Skip to content

Author

Donghyeon Lee

1 paper indexed here

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Open access Jul 2026

Engineering structural discontinuity in ordered Co3O4 nanocube arrays for volatile memristive dynamics

The precise engineering of nanoscale gaps between discrete building blocks offers a direct pathway to govern charge transport physics in functional materials. Here, we demonstrate a fundamental transition from stochastic bulk conduction to reliable interface-mediated volatile switching by deliberately introducing structural discontinuity in spinel-type Co 3 O 4 nanocube (NC) arrays. While continuous oxide thin films suffer from irreversible breakdown and featureless transport, and disordered NC assemblies exhibit only leakage-like conduction, our self-assembled NC architecture enables a stable and low-power functional response. Utilizing an automated metrology framework based on the Segment Anything Model (SAM), we confirm the formation of a highly ordered, non-percolated square lattice with a narrowly distributed interparticle gap of 2.84 ± 0.64 nm across thousands of junctions. This statistically defined NC-gap-NC junction network confines the active conduction volume to nanoscale junctions, achieving an ultralow operating current of ~ 10 nA and exceptional statistical uniformity (coefficient of variation < 9%); the operating voltage is likewise set by the interparticle junction and can be brought to the ~ 1 V regime by contracting the gap through ligand exchange. Quantitative analysis identifies junction-limited, multi-regime transport across the NC-gap-NC interfaces as the dominant conduction picture, with Schottky-emission-like injection at intermediate fields and Fowler–Nordheim-type field-assisted tunneling at high fields. Furthermore, time-resolved measurements reveal dual-mode relaxation dynamics characterized by microsecond electronic detrapping and slow recovery consistent with ionic back-diffusion, which facilitate complex temporal dynamics for biomimetic signal processing. Our findings suggest that a preformed, statistically quantified nanogap network, rather than bulk percolation, can serve as a useful design principle for energy-efficient electronic primitives beyond conventional continuous media.

Inhyeok Oh, Jun Beom Hwang, Min Seo Kang et al. · 0 citations