4.6 Article

Effects of CaO Interlayer on the Performance of Biodegradable Transient MgO-Based Resistive Random Access Memory

Journal

IEEE TRANSACTIONS ON ELECTRON DEVICES
Volume 67, Issue 2, Pages 481-486

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TED.2019.2956984

Keywords

Biodegradable; polylactic acid (PLA); Poole-Frenkel emission; resistive random access memory (RRAM); transient electronics

Funding

  1. National Natural Science Foundation of China [61704137, 91123018, 51625504, 61671368]
  2. China Postdoctoral Science Foundation [2016M602821]
  3. Postdoctoral Science Foundation of Shaanxi Province [2016BSHEDZZ39]
  4. China Scholarship Council [201706285009]
  5. Science and Technology Planning Project of Guangdong Province, China [2017A010103004]

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Biodegradable transient Mg/MgO/CaO/MgO/ Mg resistive random access memories (RRAMs) with CaO interlayer of different thicknesses have been successfully fabricated on polylactic acid (PLA) substrate at low processing temperature. Comparative analysis shows that the addition of an 8.7-nm CaO interlayer greatly increases the ON/OFF ratio to 10(5) (by more than ten times) and the retention time of the devices to 10(4) s. The current-voltage measurements indicate that the low-resistance state (LRS) current is attributed to the Ohmic conduction and the high-resistance state (HRS) current is governed by the Poole-Frenkel (P-F) emission. The CaO interlayer is revealed to elevate the trap energy levels for the P-F emission and work as a block for the mobile charges, thus greatly improving the performance of the memory devices. Moreover, under certain stimulus pulses, the devices can integrate the input pulses, and then fire with output current abruptly increased by several orders, bearing similarities to the integrate-and-fire functionality of neuron. The firing frequencies of devices with the stimulus pulse number are observed to be stochastic, which are able to be modified by the CaO interlayer. Furthermore, immersed in physiological saline the devices dissolve within 1 h except for PLA substrates that are able to completely degrade in proteinase K solution within 15 days.

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