Many in-memory computing frameworks demand electronic devices with specific switching characteristics to achieve the desired level of computational complexity. Existing memristive devices cannot be reconfigured to meet the diverse volatile and non-volatile switching requirements, and hence rely on tailored material designs specific to the targeted application, limiting their universality. “Reconfigurable memristors” that combine both ionic diffusive and drift mechanisms could address these limitations, but they remain elusive. Here we present a reconfigurable halide perovskite nanocrystal memristor that achieves on-demand switching between diffusive/volatile and drift/non-volatile modes by controllable electrochemical reactions. Judicious s...
Memristive devices have been a hot topic in nanoelectronics for the last two decades in both academi...
Abstract Crossbar circuits based on two terminal (2T) memristors typically require an additional uni...
Halide perovskites, fascinating memristive materials owing to mixed ionic-electronic conductivity, h...
Many in-memory computing frameworks demand electronic devices with specific switching characteristic...
Emulation of brain‐like signal processing is the foundation for development of efficient learning ci...
Exploring new materials and structures to construct synaptic devices represents a promising route to...
Perovskite materials have been utilized as promising active materials for memristive devices due to ...
With the increasing demand for artificially intelligent hardware systems for brain-inspired in-memor...
Memristors are devices that can store and process information based on their switchable internal res...
Organic and perovskite memristors have superior characteristics both in material and structural pers...
Inspired by neural computing, the pursuit of ultralow power neuromorphic architectures with highly d...
Neuromorphic computing has the potential to address the inherent limitations of conventional integra...
Neuromorphic computing architectures are required to execute several operations such as forgetting a...
Despite the impressive demonstrations with silicon and oxide memristors, realizing efficient roots o...
Extremely low energy consumption neuromorphic computing is required to achieve massively parallel in...
Memristive devices have been a hot topic in nanoelectronics for the last two decades in both academi...
Abstract Crossbar circuits based on two terminal (2T) memristors typically require an additional uni...
Halide perovskites, fascinating memristive materials owing to mixed ionic-electronic conductivity, h...
Many in-memory computing frameworks demand electronic devices with specific switching characteristic...
Emulation of brain‐like signal processing is the foundation for development of efficient learning ci...
Exploring new materials and structures to construct synaptic devices represents a promising route to...
Perovskite materials have been utilized as promising active materials for memristive devices due to ...
With the increasing demand for artificially intelligent hardware systems for brain-inspired in-memor...
Memristors are devices that can store and process information based on their switchable internal res...
Organic and perovskite memristors have superior characteristics both in material and structural pers...
Inspired by neural computing, the pursuit of ultralow power neuromorphic architectures with highly d...
Neuromorphic computing has the potential to address the inherent limitations of conventional integra...
Neuromorphic computing architectures are required to execute several operations such as forgetting a...
Despite the impressive demonstrations with silicon and oxide memristors, realizing efficient roots o...
Extremely low energy consumption neuromorphic computing is required to achieve massively parallel in...
Memristive devices have been a hot topic in nanoelectronics for the last two decades in both academi...
Abstract Crossbar circuits based on two terminal (2T) memristors typically require an additional uni...
Halide perovskites, fascinating memristive materials owing to mixed ionic-electronic conductivity, h...