After Hard Drives-What Comes Next?

被引:210
作者
Kryder, Mark H. [1 ]
Kim, Chang Soo [1 ]
机构
[1] Carnegie Mellon Univ, Dept Elect & Comp Engn, Ctr Data Storage Syst, Pittsburgh, PA 15213 USA
基金
美国安德鲁·梅隆基金会;
关键词
Emerging alternative nonvolatile memory; hard disk drive; NAND flash; DEVICES;
D O I
10.1109/TMAG.2009.2024163
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
There are numerous emerging nonvolatile memory technologies, which have been proposed as being capable of replacing hard disk drives (HDDs). In this paper, the prospects for these alternative technologies to displace HDDs in 2020 are analyzed. In order to compare technologies, projections were made of storage density and performance in year 2020 for both hard disks and the alternative technologies, assuming the alternative technologies could solve their remaining problems and assuming that hard drives would continue to advance areal density at a pace of about 40% per year, which would result in a two-disk 2.5-in disk drive that stores approximately 40 Terabytes and costs about $40. A major conclusion of the study is that to compete with hard drives on a cost per terabyte basis will be challenging for any solid state technology, because the ITRS lithography roadmap limits the density that most alternative technologies can achieve. Those technologies with the best opportunity have a small cell size and the capability of storing multiple bits per cell. Phase change random access memory (PCRAM) and spin transfer torque random access memory (STTRAM) appear to meet these criteria. PCRAMs are being marketed by at least one supplier and therefore appear to be closer to practical realization. On the other hand, STTRAMs would appear to have a performance edge assuming they, too, can be brought to market with multiple bits per cell. Although there are technologies that are not limited by the lithography roadmap and thus have greater areal density potential, they tend to be further from practical realization.
引用
收藏
页码:3406 / 3413
页数:8
相关论文
共 50 条
  • [21] Design and fabrication of a piezoelectric instrumented suspension for hard disk drives
    Kon, Stanley
    Oldham, Kenn
    Ruzicka, Ryan
    Horowitz, Roberto
    SMART STRUCTURES AND MATERIALS 2006: SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL , AND AEROSPACE SYSTEMS, PTS 1 AND 2, 2006, 6174
  • [22] Study of aerodynamic characteristics in hard disk drives by numerical simulation
    Shimizu, H
    Tokuyama, M
    Imai, S
    Nakamura, S
    Sakai, K
    IEEE TRANSACTIONS ON MAGNETICS, 2001, 37 (02) : 831 - 836
  • [23] Thermal Characteristics of Enterprise-Class Hard Disk Drives
    Tan, Cheng Peng
    Yip, Teck Hong
    Tan, Di Teng Desmond
    IEEE TRANSACTIONS ON COMPONENTS PACKAGING AND MANUFACTURING TECHNOLOGY, 2011, 1 (06): : 868 - 872
  • [24] Experimental modeling and compensation of pivot nonlinearity in hard disk drives
    Yan, TH
    Lin, RM
    IEEE TRANSACTIONS ON MAGNETICS, 2003, 39 (02) : 1064 - 1069
  • [25] A novel sliding mode servo controller for hard disk drives
    Zhou, J
    Wang, Y
    Zhou, R
    Guo, G
    PROCEEDINGS OF THE 4TH WORLD CONGRESS ON INTELLIGENT CONTROL AND AUTOMATION, VOLS 1-4, 2002, : 3272 - 3277
  • [26] Analysis of spring-back deformation of head-mounting-block after ball-swaging in hard disk drives
    Koganezawa, Shinji
    MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS, 2015, 21 (01): : 277 - 287
  • [27] Analysis of spring-back deformation of head-mounting-block after ball-swaging in hard disk drives
    Shinji Koganezawa
    Microsystem Technologies, 2015, 21 : 277 - 287
  • [28] Vibration protection of laptop hard disk drives in harsh environmental conditions
    Ashkan Haji Hosseinloo
    Microsystem Technologies, 2017, 23 : 4427 - 4433
  • [29] Robust Optimum Design of Thrust Oil Bearing for Hard Disk Drives
    Sunami, Yuta
    Hashimoto, Hiromu
    JOURNAL OF JAPANESE SOCIETY OF TRIBOLOGISTS, 2011, 56 (10) : 639 - 648
  • [30] Analysis of slip characteristics between dimple and flexure in hard disk drives
    Yonghyun Lee
    Seokhwan Kim
    Ki-Hoon Kim
    No-Cheol Park
    Young-Pil Park
    Cheol-Soon Kim
    Kyoung-Su Park
    Microsystem Technologies, 2011, 17 : 1067 - 1081