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Updated: Mar 6, 2026

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Transferable Memristive Nanoribbons Comprising Solution-Processed Strontium Titanate Nanocubes.

Jiaying Wang1, Satyan Choudhary1, William L Harrigan1

  • 1Department of Mechanical and Industrial Engineering, ‡Polymer Science and Engineering Department, and §Department of Chemistry, University of Massachusetts Amherst , Amherst, Massachusetts 01003, United States.

ACS Applied Materials & Interfaces
|March 10, 2017
PubMed
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Researchers developed a new method to create memristors using strontium titanate (STO) oxide nanocrystal nanoribbons. This technique allows for scalable manufacturing of high-quality memristive devices on various surfaces, including flexible substrates.

Area of Science:

  • Materials Science
  • Nanotechnology
  • Solid-State Electronics

Background:

  • Memristors are two-terminal devices with tunable resistance based on applied bias history.
  • The metal-insulator interface is critical for memristor function, involving coupled electronic-ionic interactions.
  • Traditional top-down fabrication methods for metal-insulator-metal (MIM) nanostructures offer high-quality interfaces but limit electrode configurations.

Purpose of the Study:

  • To develop a scalable method for fabricating high-quality memristive devices using solution-processed oxide nanocrystals.
  • To enable the transfer of individual nanoribbons to arbitrary substrates, allowing for diverse electrode configurations.
  • To demonstrate the memristive performance and endurance of transferred nanoribbons, including on flexible substrates.

Main Methods:

Keywords:
electronic transportinterfacesnanoparticlesresistive switchingstrontium titanate

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  • Convective self-assembly, removal, and transfer of individual, solution-processed, single-crystalline strontium titanate (STO) perovskite oxide nanocrystal nanoribbons.
  • Deposition of nanoribbons onto arbitrary metallized substrates.
  • Fabrication of memristive devices with transferred STO nanoribbons.

Main Results:

  • Demonstrated successful transfer of STO nanocrystal nanoribbons to various substrates.
  • Enabled investigation of diverse transport models, from interfacial trap-detrap to electrochemical metallization.
  • Achieved robust memristive behavior with switching ratios up to 10^4 after redeposition on flexible poly(ethylene terephthalate) (PET) substrates.

Conclusions:

  • The convective self-assembly and transfer method provides a facile and scalable pathway for manufacturing functional oxide nanostructures.
  • This approach allows for the creation of high-quality memristors on arbitrary surfaces and topologies.
  • The developed technique overcomes limitations of traditional fabrication methods, enabling versatile memristor device engineering.