4.8 Article

Single Nanoparticle Magnetic Spin Memristor

Journal

SMALL
Volume 14, Issue 30, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.201801249

Keywords

magnetic memory; magnetic nanoparticles; memristors; molecular spintronics; self-assembled monolayers

Funding

  1. Volkswagen Foundation [VW 88 367]
  2. Israel Science Foundation (ISF) [1248/10]
  3. MOS Israel
  4. European Research Council under the European Union/ERC [FP7/2007-2013, 338720]
  5. VW Foundation [VW 88 367]
  6. European Research Council (ERC) [338720] Funding Source: European Research Council (ERC)

Ask authors/readers for more resources

There is an increasing demand for the development of a simple Si-based universal memory device at the nanoscale that operates at high frequencies. Spin-electronics (spintronics) can, in principle, increase the efficiency of devices and allow them to operate at high frequencies. A primary challenge for reducing the dimensions of spintronic devices is the requirement for high spin currents. To overcome this problem, a new approach is presented that uses helical chiral molecules exhibiting spin-selective electron transport, which is called the chiral-induced spin selectivity (CISS) effect. Using the CISS effect, the active memory device is miniaturized for the first time from the micrometer scale to 30 nm in size, and this device presents memristor-like nonlinear logic operation at low voltages under ambient conditions and room temperature. A single nanoparticle, along with Au contacts and chiral molecules, is sufficient to function as a memory device. A single ferromagnetic nanoplatelet is used as a fixed hard magnet combined with Au contacts in which the gold contacts act as soft magnets due to the adsorbed chiral molecules.

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