Ruddlesden-Popper-Phase Hybrid Halide Perovskite/Small-Molecule Organic Blend Memory Transistors.
basic_science · Level V
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- Record sourced from PubMed, PMID 33382153.
- Also identified by DOI 10.1002/adma.202003137 and PMC identifier 11641223.
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Abstract
Controlling the morphology of metal halide perovskite layers during processing is critical for the manufacturing of optoelectronics. Here, a strategy to control the microstructure of solution-processed layered Ruddlesden-Popper-phase perovskite films based on phenethylammonium lead bromide ((PEA)<sub>2</sub> PbBr<sub>4</sub> ) is reported. The method relies on the addition of the organic semiconductor 2,7-dioctyl[1]benzothieno[3,2-b]benzothiophene (C<sub>8</sub> -BTBT) into the perovskite formulation, where it facilitates the formation of large, near-single-crystalline-quality platelet-like (PEA)<sub>2</sub> PbBr<sub>4</sub> domains overlaid by a ≈5-nm-thin C<sub>8</sub> -BTBT layer. Transistors with (PEA)<sub>2</sub> PbBr<sub>4</sub> /C<sub>8</sub> -BTBT channels exhibit an unexpectedly large hysteresis window between forward and return bias sweeps. Material and device analysis combined with theoretical calculations suggest that the C<sub>8</sub> -BTBT-rich phase acts as the hole-transporting channel, while the quantum wells in (PEA)<sub>2</sub> PbBr<sub>4</sub> act as the charge storage element where carriers from the channel are injected, stored, or extracted via tunneling. When tested as a non-volatile memory, the devices exhibit a record memory window (>180 V), a high erase/write channel current ratio (10<sup>4</sup> ), good data retention, and high endurance (>10<sup>4</sup> cycles). The results here highlight a new memory device concept for application in large-area electronics, while the growth technique can potentially be exploited for the development of other optoelectronic devices including solar cells, photodetectors, and light-emitting diodes.