) 170 and/or 180 may be configured to reduce or prevent corrosion, particularly corrosion that is galvanic in nature. For example, the barrier layer 170 and/or 180 may be a dielectric layer or include a dielectric layer. Such a dielectric layer may be on the order of at least five and not more than ten nanometers. For example, metal oxides such as Ta2O5, Nb2O5 and/or V2O5 might be used. In other embodiments, multilayers of different oxide stacks, ternary oxides, combinations of oxides and metals or conductive metal nitrides and/or silicides such as TaN, TiN, and/or WSi2 might be used. Insertion of such a dielectric layer may break or inhibit galvanic coupling that may be a source of corrosion. Corrosion of the main pole 160 may thus be reduced or eliminated. If the diffusion barrier layers are so configured, the diffusion barrier layers 170 and/or 180 may be considered to be corrosion barrier layers. In embodiments in which the layers 170 and/or 180 are multilayers, the layers in the multilayer may have different functions. For example, one layer might be a metallic diffusion barrier layer, while another layer may be a corrosion barrier layer. In other embodiments, a single dielectric may perform the dual functions of a diffusion barrier and a corrosion barrier. Thus, the diffusion barrier layers 170 and/or 180 may be both diffusion barriers and corrosion barriers in some embodiments.
The HAMR transducer 120 may exhibit enhanced performance due to the presence of the diffusion barrier layer 170 and/or 180. The diffusion barrier layer 170 may prevent or reduce diffusion of portions of the NFT 130, heat sink 150 and/or heat spreader 152 or other analogous materials into the main pole 160. Similarly, the diffusion barrier layer 180 may prevent or reduce diffusion of portions of the main pole 160 into the surrounding structures such as the dielectric 146. Thus, intermixing of the layers of the transducer 120 may be reduced. Thus, performance and reliability of the HAMR transducer 120 and the disk drive 100 may be enhanced. In some embodiments, corrosion of the pole may also be reduced by the diffusion barrier layer(s) 170 and/or 180.
In the embodiment shown in
The HAMR transducer 120′ may share the benefits of the transducer 120. For example, the presence of the diffusion barrier layer(s) 170′ and/or 180′ may prevent or reduce diffusion of constituents of the HAMR transducer 120′. Thus, intermixing of the layers of the transducer 120′ may be reduced. Thus, performance and reliability of the HAMR transducer 120′ and the disk drive 100 may be enhanced. In addition, the layer 174 and/or 184 may be a corrosion barrier layer while the layer 172 and/or 182 may be a diffusion barrier layer. Thus, the diffusion barrier layer(s) 170′ and/or 180′ may function as both a diffusion barrier and a corrosion barrier.
In the embodiment shown in
The HAMR transducer 120″ may share at least some of the benefits of the transducer(s) 120 and/or 120. The presence of the diffusion barrier layer 170 may prevent or reduce diffusion of constituents of the HAMR transducer 120″. For example, diffusion of constituents of the heat spreader 152, heat sink 150, and/or NFT 130 into the pole may be reduced or eliminated. Thus, intermixing of the layers of the transducer 120″ may be reduced. Thus, performance and reliability of the HAMR transducer 120″ and the disk drive 100 may be enhanced.
In the embodiment shown in
The HAMR transducer 120′″ may share at least some of the benefits of the transducer(s) 120, 120′ and/or 120″. The presence of the diffusion barrier layer 180 may prevent or reduce diffusion of constituents of the HAMR transducer 120′″. For example, diffusion of material(s) in the main pole 160 such as Fe, into the dielectric 146 may be reduced or eliminated. Thus, intermixing of the layers of the transducer 120′″ may be reduced. Thus, performance and reliability of the HAMR transducer 120′″ and the disk drive 100 may be enhanced.
In the embodiment shown in
The HAMR transducer 120″″ may share the benefits of the transducers 120, 120′, 120″ and/or 120′″. For example, the presence of the diffusion barrier layer(s) 170 and/or 180 may prevent or reduce diffusion of constituents of the HAMR transducer 120″″. Thus, intermixing of the layers of the transducer 120″″ may be reduced. Thus, performance and reliability of the HAMR transducer 120″″ and the disk drive 100 may be enhanced.
In the embodiment shown in
The HAMR transducer 120′″″ may share the benefits of the transducers 120, 120′, 120″, 120′″ and/or 120″″. For example, the presence of the diffusion barrier layer(s) 170 and/or 180 may prevent or reduce diffusion of constituents of the HAMR transducer 120′″″. Thus, intermixing of the layers of the transducer 120′″″ may be reduced. Thus, performance and reliability of the HAMR transducer 120′″″ and the disk drive 100 may be enhanced. Various configurations of the HAMR transducer, including diffusion barrier layers have been described herein. In other embodiments, one or more features of the transducers 120, 120′, 120″, 120′″, 120″″ and/or 120′″″ may be combined.
