A phase-change memory model for neuromorphic computing

被引:0
|
作者
机构
[1] [1,Nandakumar, S.R.
[2] Le Gallo, Manuel
[3] 1,Boybat, Irem
[4] Rajendran, Bipin
[5] Sebastian, Abu
[6] Eleftheriou, Evangelos
来源
| 1600年 / American Institute of Physics Inc.卷 / 124期
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Phase-change memory (PCM) is an emerging non-volatile memory technology that is based on the reversible and rapid phase transition between the amorphous and crystalline phases of certain phase-change materials. The ability to alter the conductance levels in a controllable way makes PCM devices particularly well-suited for synaptic realizations in neuromorphic computing. A key attribute that enables this application is the progressive crystallization of the phase-change material and subsequent increase in device conductance by the successive application of appropriate electrical pulses. There is significant inter- and intra-device randomness associated with this cumulative conductance evolution, and it is essential to develop a statistical model to capture this. PCM also exhibits a temporal evolution of the conductance values (drift), which could also influence applications in neuromorphic computing. In this paper, we have developed a statistical model that describes both the cumulative conductance evolution and conductance drift. This model is based on extensive characterization work on 10 000 memory devices. Finally, the model is used to simulate the supervised training of both spiking and non-spiking artificial neuronal networks. © 2018 Author(s).
引用
收藏
相关论文
共 50 条
  • [1] A phase-change memory model for neuromorphic computing
    Nandakumar, S. R.
    Le Gallo, Manuel
    Boybat, Irem
    Rajendran, Bipin
    Sebastian, Abu
    Eleftheriou, Evangelos
    JOURNAL OF APPLIED PHYSICS, 2018, 124 (15)
  • [2] Fabrication and integration of photonic devices for phase-change memory and neuromorphic computing
    Zhou, Wen
    Shen, Xueyang
    Yang, Xiaolong
    Wang, Jiangjing
    Zhang, Wei
    INTERNATIONAL JOURNAL OF EXTREME MANUFACTURING, 2024, 6 (02)
  • [3] Fabrication and integration of photonic devices for phase-change memory and neuromorphic computing
    Wen Zhou
    Xueyang Shen
    Xiaolong Yang
    Jiangjing Wang
    Wei Zhang
    International Journal of Extreme Manufacturing, 2024, 6 (02) : 6 - 32
  • [4] Reconfigurable Multilevel Storage and Neuromorphic Computing Based on Multilayer Phase-Change Memory
    Wang, Lu
    Ma, Ge
    Yan, Senhao
    Cheng, Xiaomin
    Miao, Xiangshui
    ACS APPLIED MATERIALS & INTERFACES, 2024, 16 (40) : 54829 - 54836
  • [5] Monatomic 2D phase-change memory for precise neuromorphic computing
    Jiao, Fangying
    Chen, Bin
    Ding, Keyuan
    Li, Kunlong
    Wang, Lei
    Zeng, Xierong
    Rao, Feng
    APPLIED MATERIALS TODAY, 2020, 20
  • [6] Chalcogenide phase-change devices for neuromorphic photonic computing
    Brueckerhoff-Plueckelmann, Frank
    Feldmann, Johannes
    Wright, C. David
    Bhaskaran, Harish
    Pernice, Wolfram H. P.
    JOURNAL OF APPLIED PHYSICS, 2021, 129 (15)
  • [7] Ab Initio Molecular-Dynamics Simulation of Neuromorphic Computing in Phase-Change Memory Materials
    Skelton, Jonathan M.
    Loke, Desmond
    Lee, Taehoon
    Elliott, Stephen R.
    ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (26) : 14223 - 14230
  • [8] On-chip phase-change photonic memory and computing
    Cheng, Zengguang
    Rios, Carlos
    Youngblood, Nathan
    Wright, C. David
    Pernice, Wolfram H. P.
    Bhaskaran, Harish
    ACTIVE PHOTONIC PLATFORMS IX, 2017, 10345
  • [9] Behavioral modeling of integrated phase-change photonic devices for neuromorphic computing applications
    Carrillo, Santiago G-C
    Gemo, Emanuele
    Li, Xuan
    Youngblood, Nathan
    Katumba, Andrew
    Bienstman, Peter
    Pernice, Wolfram
    Bhaskaran, Harish
    Wright, C. David
    APL MATERIALS, 2019, 7 (09):
  • [10] Wavelength tunable resonant phase-change synaptic weights for photonic neuromorphic computing
    Cui, Yihao
    Gholipour, Behrad
    EMERGING TOPICS IN ARTIFICIAL INTELLIGENCE (ETAI) 2022, 2022, 12204