The "Millipede" -: More than one thousand tips for future AFM data storage

被引:409
作者
Vettiger, P [1 ]
Despont, M [1 ]
Drechsler, U [1 ]
Dürig, U [1 ]
Häberle, W [1 ]
Lutwyche, MI [1 ]
Rothuizen, HE [1 ]
Stutz, R [1 ]
Widmer, R [1 ]
Binnig, GK [1 ]
机构
[1] IBM Corp, Zurich Res Lab, Micro Nanomech Grp, CH-8803 Ruschlikon, Switzerland
关键词
D O I
10.1147/rd.443.0323
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
We report on a new atomic force microscope (AFM)-based data storage concept called the "Millipede" that has a potentially ultrahigh density, terabit capacity, small form factor, and high data rate. Its potential for ultrahigh storage density has been demonstrated by a new thermomechanical local-probe technique to store and read back data in very thin polymer films. With this new technique, 30-40-nm-sized bit indentations of similar pitch size have been made by a single cantilever/tip in a thin (50-nm) polymethylmethacrylate (PMMA) layer, resulting in a data storage density of 400-500 Gb/in.(2) High data rates are achieved by parallel operation of large two-dimensional (2D) AFM arrays that have been batch-fabricated by silicon surface-micromachining techniques. The very large scale integration (VLSI) of micro/nanomechanical devices (cantilevers/tips) on a single chip leads to the largest and densest 2D array of 32 x 32 (1024) AFM cantilevers with integrated write/read storage functionality ever built. Time-multiplexed electronics control the write/read storage cycles for parallel operation of the Millipede array chip. Initial areal densities of 100-200 Gb/in.(2) have been achieved with the 32 x 32 array chip, which has potential for further improvements. In addition to data storage in polymers or other media, and not excluding magnetics, we envision areas in nanoscale science and technology such as lithography, high-speed/large-scale imaging, molecular and atomic manipulation, and many others in which Millipede may open up new perspectives and opportunities.
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收藏
页码:323 / 340
页数:18
相关论文
共 23 条
  • [1] Ultrahigh-density atomic force microscopy data storage with erase capability
    Binnig, G
    Despont, M
    Drechsler, U
    Häberle, W
    Lutwyche, M
    Vettiger, P
    Mamin, HJ
    Chui, BW
    Kenny, TW
    [J]. APPLIED PHYSICS LETTERS, 1999, 74 (09) : 1329 - 1331
  • [2] BINNIG GK, 1999, Patent No. 147865
  • [3] BINNIG GK, 1999, Patent No. 147867
  • [4] Chui BW, 1997, TRANSDUCERS 97 - 1997 INTERNATIONAL CONFERENCE ON SOLID-STATE SENSORS AND ACTUATORS, DIGEST OF TECHNICAL PAPERS, VOLS 1 AND 2, P1085, DOI 10.1109/SENSOR.1997.635387
  • [5] VLSI-NEMS chip for AFM data storage
    Despont, M
    Brugger, J
    Drechsler, U
    Dürig, U
    Häberle, W
    Lutwyche, M
    Rothuizen, H
    Stutz, R
    Widmer, R
    Rohrer, H
    Binnig, G
    Vettiger, P
    [J]. MEMS '99: TWELFTH IEEE INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS, TECHNICAL DIGEST, 1999, : 564 - 569
  • [6] DESPONT M, 1999, IN PRESS SENSORS A A
  • [7] Future trends in hard disk drives
    Grochowski, Edward
    Hoyt, Roger F.
    [J]. IEEE Transactions on Magnetics, 1996, 32 (3 /2) : 1850 - 1854
  • [8] Lutwyche M, 1999, ELEC SOC S, V98, P423
  • [9] Lutwyche M, 1998, MICRO ELECTRO MECHANICAL SYSTEMS - IEEE ELEVENTH ANNUAL INTERNATIONAL WORKSHOP PROCEEDINGS, P8, DOI 10.1109/MEMSYS.1998.659720
  • [10] 5X5 2D AFM cantilever arrays a first step towards a Terabit storage device
    Lutwyche, M
    Andreoli, C
    Binnig, G
    Brugger, J
    Drechsler, U
    Häberle, W
    Rohrer, H
    Rothuizen, H
    Vettiger, P
    Yaralioglu, G
    Quate, C
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 1999, 73 (1-2) : 89 - 94