A wearable multiplexed silicon nonvolatile memory array using nanocrystal charge confinement

Sci Adv. 2016 Jan 1;2(1):e1501101. doi: 10.1126/sciadv.1501101. eCollection 2016 Jan.

Abstract

Strategies for efficient charge confinement in nanocrystal floating gates to realize high-performance memory devices have been investigated intensively. However, few studies have reported nanoscale experimental validations of charge confinement in closely packed uniform nanocrystals and related device performance characterization. Furthermore, the system-level integration of the resulting devices with wearable silicon electronics has not yet been realized. We introduce a wearable, fully multiplexed silicon nonvolatile memory array with nanocrystal floating gates. The nanocrystal monolayer is assembled over a large area using the Langmuir-Blodgett method. Efficient particle-level charge confinement is verified with the modified atomic force microscopy technique. Uniform nanocrystal charge traps evidently improve the memory window margin and retention performance. Furthermore, the multiplexing of memory devices in conjunction with the amplification of sensor signals based on ultrathin silicon nanomembrane circuits in stretchable layouts enables wearable healthcare applications such as long-term data storage of monitored heart rates.

Keywords: Wearable electronics; langmuir-Blodgett assembly; nanocrystal floating gate; nonvolatile memory; silicon nanomembrane.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Computer Storage Devices*
  • Electronics / instrumentation
  • Equipment Design / ethics
  • Equipment Design / methods
  • Information Storage and Retrieval / methods*
  • Microscopy, Atomic Force / methods
  • Nanoparticles / chemistry*
  • Nanostructures / chemistry
  • Nanotechnology / instrumentation*
  • Nanotechnology / methods
  • Silicon / chemistry*

Substances

  • Silicon