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Magnetic field-driven particle assembly and jamming for bistable memory and response plasticity.


ABSTRACT: Unlike classic synthetic stimulus-responsive and shape-memory materials, which remain limited to fixed responses, the responses of living systems dynamically adapt based on the repetition, intensity, and history of stimuli. Such plasticity is ubiquitous in biology, which is profoundly linked to memory and learning. Concepts thereof are searched for rudimentary forms of "intelligent materials." Here, we show plasticity of electroconductivity in soft ferromagnetic nickel colloidal supraparticles with spiny surfaces, assembling/disassembling to granular conducting micropillars between two electrodes driven by magnetic field B. Colloidal jamming leads to conduction hysteresis and bistable memory upon increasing and subsequently decreasing B. Abrupt B changes induce larger conduction changes than gradual B-changes. Periodic B pulsing drives to frequency-dependent facilitation or suppression of conductivity compared to exposing the same constant field. The concepts allow remotely controlled switching plasticity, illustrated by a rudimentary device. More generally, we foresee adaptive functional materials inspired by response plasticity and learning.

SUBMITTER: Liu X 

PROVIDER: S-EPMC9651856 | biostudies-literature | 2022 Nov

REPOSITORIES: biostudies-literature

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Magnetic field-driven particle assembly and jamming for bistable memory and response plasticity.

Liu Xianhu X   Tan Hongwei H   Rigoni Carlo C   Hartikainen Teemu T   Asghar Nazish N   van Dijken Sebastiaan S   Timonen Jaakko V I JVI   Peng Bo B   Ikkala Olli O  

Science advances 20221111 45


Unlike classic synthetic stimulus-responsive and shape-memory materials, which remain limited to fixed responses, the responses of living systems dynamically adapt based on the repetition, intensity, and history of stimuli. Such plasticity is ubiquitous in biology, which is profoundly linked to memory and learning. Concepts thereof are searched for rudimentary forms of "intelligent materials." Here, we show plasticity of electroconductivity in soft ferromagnetic nickel colloidal supraparticles w  ...[more]

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