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A garnet structure-based all-solid-state Li battery without interface modification: resolving incompatibility issues on positive electrodes

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TLDR
In this article, a new design principle is introduced, based on co-sintering crystalline LCO and Ta-substituted LLZO, which allows the fabrication of high specific areal density and low cell area resistance without the interface modification.
Abstract
The development of high-performance Li7La3Zr2O12 (LLZO)-based all-solid-state lithium batteries (SSLB) is usually hampered by highly resistive interfaces due to the need for sintering at elevated temperatures to form ionic diffusion paths through the grains. Many strategies have been proposed to solve the problem but the achievements have been limited. Herein, a new design principle is introduced, based on co-sintering crystalline LCO and Ta-substituted LLZO instead of using the more reactive Li–Co–O precursors and Al-substituted LLZO, which allows the fabrication of high specific areal density and low cell area resistance without the interface modification of LLZO-based SSLB. Detailed studies using micro-Raman and EDS mapping revealed that the well-sintered interfaces are free from detrimental secondary phases. To demonstrate that a true bulk-type SSLB can be constructed by this straightforward strategy, the material loading for a composite positive electrode was increased to about 10 times that in previous reports, which resulted in a high areal capacity of 1.63 mA h cm−2 (i.e. 110 mA h g−1) when discharged with a current density of 50 μA cm−2. It also allows one to discharge the fabricated SSLB at a very high current density of 500 μA cm−2 at 50 °C due to the minimized cell areal resistance. The new fabrication strategy for the LLZO-based SSLB paves the way for achieving SSLB with high safety and energy density.

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Citations
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Journal ArticleDOI

Understanding interface stability in solid-state batteries

TL;DR: In this paper, the authors summarize the experimental findings for various classes of solid electrolytes and relate them to computational predictions, with the aim of providing a deeper understanding of the interfacial reactions and insight for the future design and engineering of interfaces in SSBs.
Journal ArticleDOI

Garnet-Type Solid-State Electrolytes: Materials, Interfaces, and Batteries.

TL;DR: Garnet-type electrolyte has been considered one of the most promising and important solid-state electrolytes for batteries with potential benefits in energy density, electrochemical stability, high temperature stability, and safety, and this Review will survey recent development of garnet- type LLZO electrolytes.
Journal ArticleDOI

A bird's-eye view of Li-stuffed garnet-type Li7La3Zr2O12 ceramic electrolytes for advanced all-solid-state Li batteries

TL;DR: In this article, the authors reviewed the progress and analyzed the trends in the three main approaches to realize the technological application of LLZO as an electrolyte in SSLBs: (i) crystal structure and lithium content control by doping to enhance Li-ion conductivity, (ii) microstructure and dimension control by material processing and thin-film fabrication to reduce electrolyte resistance, and (iii) LL ZO-electrode interface tuning to reduce interfacial resistance and improve battery performance.
Journal ArticleDOI

Solid-State Li–Metal Batteries: Challenges and Horizons of Oxide and Sulfide Solid Electrolytes and Their Interfaces

TL;DR: In this article, the authors present a roadmap for the development of a successful oxide and sulfide-based ASSLB focusing on interfacial challenges, while accounting for five parameters: energy density, power density, longterm stability, processing, and safety.
References
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Journal ArticleDOI

Electrochemical and In Situ X‐Ray Diffraction Studies of Lithium Intercalation in Li x CoO2

TL;DR: In this article, high precision voltage measurements and in situ x-ray diffraction indicate a sequence of three distinct phase transitions as varies from 1 to 0.4, two of which are situated slightly above and below and are caused by an order/disorder transition of the lithium ions.
Journal ArticleDOI

MOF-Templated Synthesis of Porous Co3O4 Concave Nanocubes with High Specific Surface Area and Their Gas Sensing Properties

TL;DR: Experimental results reveal that the porous Co3O4 concave nanocubes present the highest sensitivity to ethanol with fast response/recovery time (< 10 s) and a low detection limit (at least 10 ppm).
Journal ArticleDOI

Toward garnet electrolyte–based Li metal batteries: An ultrathin, highly effective, artificial solid-state electrolyte/metallic Li interface

TL;DR: New ways to address the garnet SSE wetting issue against Li and get more stable cell performances based on the hybrid electrolyte system for Li-ion, Li-sulfur, and Li-oxygen batteries toward the next generation of Li metal batteries are provided.
Journal ArticleDOI

Li7La3Zr2O12 Interface Modification for Li Dendrite Prevention

TL;DR: Li et al. as discussed by the authors showed that the short circuit formation was not due to the low relative density of the samples nor the reduction of Li-Al glassy phase at grain boundaries, but was caused by Li dendrite formation inside HP-LLZ:Ta, which took place along the grain boundaries.
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