Browse > Article
http://dx.doi.org/10.4283/JMAG.2014.19.3.237

Low Writing Field on Perpendicular Nano-ferromagnetic  

Wibowo, Nur Aji (Physics Department, Faculty of Science and Mathematics, Satya Wacana Christian University)
Rondonuwu, Ferdy S. (Physics Department, Faculty of Science and Mathematics, Satya Wacana Christian University)
Purnama, Budi (Physics Department, Faculty of Mathematics and Natural Science, Sebelas Maret University)
Publication Information
Abstract
For heat-assisted magnetic recording, magnetization reversal probabilities of nano-Pt/MnSb multilayer film with perpendicular magnetic anisotropy under thermal pulse activation were investigated numerically by solving the Landau-Lifshift Gilbert Equation. Magnetic parameters of nano-Pt/MnSb multilayer were used with anisotropy energy of $3{\times}10^5$ erg/cc and saturation magnetization of 2100 G, which offer more than 10 y data stability at room temperature. Scheme of driven magnetic field and thermal pulse on writing mechanism was designed closely to real experiment. This study found that the chosen material is potential to be used as a high density magnetic storage that requires low writing field less than two-hundreds Oersted through definite heating and cooling interval. The possibility of writing data with a zero driven magnetic field also became an important result. Further study is recommended on the thickness of media and thermal pulse design as the essential parameters of the reversal magnetization.
Keywords
HAMR; magnetization; reversal probability; cooling time; writing field;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Sabine Alebrand, Matthias Gottwald, Michel Hehn, Daniel Steil, Mirko Cinchetti, Daniel Lacour, Eric E. Fullerton, Martin Aeschlimann, and Stephane Mangin, Appl. Phys. Lett. 101, 162408 (2012).   DOI   ScienceOn
2 Koji Matsumoto, Akhihiro Inomata, and Shin-ya Hasigawa, Fujitsu Scientific & Technical Journal 42, 158 (2006).
3 S. H. Yoon, and K. M. Krishnan, J. Appl. Phys. 109, 07B534 (2011).   DOI
4 Ralph Skomski, J. Appl. Phys. 101, 09B104 (2007).   DOI
5 Hiroyuki Katayama, Shinzo Sawamura, Yasushi Ogimoto, Junsaku Nakajima, Kunio Kojima, and Kenji Ohta, J. Magn. Soc. Japan 23, 233 (1999).
6 Sari Shafidah Binte Shafiee, Moulay Rachid Elidrissi, Hong Tao Wang, Kwaku Eason, Rathna Kumar Radhakrishnan, Kheong Sann Chan, and Yong Liang Guan, J. Appl. Phys. 111, 07B714 (2012).   DOI
7 R. H. Victora, IEEE Trans. Magn. 49, 2 (2013).   DOI   ScienceOn
8 G Vinai, J Moritz, S Bandiera, I L Prejbeanu, and B Dieny, J. Phys. D: Appl. Phys. 46, 322001 (2013). Doi:10.1088/0022-3727/46/32/322001.   DOI   ScienceOn
9 B. X. Xu, Z. J. Liu, R. Ji, Y. T. Toh, J. F. Hu, J. M. Li, J. Zhang, K. D. Ye, and C. W. Chia, J. Appl. Phys. 111, 07B701 (2012).   DOI
10 O. Ozatay, T. Hauet, S. H. Florez, J. A. Katine, A. Moser, J.-U. Thiele, L. Folks, and B. D. Terris, Appl. Phys. Lett. 95, 172502 (2009).   DOI   ScienceOn
11 K. J. Lee and T. D. Lee, J. Appl. Phys. 91, 7706 (2002).   DOI   ScienceOn
12 Budi Purnama, Thermally Assisted Magnetization Reversal in Perpendicularly Magnetized Thin Film, (Doctoral Thesis), Electronics Department Graduated School of Information Science and Electrical Engineering, Kyushu University, Japan (2009), pp. 12-43.
13 T. Schrelf, J. Fidler, D. Suess, W. Scholz, and V. Tsiantos, Handbook of Advanced Magnetic Materials: Micromagnetic Simulation of Dynamic and Thermal Effects. Volume I, Chanpter 4, Tsinghua University Press, China (2006) pp. 128-146.
14 D. P. Agustina Candra, Suryasatriya Trihandaru, and Nur Aji Wibowo, Int. J. Sci. Res. 2, 48 (2013).
15 I. Galanakis, J. Phys.: Conden. Matt. 14, (2002). Doi: 10.1088/0953-8984/14/25/303.   DOI   ScienceOn
16 Koichiro Inomata, Naomichi Ikeda, Nobuki Tezuka, Ryogo Goto, Satoshi Sugimoto, Marek Wojcik, and Eva Jedryka, Science and Technology of Advanced Materials 9, (2008). Doi: 10.1088/1468-6996/9/1/014101.   DOI   ScienceOn
17 T. Kawanabe, and M. Naoe, Journal de Physique, Colloque C8, Supplement au no 12, Tome 49, C8-1783-1784 (1988). Available at http://dx.doi.org/10.1051/jphyscol: 1988 8813.   DOI
18 Budi Purnama, Masashi Koga, Yukio Nozaki, and Kimihide Matsuyama, J. Magn. Magn. Mater. 321, 1325 (2009).   DOI   ScienceOn
19 S. H. Lim, and H. J Kim, J. Magn. 6, 109 (2001).
20 N. A. Wibowo, and B. Purnama, IACSIT Int. J. Eng. Technol. 3 (2011). Doi: 10.7763/IJET.2011.V3.256.   DOI
21 T. A. Ostler, J. Barker, R. F. L. Evans, R. W. Chantrell, U. Atxitia, O. Chubykalo-Fesenko, S. El Moussaoui, L. Le Guyader, E. Mengotti, L. J. Heyderman, F. Nolting, A. Tsukamoto, A. Itoh, D. Afanasiev, B. A. Ivanov, A. M. Kalashnikova, K. Vahaplar, J. Mentink, A. Kirilyuk, Th. Rasing, and A. V. Kimel, Nature Communications 3, 666 (2012). Doi: 10.1038/ncomms1666.   DOI   ScienceOn
22 U. Kilic, G. Finocchio, T. Hauet, S. H. Florez, G. Aktas, and O. Ozatay, Appl. Phys. Lett. 101, 252407 (2012).   DOI   ScienceOn
23 Mark H. Kryder, Edward C. Gage, Terry W. McDaniel, William A. Challener, Robert E. Rottmayer, Ganping Ju, Yiao-Tee Hsia, and M. Fatih Erden, Proceedings of the Institute of Electrical and Electronics Engineers (invited paper) 96, 11 (2008).
24 Keita Waseda, Ryosuke Doi, Budi Purnama, Satoru Yoshimura, Yukio Nozaki, and Kimihide Matsuyama, IEEE Trans. Magn. 44, 2483 (2008).   DOI   ScienceOn