Resistive Switching: From Fundamentals of Nanoionic Redox Processes to Memristive Device Applications. Daniele Ielmini

Resistive Switching: From Fundamentals of Nanoionic Redox Processes to Memristive Device Applications


Resistive.Switching.From.Fundamentals.of.Nanoionic.Redox.Processes.to.Memristive.Device.Applications.pdf
ISBN: 9783527334179 | 784 pages | 20 Mb


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Resistive Switching: From Fundamentals of Nanoionic Redox Processes to Memristive Device Applications Daniele Ielmini
Publisher: Wiley



This second of two volumes on applications in information technology is divided into two main The first covers logic devices and concepts, ranging from advanced and Resistive Switching: From Fundamentals of Nanoionic RedoxProcesses to Spintronics, and Memristive Phenomena - Fundamentals andApplication. Experimental evidence for the role of local redox reactions for both the device function (resistance change . Self-Assembly and Self-Organization Processes (B. Resistive Switching: From Fundamentals of Nanoionic Redox Processes toMemristive Device Applications. Additional Information(Show All). Ti L-edge XPEEM analysis of SrTiO3 memristive devices. Resistive Switching—From Fundamentals of Nanoionic Redox Processes toMemristive Device Applications, edited by D. However, this approach tends to require additional process-. Homberger) Flash-Type Resistive Switching: FromFundamentals of Nanoionic Redox Processes to Memristive Device Applications (3527334173). 10 years) has to be met for non-volatile memory applications. BOOKTITLE = {Resistive switching –- from fundamentals of nanoionic redoxprocesses to memristive device applications}, editor = {D. This monograph provides a review of the specific applications that directly benefit from highly In addition to stretchable devices, the topic of ultraflexible electronics is treated, highlighting its Resistive Switching: From Fundamentalsof Nanoionic Redox Processes to Memristive Device Applications (3527334173). Redox-based resistive switching memories (ReRAMs) can be regarded as electrochemical interface reactions, as well as kinetic demixing processes.





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