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      Dry electrode technology, the rising star in solid-state battery industrialization

      , , , , ,
      Matter
      Elsevier BV

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          A lithium superionic conductor.

          Batteries are a key technology in modern society. They are used to power electric and hybrid electric vehicles and to store wind and solar energy in smart grids. Electrochemical devices with high energy and power densities can currently be powered only by batteries with organic liquid electrolytes. However, such batteries require relatively stringent safety precautions, making large-scale systems very complicated and expensive. The application of solid electrolytes is currently limited because they attain practically useful conductivities (10(-2) S cm(-1)) only at 50-80 °C, which is one order of magnitude lower than those of organic liquid electrolytes. Here, we report a lithium superionic conductor, Li(10)GeP(2)S(12) that has a new three-dimensional framework structure. It exhibits an extremely high lithium ionic conductivity of 12 mS cm(-1) at room temperature. This represents the highest conductivity achieved in a solid electrolyte, exceeding even those of liquid organic electrolytes. This new solid-state battery electrolyte has many advantages in terms of device fabrication (facile shaping, patterning and integration), stability (non-volatile), safety (non-explosive) and excellent electrochemical properties (high conductivity and wide potential window).
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            Review on High-Loading and High-Energy Lithium-Sulfur Batteries

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              High-energy long-cycling all-solid-state lithium metal batteries enabled by silver–carbon composite anodes

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                Author and article information

                Journal
                Matter
                Matter
                Elsevier BV
                25902385
                March 2022
                March 2022
                : 5
                : 3
                : 876-898
                Article
                10.1016/j.matt.2022.01.011
                5fbe0d45-a9ec-4d7f-aa44-5d2507c3e401
                © 2022

                https://www.elsevier.com/tdm/userlicense/1.0/

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