Effects of Waveguide Refractive Index on Near-Field Transducer Efficiency in Heat-Assisted Magnetic Recording

被引:2
|
作者
Cen, Z. H. [1 ]
Xu, B. X. [1 ]
Toh, Y. T. [1 ]
Li, J. M. [1 ]
Ye, K. D. [1 ]
Zhang, J. [1 ]
机构
[1] Agcy Sci Technol & Res, Data Storage Inst, Singapore 117608, Singapore
关键词
Finite-difference time domain (FDTD) simulation; heat-assisted magnetic recording (HAMR); Si waveguide; transducer efficiency; waveguide refractive index; OPTICAL-ENERGY TRANSFER; THIN-FILM; ANTENNA;
D O I
10.1109/TMAG.2015.2437914
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In a heat-assisted magnetic recording (HAMR) system, optical power is delivered by the waveguide to interact with the near-field transducer. The influence of optical properties of waveguide core on transducer efficiency has been investigated by using finitedifference time domain simulations. It is observed that the waveguide core of large refractive index can improve transducer efficiency due to more effective exploitation of light power by the transducer. In addition, smaller power is absorbed by the transducer in a HAMR system of larger waveguide core refractive index during operation, which can result in better transducer thermal stability. With the knowledge of effects of large waveguide core refractive index, employing silicon (Si) waveguide in a HAMR system working at near-infrared wavelengths has been proposed to enhance transducer efficiency. Effects of Si waveguide core geometry on transducer performance have been analyzed. A high transducer efficiency of 9.2% at 1200 nm can be achieved in a HAMR system with a Si waveguide of optimized core size.
引用
收藏
页数:4
相关论文
共 50 条
  • [21] Enhancement of near-field light generated by metal nanodot on semiconductor substrate for heat-assisted magnetic recording heat source
    Katayama, Ryuichi
    Kasuya, Takayuki
    Sugiura, Satoshi
    Yoshizawa, Katsumi
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2015, 54 (09)
  • [22] Nanoscale Heating of the Near Field Transducer in Heat Assisted Magnetic Recording
    Budaev, Bair V.
    Bogy, David B.
    IEEE TRANSACTIONS ON MAGNETICS, 2015, 51 (04)
  • [23] Near-field assisted magnetic recording
    Miyanishi, S
    Iketani, N
    Takayama, K
    Innami, K
    Kitazawa, T
    Ogimoto, Y
    Murakami, Y
    Kojima, K
    Takahashi, A
    IEEE TRANSACTIONS ON MAGNETICS, 2005, 41 (10) : 2817 - 2821
  • [24] Tapered Waveguide Design for Heat-Assisted Magnetic Recording Applications
    Miao, Lingyun
    Hsiang, Thomas Y.
    IEEE TRANSACTIONS ON MAGNETICS, 2014, 50 (01)
  • [25] Design of plasmonic near-field transducers in heat-assisted magnetic recording: 1D Fourier approach
    Gan, C. H.
    Fernandez-Garcia, R.
    Hardy, M. J.
    Neira, A.
    Bance, S.
    Gubbins, M. A.
    PLASMONICS: DESIGN, MATERIALS, FABRICATION, CHARACTERIZATION, AND APPLICATIONS XIV, 2016, 9921
  • [26] Heat-assisted magnetic recording
    Rottmayer, Robert E.
    Batra, Sharat
    Buechel, Dorothea
    Challener, William A.
    Hohlfeld, Julius
    Kubota, Yukiko
    Li, Lei
    Lu, Bin
    Mihalcea, Christophe
    Mountfield, Keith
    Pelhos, Kalman
    Peng, Chubing
    Rausch, Tim
    Seigler, Michael A.
    Weller, Dieter
    Yang, XiaoMin
    IEEE TRANSACTIONS ON MAGNETICS, 2006, 42 (10) : 2417 - 2421
  • [27] Heat-assisted magnetic recording
    Gavrila, H.
    JOURNAL OF OPTOELECTRONICS AND ADVANCED MATERIALS, 2008, 10 (07): : 1796 - 1804
  • [28] Heat-assisted magnetic recording
    Pan, Liang
    Bogy, David B.
    NATURE PHOTONICS, 2009, 3 (04) : 186 - 187
  • [29] Heat-assisted magnetic recording
    Liang Pan
    David B. Bogy
    Nature Photonics, 2009, 3 : 189 - 190
  • [30] Magnetic Field Strength Measurements in Heat-Assisted Magnetic Recording
    Saunders, Douglas A.
    Zhou, Hua
    Rea, Chris
    Czoschke, Peter
    IEEE TRANSACTIONS ON MAGNETICS, 2019, 55 (12)