Title :
Feasibility Analysis of On-Wafer Microfocal Lens for Optical Coupling in Heat-Assisted Magnetic Recording Systems
Author :
Lingyun Miao ; Hsiang, T.Y.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Rochester, Rochester, NY, USA
Abstract :
An on-wafer microfocal lens was previously reported to assist external optical coupling in heat-assisted magnetic recording (HAMR) systems. In this paper, we report a thorough analysis of lens performance over the range of industry practical wavelengths (400-830 nm) with discussion on the beam polarization dependence. Manufacturing tolerance of the on-wafer microfocal lens is also evaluated based on industry conventional top-down fabrication process. The 3-D numerical simulation results show that the lens design is robust for industry manufacturability. Further comparison of the focal spot sizes and dimensions of other reported optical components shows that high-efficiency internal optical coupling is also achievable between the lens output beam and other near-field transducers. Thus, the on-wafer microfocal lens could potentially provide a low-cost large-volume manufacturing solution for HAMR optical coupling in the hard disk drive industry.
Keywords :
disc drives; hard discs; magnetic recording; microlenses; 3D numerical simulation; HAMR systems; beam polarization dependence; external optical coupling; focal spot sizes; hard disk drive industry; heat-assisted magnetic recording systems; high-efficiency internal optical coupling; industry conventional top-down fabrication process; industry manufacturability; low-cost large-volume manufacturing solution; manufacturing tolerance; near-field transducers; on-wafer microfocal lens feasibility analysis; optical components; wavelength 400 nm to 830 nm; Heat-assisted magnetic recording; Industries; Laser beams; Lenses; Magnetic heads; Optical coupling; Solids; Heat-assisted magnetic recording (HAMR); microfocal lens; optical coupling;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2014.2307833