RESWITCH · Redox-Controlled Resistive Switching in Hybrid Metal-Organic Thin Films towards Neuromorphic Computing
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2019-04-01 → 2021-03-31
- Финансиране от ЕС
- 166 320 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Хибридни метално-органични тънки филми се изследват за създаване на мемристори, които имитират работата на синапсите в мозъка. Това помага за разработването на хардуер за изчисления, който консумира много по-малко енергия от сегашните компютърни системи.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Redox-Controlled Resistive Switching in Hybrid Metal-Organic Thin Films towards Neuromorphic Computing
Artificial neural networks have revolutionized the field of artificial intelligence with human-like performance in fields such as computer vision and speech recognition already achieved. The ANNs take inspiration from the operation of biological neural networks, e.g. the human brain by employing layers of artificial neurons connected to each other via synaptic elements characterized by a weight factor. Yet, the von Neumann architecture of the present computing systems use opposite strategies compared to the brain: centralized versus distributed memory, and always-on versus event-driven systems. In practice this results in the software driven ANNs being orders of magnitude less energy efficient than the human brain, and the continuously growing demand for new machine learning models of increasing complexity account for a substantial part of the global energy consumption. Neuromorphic computing presents a potential solution to these challenges by emulating the functionality and interconnectivity of the biological neural networks directly on hardware level. However, purely CMOS based neuromorphic circuits are impractical for the implementation of large networks, as even a single synapse or neuron can take tens of transistors each to implement. To accelerate the development of neuromorphic circuits, a next-generation device technology is needed. In practice, this equates to emulating the key features of the neurons and synapses directly on the materials’ level. For the synaptic connections, a potential new technology are memristors that can emulate the synaptic weight through their history-dependent variable conductance. Various inorganic materials have been employed for these resistive switching devices that rely on the formation/dissolution of a conductive filament within an insulating matrix. The main challenges preventing widescale implementation are the device-to-device and cycle-to-cycle variability arising from the stochastic nature of the filament formation. Additionally, the typically high conductance in the ON-state results in high energy consumption. The aim of the RESWITCH project is to enable a new type of resistive switching device concept based on metal-organic coordination polymer thin films. With redox-active ligands, the emulation of the synaptic weight can be based on the oxidation-state dependent properties of these thin films as the electronic conductivity can be modulated electrochemically with dynamic operation arising from the concurrent counter-ion motion. The interplay of the metal and organic constituents allows for precise control of the electric/electrochemical properties, but poor processability has been limiting their applicability for nanotechnology applications. The key element in RESWITCH is to implement a new thin film -based approach for conductive coordination polymers using Molecular Layer Deposition (MLD), a vapor phase thin film deposition method derived from the Atomic Layer Deposition (ALD) technique. As with ALD, it is defined by the sequential, self-saturating exposure of vapor-phase precursors onto surfaces. This monolayer accuracy in process control leads to sub-nanometer range precision in layer thickness control and in excellent uniformity over large area substrates, The Objectives of the Project are three-fold: 1. Establishing novel MLD-chemistries based on redox-active organic ligands. 2. Gaining detailed understanding on the link between the thin film composition and it’s redox-properties and electrical conductivity. 3. Integration of the newly developed materials in a resistive switching device demonstrator with artificial synapse -like functionality.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Cognitive computing has brought about the possibility of computer programs with ability to learn by recognizing patterns in data and to make predictions on the learned dependencies by mimicking the operation of the human brain. However, their energy efficiency is still orders of magnitude below the biological counterpart as the current linear Boolean logic is ill-suited for the simulation of the huge arrays of interconnected neurons. Neuromorphic computing aims to greatly improve the efficiency by emulating the synaptic functionality and interconnectivity on the hardware level. In biological neural networks, communication between neurons is facilitated by synapses that modulate the signal through changes in the synaptic weight. The time-variability of these operations is thought to allow the single node to both process and store informationRESWITCH seeks to emulate this synaptic plasticity by exploiting the coupled ionic/electronic transport in redox-active hybrid metal-organic coordination polymer thin films. As in fully organic conjugated polymers, the electronic conductivity can be modulated electrochemically with dynamic operation arising from the concurrent counter-ion motion. The interplay of the metal and organic constituents allows for precise control of the electric/electrochemical properties, but poor processability limits their applicability for nanotechnology applications. In RESWITCH, a new thin film -based approach is implemented with Molecular Layer Deposition (MLD). A library of MLD processes for high-quality, ultra-thin films of redox-active and electrically conductive materials will be established. The thin film approach allows for detailed exploration on the contribution of the metal and organic components to the redox-properties and conductivity. The ultimate target is to implement the thin films in a novel bilayer thin film device in which the conductance can be controlled dynamically with electrochemical doping of the adjacent layers.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITEIT GENT · GentКоординаторБелгия
Връзки
- Виж в CORDIS
- DOI: 10.3030/841995
- https://www.ugent.be/en/research/research-ugent/eu-trackrecord/h2020/msca-h2020/reswitch.htm
Данни: CORDIS, © Европейски съюз
