Non-traditional, non-volatile memory based on switching and retention phenomena in polymeric thin films

被引:20
|
作者
Krieger, JH [1 ]
Spitzer, SM [1 ]
机构
[1] Boston Res Labs, Spansion LLC, Woburn, MA 01801 USA
关键词
non-volatile memory; conjugated polymer; superionic material; polymer doping; ionic motion;
D O I
10.1109/NVMT.2004.1380823
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
During the last few years significant efforts have been undertaken in the search to understand the physical principles and to realize and implement the "universal memory". This is an idealization, which would combine high-speed recording and erasing (dynamic memory) and long retention time (non-volatile memory) into one memory. Our view of the ideal memory cell is a two terminal device, which consists of two electrodes with the active layer(s) between them. The material of the active layer must change its resistance dependent on the magnitude and polarity of the applied electric field and retain this resistance value after removal of the electric field. There are many published reports on the effects of switching and memory in various thin film systems such as: inorganic and organic dielectrics, inorganic and organic semiconductor materials, polymeric materials, etc. This paper focuses on the physical properties of conjugated polymers and related materials. A portion of this paper addresses the properties of superionic materials and their ability to transport ions to the active film. Emphasis is placed on the phenomena of electronic drift, solid-state ionic mobility, ionic injection and doping.
引用
收藏
页码:121 / 124
页数:4
相关论文
共 50 条
  • [31] Graphene Based Non-Volatile Memory Devices
    Wang, Xiaomu
    Xie, Weiguang
    Xu, Jian-Bin
    ADVANCED MATERIALS, 2014, 26 (31) : 5496 - 5503
  • [32] Non-volatile memory based on silicon nanoclusters
    Yu. N. Novikov
    Semiconductors, 2009, 43 : 1040 - 1045
  • [33] Non-volatile memory based on solid electrolytes
    Kozicki, MN
    Gopalan, C
    Balakrishnan, M
    Park, M
    Mitkova, M
    2004 NON-VOLATILE MEMORY TECHNOLOGY SYMPOSIUM, PROCEEDINGS, 2004, : 10 - 17
  • [34] Diffusion in multi-component polymeric systems: Diffusion of non-volatile species in thin films
    M. Müller
    M. Kind
    R. Cairncross
    W. Schabel
    The European Physical Journal Special Topics, 2009, 166 : 103 - 106
  • [35] Diffusion in multi-component polymeric systems: Diffusion of non-volatile species in thin films
    Mueller, M.
    Kind, M.
    Cairncross, R.
    Schabel, W.
    EUROPEAN PHYSICAL JOURNAL-SPECIAL TOPICS, 2009, 166 : 103 - 106
  • [36] Developments of non-volatile memory
    Panov, Ivan V.
    Kalinin, Sergey V.
    EDM 2006: 7TH ANNUAL INTERNATIONAL WORKSHOP AND TUTORIALS ON ELECTRON DEVICES AND MATERIALS, PROCEEDINGS, 2006, : 15 - 17
  • [37] Non-volatile memory challenge
    Dax, Mark
    Semiconductor International, 1997, 20 (10): : 84 - 86
  • [38] Dependable Non-Volatile Memory
    Martens, Arthur
    Scholz, Rouven
    Lindow, Phil
    Lehnfeld, Niklas
    Kastner, Marc A.
    Kapitza, Ruediger
    SYSTOR'18: PROCEEDINGS OF THE 11TH ACM INTERNATIONAL SYSTEMS AND STORAGE CONFERENCE, 2018, : 1 - 12
  • [39] Nanocrystals for non-volatile memory
    不详
    ELECTRONICS WORLD, 2000, 106 (1776): : 914 - 914
  • [40] NON-VOLATILE SEMICONDUCTOR MEMORY
    KLEIN, R
    TCHON, WE
    MICROPROCESSING AND MICROPROGRAMMING, 1982, 10 (2-3): : 129 - 138