4.8 Article

Self-Assembled Networked PbS Distribution Quantum Dots for Resistive Switching and Artificial Synapse Performance Boost of Memristors

Journal

ADVANCED MATERIALS
Volume 31, Issue 7, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.201805284

Keywords

data storage; quantum dots; resistive switching; self-assembled PbS; synapses

Funding

  1. National Natural Science Foundation of China [61674050, 61874158]
  2. Top-notch Youth Project in Hebei Province [BJ2014008]
  3. Outstanding Youth Project of Hebei Province [F2016201220]
  4. Outstanding Youth Cultivation Project of Hebei University [2015JQY01]
  5. Project of Science and Technology Activities for Overseas Researcher [CL201602]
  6. Institute of Baoding Nanyang Research-New Material Technology Platform [17H03]
  7. Project of distinguished young of Hebei province [A2018201231]
  8. Training Program of Innovation and Entrepreneurship for Undergraduates [201710075013, 2017075]
  9. Support Program for the Top Young Talents of Hebei Province [70280011807]
  10. Training and Introduction of High-level Innovative Talents of Hebei University [801260201300]
  11. Hundred Persons Plan of Hebei Province

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With the advent of the era of big data, resistive random access memory (RRAM) has become one of the most promising nanoscale memristor devices (MDs) for storing huge amounts of information. However, the switching voltage of the RRAM MDs shows a very broad distribution due to the random formation of the conductive filaments. Here, self-assembled lead sulfide (PbS) quantum dots (QDs) are used to improve the uniformity of switching parameters of RRAM, which is very simple comparing with other methods. The resistive switching (RS) properties of the MD with the self-assembled PbS QDs exhibit better performance than those of MDs with pure-Ga2O3 and randomly distributed PbS QDs, such as a reduced threshold voltage, uniformly distributed SET and RESET voltages, robust retention, fast response time, and low power consumption. This enhanced performance may be attributed to the ordered arrangement of the PbS QDs in the self-assembled PbS QDs which can efficiently guide the growth direction for the conducting filaments. Moreover, biosynaptic functions and plasticity, are implemented successfully in the MD with the self-assembled PbS QDs. This work offers a new method of improving memristor performance, which can significantly expand existing applications and facilitate the development of artificial neural systems.

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