A Strategy to Design High-Density Nanoscale Devices utilizing Vapor Deposition of Metal Halide Perovskite Materials.
basic_science · Level V
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- Record sourced from PubMed, PMID 28558134.
- Also identified by DOI 10.1002/adma.201701048.
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Abstract
The demand for high memory density has increased due to increasing needs of information storage, such as big data processing and the Internet of Things. Organic-inorganic perovskite materials that show nonvolatile resistive switching memory properties have potential applications as the resistive switching layer for next-generation memory devices, but, for practical applications, these materials should be utilized in high-density data-storage devices. Here, nanoscale memory devices are fabricated by sequential vapor deposition of organolead halide perovskite (OHP) CH<sub>3</sub> NH<sub>3</sub> PbI<sub>3</sub> layers on wafers perforated with 250 nm via-holes. These devices have bipolar resistive switching properties, and show low-voltage operation, fast switching speed (200 ns), good endurance, and data-retention time >10<sup>5</sup> s. Moreover, the use of sequential vapor deposition is extended to deposit CH<sub>3</sub> NH<sub>3</sub> PbI<sub>3</sub> as the memory element in a cross-point array structure. This method to fabricate high-density memory devices could be used for memory cells that occupy large areas, and to overcome the scaling limit of existing methods; it also presents a way to use OHPs to increase memory storage capacity.