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Main Author: Avila, L. B.
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2512.05607
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author Avila, L. B.
author_facet Avila, L. B.
contents Prussian blue analogues (PBAs) and related organic materials are promising platforms for next-generation memory and energy-storage technologies due to their redox activity, ionic mobility, and compatibility with low-cost and scalable fabrication. Electrodeposited Prussian Blue (PB) and Prussian White (PW) thin films show robust resistive switching with ON/OFF ratios from one to three orders of magnitude in both bipolar and unipolar modes. Structural and spectroscopic analyses reveal homogeneous films with well-defined grain boundaries and ionic pathways that enable filamentary conduction. Current-voltage measurements, impedance spectroscopy, and quantum transport modeling indicate switching mechanisms governed by ohmic or space-charge-limited conduction, driven by potassium-ion migration and reversible redox processes. PB-based devices also exhibit conductance quantization with discrete steps at integer and half-integer multiples of G0, consistent with ballistic electron transport through atomic-scale channels. Complementary studies on perylene-based liquid crystals and FeHCF on graphene oxide highlight the versatility of PBAs for memory and supercapacitor applications. Together, these results demonstrate the multifunctionality and scalability of PBAs for future ReRAM, neuromorphic computing, multilevel memory, cryptographic hardware, and high-performance energy-storage devices.
format Preprint
id arxiv_https___arxiv_org_abs_2512_05607
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Prussian Blue and Prussian Blue Analogs as Emerging Memristive Materials
Avila, L. B.
Materials Science
Applied Physics
Prussian blue analogues (PBAs) and related organic materials are promising platforms for next-generation memory and energy-storage technologies due to their redox activity, ionic mobility, and compatibility with low-cost and scalable fabrication. Electrodeposited Prussian Blue (PB) and Prussian White (PW) thin films show robust resistive switching with ON/OFF ratios from one to three orders of magnitude in both bipolar and unipolar modes. Structural and spectroscopic analyses reveal homogeneous films with well-defined grain boundaries and ionic pathways that enable filamentary conduction. Current-voltage measurements, impedance spectroscopy, and quantum transport modeling indicate switching mechanisms governed by ohmic or space-charge-limited conduction, driven by potassium-ion migration and reversible redox processes. PB-based devices also exhibit conductance quantization with discrete steps at integer and half-integer multiples of G0, consistent with ballistic electron transport through atomic-scale channels. Complementary studies on perylene-based liquid crystals and FeHCF on graphene oxide highlight the versatility of PBAs for memory and supercapacitor applications. Together, these results demonstrate the multifunctionality and scalability of PBAs for future ReRAM, neuromorphic computing, multilevel memory, cryptographic hardware, and high-performance energy-storage devices.
title Prussian Blue and Prussian Blue Analogs as Emerging Memristive Materials
topic Materials Science
Applied Physics
url https://arxiv.org/abs/2512.05607