Lithium-Battery Anode Gains Additional Functionality for Neuromorphic Computing through Metal-Insulator Phase Separation.
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2020
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Abstract
Specialized hardware for neural networks requires materials with tunable symmetry, retention, and speed at low power consumption. The study proposes lithium titanates, originally developed as Li-ion battery anode materials, as promising candidates for memristive-based neuromorphic computing hardware. By using ex- and in operando spectroscopy to monitor the lithium filling and emptying of structural positions during electrochemical measurements, the study also investigates the controlled formation of a metallic phase (Li Ti O ) percolating through an insulating medium (Li Ti O ) with no volume changes under voltage bias, thereby controlling the spatially averaged conductivity of the film device. A theoretical model to explain the observed hysteretic switching behavior based on electrochemical nonequilibrium thermodynamics is presented, in which the metal-insulator transition results from electrically driven phase separation of Li Ti O and Li Ti O . Ability of highly lithiated phase of Li Ti O for Deep Neural Network applications is reported, given the large retentions and symmetry, and opportunity for the low lithiated phase of Li Ti O toward Spiking Neural Network applications, due to the shorter retention and large resistance changes. The findings pave the way for lithium oxides to enable thin-film memristive devices with adjustable symmetry and retention.Reference Key |
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Authors | Gonzalez-Rosillo, Juan Carlos;Balaish, Moran;Hood, Zachary D;Nadkarni, Neel;Fraggedakis, Dimitrios;Kim, Kun Joong;Mullin, Kaitlyn M;Pfenninger, Reto;Bazant, Martin Z;Rupp, Jennifer L M; |
Journal | advanced materials (deerfield beach, fla) |
Year | 2020 |
DOI | 10.1002/adma.201907465 |
URL | |
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