4.8 Article

Ultra-low power Hf0.5Zr0.5O2 based ferroelectric tunnel junction synapses for hardware neural network applications

Journal

NANOSCALE
Volume 10, Issue 33, Pages 15826-15833

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8nr04734k

Keywords

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Funding

  1. NSFC [61704030, 61376092, 61427901]
  2. 02 State Key Project [2017ZX02315005]
  3. Shanghai Rising-Star Program [14QA1400200]
  4. Shanghai Educational Development Foundation
  5. Program of Shanghai Subject Chief Scientist [14XD1400900]
  6. S&T Committee of Shanghai [14521103000, 15DZ1100702, 15DZ1100503]
  7. Shanghai Municipal Education Commission
  8. Shanghai Education Development Foundation

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Brain-inspired neuromorphic computing has shown great promise beyond the conventional Boolean logic. Nanoscale electronic synapses, which have stringent demands for integration density, dynamic range, energy consumption, etc., are key computational elements of the brain-inspired neuromorphic system. Ferroelectric tunneling junctions have been shown to be ideal candidates to realize the functions of electronic synapses due to their ultra-low energy consumption and the nature of ferroelectric tunneling. Here, we report a new electronic synapse based on a three-dimensional vertical Hf0.5Zr0.5O2-based ferroelectric tunneling junction that meets the full functions of biological synapses. The fabricated three-dimensional vertical ferroelectric tunneling junction synapse (FTJS) exhibits high integration density and excellent performances, such as analog-like conductance transition under a training scheme, low energy consumption of synaptic weight update (1.8 pJ per spike) and good repeatability (>10(3) cycles). In addition, the implementation of pattern training in hardware with strong tolerance to input faults and variations is also illustrated in the 3D vertical FTJS array. Furthermore, pattern classification and recognition are achieved, and these results demonstrate that the Hf0.5Zr0.5O2-based FTJS has high potential to be an ideal electronic component for neuromorphic system applications.

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