The return pole 162 is optionally provided, via step 202. In some embodiments, step 202 includes forming the pedestal at the ABS for the return pole 162. An insulator may also be provided on the first pole. The waveguide 140 may be provided, via step 204. Step 204 generally includes forming cladding layers surrounding a core layer. The NFT 130 may be provided, via step 206. The NFT 130 is typically a metal disk 134 as well as a pin 132. Step 206 may thus include multiple substeps. For example, the material(s) for the disk 134 and/or pin 132 may be deposited, a mask covering the portions of the material(s) corresponding to the NFT 130 provided and the exposed portions of the material(s) may be lifted off. In other embodiments, a lift-of process may be used for forming the disk 134 and/or the pin 132.
The heat sink 150 and/or heat spreader 152 are optionally provided, via step 208. Step 208 may include depositing and patterning high thermal conductivity material(s), such as Au. The main pole 160 is provided, via step 210. Step 210 typically includes multiple deposition, masking and removal steps. Formation of the leading surface, leading and/or trailing bevels, an NFT-facing surface parallel to the top of the NFT, the ABS-facing surface and/or other features of the main pole 160 may also be completed as part of step 210.
One or both of the diffusion barrier layers 170/170′ and/or 180/180′ are formed, via step 212. Formation of the diffusion barrier layer 170/170′ in step 212 may occur before formation of the main pole 160 in step 210. Thus, at least part of step 212 may be interleaved with or occur before at least part of step 212. The diffusion barrier 180/180′ may be formed before or after formation of the main pole 160. For example, the diffusion barrier 180/180′ may be deposited in a trench and the main pole provided in the trench. Alternatively, at least part of the main pole 160 may be formed first and the diffusion barrier layer 180/180′ provided on the main pole 160.
The coil(s) 145 may be provided, via step 214. Step 214 may include multiple depositing and patterning steps such that the turns on both sides of the main pole 160 are fabricated. The shield 192 may also be fabricated, via step 216. Step 216 may include manufacturing the pedestal 193. Fabrication of the transducer may then be completed, via step 218.
Using the method 200, the HAMR transducer 120, 120′, 120″, 120′″, 120″″ and/or 120′″″ may be fabricated. The benefit(s) of one or more of the HAMR transducer(s) 120, 120′, 120″, 120′″, 120″″ and/or 120′″″ may thus be achieved.
The layer(s) for the first barrier layer are deposited, via step 222. Step 222 is optional and performed only if a bottom barrier layer, such as the barrier layer 170/170′ depicted in
A seed layer for the main pole is provide, via step 224. In some embodiments, step 224 includes providing a magnetic seed layer. In some embodiments, a multilayer seed may be provided in step 224. For example, a bilayer of NiCr and CoFe may be deposited. The material(s) for the main pole are provided, via step 226. In some embodiments, step 226 includes providing a photoresist mask that has an aperture corresponding to the main pole. At least part of the aperture has the shape and location desired for the main pole. The magnetic materials for the main pole are also provided. For example, the main pole materials may be plated in step 224.
The mask 344 is removed, via step 228. Step 228 may include performing a photoresist strip. Also in step 228, portions of the seed layer 342 exposed after the removal of the mask 344 are removed. For example, an ion beam etch may be performed after the photoresist mask 344 is removed.
The layer(s) for the second barrier layer are deposited, via step 230. Step 230 is optional and performed only if another barrier layer, such as the barrier layer 180/180′ depicted in
The portion of the barrier layers 362 and 364 that are on the top of the main pole material(s) 350 are removed, via step 232. In some embodiments, step 232 is an anisotropic removal step. Thus, the part of the barrier layers 362 and 364 on vertical or near vertical surfaces remain, while the part of the barrier layers 362 and 364 on horizontal or substantially horizontal surfaces is removed. In this case, a horizontal surface is substantially perpendicular to the ABS. For example step 232 may include performing an ion beam etch at an angle near perpendicular to the horizontal surface. In some embodiments, the ion beam may be at an angle of not more than ten degrees from normal to the horizontal surfaces.
A dielectric spacer layer is deposited, via step 234. Step 234 may include depositing a layer of silicon dioxide. For example, at least twenty nanometers and not more than eighty nanometers may be deposited. In some embodiments, nominally sixty nanometers are deposited.
The region around the main pole material(s) 350 may be covered by a mask and a field etch may be carried out, via step 236. For example, a reactive ion etch may be performed in step 236. Thus, unwanted portions of the additional dielectric 370 and barrier layer(s) 340, 362 and/or 364 may be removed from the field.
A dielectric refill step is performed, via step 238. The mask 372 may thus be removed and a dielectric deposited. In some embodiments, silicon dioxide is deposited. For example, physical vapor deposition may be used.
A planarization is performed, via step 240. In some embodiments, a chemical mechanical planarization (CMP) is carried out in step 240. Thus, the topography of the transducer 300 may be planarized. In addition, a portion of the main pole material(s) 350 may be removed to provide a pole of the desired height.
Using the method 220, the HAMR transducer 300 may be fabricated. Thus, the barrier layer 340 and/or the barrier layers 362 and 364 may be provided. The barrier layers 340, 362, and/or 364 may prevent or reduce interdiffusion of materials in the transducer 300 during operation. Performance and/or reliability of the transducer 300 may thus be improved.
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