Advancement in Soft Iontronic Resistive Memory Devices and Their Application for Neuromorphic Computing

The aqueous electrolyte can be a deformable and stretchable liquid material for iontronic resistive memory devices. An aqueous medium makes a device closer to the brain‐like system with the movement of ions. This review paper proposes advances in liquid resistive memories and neuromorphic computing...

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Main Authors: Muhammad Umair Khan, Jungmin Kim, Mahesh Y. Chougale, Rayyan Ali Shaukat, Qazi Muhammad Saqib, Swapnil R. Patil, Baker Mohammad, Jinho Bae
Format: Article
Language:English
Published: Wiley 2023-02-01
Series:Advanced Intelligent Systems
Subjects:
Online Access:https://doi.org/10.1002/aisy.202200281
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author Muhammad Umair Khan
Jungmin Kim
Mahesh Y. Chougale
Rayyan Ali Shaukat
Qazi Muhammad Saqib
Swapnil R. Patil
Baker Mohammad
Jinho Bae
author_facet Muhammad Umair Khan
Jungmin Kim
Mahesh Y. Chougale
Rayyan Ali Shaukat
Qazi Muhammad Saqib
Swapnil R. Patil
Baker Mohammad
Jinho Bae
author_sort Muhammad Umair Khan
collection DOAJ
description The aqueous electrolyte can be a deformable and stretchable liquid material for iontronic resistive memory devices. An aqueous medium makes a device closer to the brain‐like system with the movement of ions. This review paper proposes advances in liquid resistive memories and neuromorphic computing behavior to emulate electronic synapses. Primarily, the aqueous iontronic resistive memories can be used to study electrode and active layer materials and different device structures. Hence, herein, a timely and comprehensive study of these devices using ionic liquids, hydrogels, salt solutions, and soft electrodes to classify the device mechanism is presented. The filament formation is discussed in detail based on ion concentration polarization, electrode metallization, and movements of ions and charged molecules, which result in the formation of the metal dendrite. To manufacture a higher‐performance memory, device parameters should be optimized based on aqueous electrolytes, electrode materials, and other device design parameters. Aqueous electrolytes have smooth neurotransmission ability to fabricate brain‐inspired resistive memories with stable performance and device repeatability with smooth ion transmission. Aqueous electrode materials can be reliable for neural interface activities to compute electronic synapsis with electrical and chemical properties to ensure device reliability for a longer time period.
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spelling doaj.art-a0c8b96e3d0545c2838ef348cdecdafd2023-02-20T12:54:10ZengWileyAdvanced Intelligent Systems2640-45672023-02-0152n/an/a10.1002/aisy.202200281Advancement in Soft Iontronic Resistive Memory Devices and Their Application for Neuromorphic ComputingMuhammad Umair Khan0Jungmin Kim1Mahesh Y. Chougale2Rayyan Ali Shaukat3Qazi Muhammad Saqib4Swapnil R. Patil5Baker Mohammad6Jinho Bae7Department of Ocean System Engineering Jeju National University 102 Jejudaehakro Jeju 63243 KoreaDepartment of Ocean System Engineering Jeju National University 102 Jejudaehakro Jeju 63243 KoreaDepartment of Ocean System Engineering Jeju National University 102 Jejudaehakro Jeju 63243 KoreaDepartment of Ocean System Engineering Jeju National University 102 Jejudaehakro Jeju 63243 KoreaDepartment of Ocean System Engineering Jeju National University 102 Jejudaehakro Jeju 63243 KoreaDepartment of Ocean System Engineering Jeju National University 102 Jejudaehakro Jeju 63243 KoreaSystem on Chip Lab Department of Electrical Engineering and Computer Science Khalifa University Abu Dhabi 127788 UAEDepartment of Ocean System Engineering Jeju National University 102 Jejudaehakro Jeju 63243 KoreaThe aqueous electrolyte can be a deformable and stretchable liquid material for iontronic resistive memory devices. An aqueous medium makes a device closer to the brain‐like system with the movement of ions. This review paper proposes advances in liquid resistive memories and neuromorphic computing behavior to emulate electronic synapses. Primarily, the aqueous iontronic resistive memories can be used to study electrode and active layer materials and different device structures. Hence, herein, a timely and comprehensive study of these devices using ionic liquids, hydrogels, salt solutions, and soft electrodes to classify the device mechanism is presented. The filament formation is discussed in detail based on ion concentration polarization, electrode metallization, and movements of ions and charged molecules, which result in the formation of the metal dendrite. To manufacture a higher‐performance memory, device parameters should be optimized based on aqueous electrolytes, electrode materials, and other device design parameters. Aqueous electrolytes have smooth neurotransmission ability to fabricate brain‐inspired resistive memories with stable performance and device repeatability with smooth ion transmission. Aqueous electrode materials can be reliable for neural interface activities to compute electronic synapsis with electrical and chemical properties to ensure device reliability for a longer time period.https://doi.org/10.1002/aisy.202200281aqueous electrolytesbrain inspiredionic liquidsneuromorphic computingresistive memory devices
spellingShingle Muhammad Umair Khan
Jungmin Kim
Mahesh Y. Chougale
Rayyan Ali Shaukat
Qazi Muhammad Saqib
Swapnil R. Patil
Baker Mohammad
Jinho Bae
Advancement in Soft Iontronic Resistive Memory Devices and Their Application for Neuromorphic Computing
Advanced Intelligent Systems
aqueous electrolytes
brain inspired
ionic liquids
neuromorphic computing
resistive memory devices
title Advancement in Soft Iontronic Resistive Memory Devices and Their Application for Neuromorphic Computing
title_full Advancement in Soft Iontronic Resistive Memory Devices and Their Application for Neuromorphic Computing
title_fullStr Advancement in Soft Iontronic Resistive Memory Devices and Their Application for Neuromorphic Computing
title_full_unstemmed Advancement in Soft Iontronic Resistive Memory Devices and Their Application for Neuromorphic Computing
title_short Advancement in Soft Iontronic Resistive Memory Devices and Their Application for Neuromorphic Computing
title_sort advancement in soft iontronic resistive memory devices and their application for neuromorphic computing
topic aqueous electrolytes
brain inspired
ionic liquids
neuromorphic computing
resistive memory devices
url https://doi.org/10.1002/aisy.202200281
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