Microscale optoelectronic synapses with switchable photocurrent from halide perovskite

Fuente: arXiv
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Hauptverfasser: de Boer, Jeroen J., Alvarez, Agustin O., Schmidt, Moritz C., Sitaridis, Dimitrios, Ehrler, Bruno
Format: Preprint
Veröffentlicht: 2025
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author de Boer, Jeroen J.
Alvarez, Agustin O.
Schmidt, Moritz C.
Sitaridis, Dimitrios
Ehrler, Bruno
author_facet de Boer, Jeroen J.
Alvarez, Agustin O.
Schmidt, Moritz C.
Sitaridis, Dimitrios
Ehrler, Bruno
contents Efficient visual data processing by neuromorphic networks requires volatile artificial synapses that detect and process light inputs, ideally in the same device. Here, we demonstrate microscale back-contacted optoelectronic halide perovskite artificial synapses that leverage ion migration induced by a bias voltage to modulate their photocurrent. The photocurrent changes are due to the accumulation of mobile ions, which induces a transient electric field in the perovskite. The photocurrent changes are volatile, decaying on the order of seconds. The photocurrent changes can be controlled by both the applied voltage and illumination. The symmetric device supports changing of the photocurrent polarity, switching between inhibitory and exhibitory functioning. The photocurrent can be updated by spike-timing-dependent plasticity (STDP)-learning rules inspired by biology. We show with simulations how this could be exploited as an attention mechanism in a neuromorphic detector. Our fabrication procedure is compatible with high-density integration with CMOS and memristive neuromorphic networks for energy-efficient visual data processing inspired by the brain.
format Preprint
id arxiv_https___arxiv_org_abs_2508_18869
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Microscale optoelectronic synapses with switchable photocurrent from halide perovskite
de Boer, Jeroen J.
Alvarez, Agustin O.
Schmidt, Moritz C.
Sitaridis, Dimitrios
Ehrler, Bruno
Materials Science
Efficient visual data processing by neuromorphic networks requires volatile artificial synapses that detect and process light inputs, ideally in the same device. Here, we demonstrate microscale back-contacted optoelectronic halide perovskite artificial synapses that leverage ion migration induced by a bias voltage to modulate their photocurrent. The photocurrent changes are due to the accumulation of mobile ions, which induces a transient electric field in the perovskite. The photocurrent changes are volatile, decaying on the order of seconds. The photocurrent changes can be controlled by both the applied voltage and illumination. The symmetric device supports changing of the photocurrent polarity, switching between inhibitory and exhibitory functioning. The photocurrent can be updated by spike-timing-dependent plasticity (STDP)-learning rules inspired by biology. We show with simulations how this could be exploited as an attention mechanism in a neuromorphic detector. Our fabrication procedure is compatible with high-density integration with CMOS and memristive neuromorphic networks for energy-efficient visual data processing inspired by the brain.
title Microscale optoelectronic synapses with switchable photocurrent from halide perovskite
topic Materials Science
url https://arxiv.org/abs/2508.18869