Si-Cu-Mg aluminum alloy substrate with dispersed primary-crystal silicon particles suppresses fluttering in thin media while maintaining uniform NiP plating.
Adding aluminum to a nickel-phosphorus-molybdenum coating suppresses micro-bulge formation during high-temperature processing.
Controlling the X-ray diffraction intensity ratio of ε-iron oxide powder in a magnetic layer reduces head sticking and improves data storage reliability.
An aromatic polymer coating on magnetic nanoparticles prevents layer intermixing and improves recording resolution.
Epsilon iron oxide magnetic layer uses controlled abrasive particle sizing to optimize surface exposure and signal quality.
A CPP-GMR element uses a Cu-InZnO nonmagnetic spacer layer to form a current-confined path structure.
A magnetic recording medium uses epsilon iron oxide powder with controlled particle sizes to ensure electromagnetic conversion.
Composite recording layers with encapsulated nanoparticles eliminate wear particles and head corrosion while achieving 1 nm recording resolution.
A magnetic recording medium with a thin magnetic layer and high perpendicular orientation improves servo signal reading accuracy.
Segmenting particles into encapsulated units prevents voids and intermixing, boosting signal-to-noise ratio.
An underlayer with encapsulated magnetic nanoparticles stabilizes the recording interface, reducing voids and improving signal-to-noise ratio.
An aluminum alloy substrate with specific silicon and nickel content maintains stiffness in thin profiles.
An aluminum alloy substrate with primary-crystal Si particles enhances stiffness and plating properties.
Segmenting the heat-sink layer into a nanoscale multilayer structure prevents roughening at high temperatures, stabilizing the near-field transducer.
A magnetic recording medium uses ε-iron oxide powder with controlled coercivity and surface roughness to enhance electromagnetic conversion.