4.6 Article

Superionic Lithium Argyrodite Electrolytes by Bromine-Doping for All-Solid-State Lithium Batteries

相关参考文献

注意:仅列出部分参考文献,下载原文获取全部文献信息。
Review Chemistry, Multidisciplinary

Lithium/Sulfide All-Solid-State Batteries using Sulfide Electrolytes

Jinghua Wu et al.

Summary: All-solid-state lithium batteries (ASSLBs) are considered the next generation electrochemical energy storage devices due to their high safety and energy density, along with simple packaging and wide operable temperature range. The sulfide electrolytes, with the highest ionic conductivity among solid-state electrolytes, face challenges such as narrow electrochemical stability window, unstable electrode/electrolyte interfaces, and lithium dendrite formation. Research on emerging sulfide electrolytes and preparation methods is ongoing, focusing on achieving required properties for stable electrochemical performance and compatible interfaces in ASSLBs.

ADVANCED MATERIALS (2021)

Article Nanoscience & Nanotechnology

Wet-Milling Synthesis of Superionic Lithium Argyrodite Electrolytes with Different Concentrations of Lithium Vacancy

Liping Wu et al.

Summary: The study successfully prepared argyrodite electrolytes with different lithium vacancies using a facile and rapid synthesis method. The wet-milling synthesized Li5.4PS4.4Cl1.6 exhibited high ionic conductivity and excellent cycling stability, showing potential for rapid exploration and preparation of other argyrodite electrolytes in the future.

ACS APPLIED MATERIALS & INTERFACES (2021)

Article Electrochemistry

One-dimensional NiS-CNT@Li7P3S11 nanocomposites as ionic/electronic additives for LiCoO2 based all-solid-state lithium batteries

Miao Jiang et al.

Summary: The study focuses on enhancing the electrochemical performance of LiCoO2 cathode in all-solid-state lithium batteries by synthesizing NiS-CNT@Li7P3S11 nanocomposites. The nanocomposites effectively improved the reversible capacity and discharge capacity of the LiCoO2 cathode in the solid-state batteries.

ELECTROCHIMICA ACTA (2021)

Article Electrochemistry

Tuning of Li-argyrodites ionic conductivity through silicon substitution (Li 6+xP1-xSixS5Cl0.5Br0.5) and their electrochemical performance in lithium solid state batteries

Yuvaraj Subramanian et al.

Summary: This report successfully enhanced the ionic conductivity of Li-argyrodites through silicon substitution and achieved a higher initial capacity in a solid state battery system. The interface phenomena between electrode and solid electrolyte were demonstrated using ex-situ XPS analysis.

ELECTROCHIMICA ACTA (2021)

Article Chemistry, Physical

Superior lithium-stable Li7P2S8I solid electrolyte for all-solid-state lithium batteries

Liping Wu et al.

Summary: The high lithium ionic conductivity and stability against lithium metal of the synthesized low temperature phase Li7P2S8I glass-ceramic electrolyte show a phase transition from low conductive thio-LISICON III analog to high conductive thio-LISICON II analog phase, resulting in favorable conductivity and long cycling stability for an all-solid-state lithium battery. The electrolyte also exhibits excellent dendrite suppression capability and compatibility with lithium metal, delivering high capacity retention and improved rate capacity.

JOURNAL OF POWER SOURCES (2021)

Article Chemistry, Physical

Lithium solid-state batteries: State-of-the-art and challenges for materials, interfaces and processing

Nicola Boaretto et al.

Summary: Lithium solid-state batteries (SSBs) are seen as a potential solution to safety concerns and energy density limitations in lithium-ion batteries, with recent advances in materials like highly-conductive solid-state electrolytes. Research focus has shifted to integrating components, full cell functionality, and scalability of fabrication processes, but formidable challenges remain. Key points include the importance of full cell integration, material selection, and compatible processing techniques to stabilize and minimize resistance in cell interfaces.

JOURNAL OF POWER SOURCES (2021)

Editorial Material Materials Science, Ceramics

Lining up for better performance: Researchers tailor interfaces in solid-state batteries

[Anonymous]

AMERICAN CERAMIC SOCIETY BULLETIN (2021)

Article Chemistry, Physical

On the Lithium Distribution in Halide Superionic Argyrodites by Halide Incorporation in Li7-xPS6-xClx

Ajay Gautam et al.

Summary: The study investigates the effects of different halide compositions on the ionic conductivity in superionic lithium argyrodites, revealing that replacement of S2- by Cl- increases Li+ conductivity by connecting clustered Li+ cages. This demonstrates the importance of anionic charge distribution changes on the structural-transport correlations within the Li+ ion substructure.

ACS APPLIED ENERGY MATERIALS (2021)

Article Chemistry, Physical

Revealing the role of the cathode-electrolyte interface on solid-state batteries

Beniamin Zahiri et al.

Summary: Interfaces play crucial roles in the performance of secondary solid-state batteries, and the crystallography and morphology of thick cathodes directly impact long-term performance. Minimizing interfacial area is key to understanding interface instabilities and improving cell performance. Dense and thick cathodes are suggested for increasing energy density and stability of solid-state batteries.

NATURE MATERIALS (2021)

Review Electrochemistry

All-Solid-State Lithium Batteries with Sulfide Electrolytes and Oxide Cathodes

Jinghua Wu et al.

Summary: All-solid-state lithium batteries (ASSLBs) based on sulfide electrolytes and oxide cathodes have high safety and energy density, but face challenges such as stability of electrolytes, complex interfacial issues, and unstable electrode interfaces. Despite oxide cathodes being stable and industrialized, their compatibility with sulfide electrolytes presents a challenge for commercial use in ASSLBs.

ELECTROCHEMICAL ENERGY REVIEWS (2021)

Review Chemistry, Physical

Research progress in Li-argyrodite-based solid-state electrolytes

Xiangtao Bai et al.

JOURNAL OF MATERIALS CHEMISTRY A (2020)

Article Chemistry, Physical

A lithium argyrodite Li6PS5Cl0.5Br0.5 electrolyte with improved bulk and interfacial conductivity

Heng Wang et al.

JOURNAL OF POWER SOURCES (2019)

Review Chemistry, Physical

Inorganic sulfide solid electrolytes for all-solid-state lithium secondary batteries

Peng-Jie Lian et al.

JOURNAL OF MATERIALS CHEMISTRY A (2019)

Review Chemistry, Physical

Challenges and issues facing lithium metal for solid-state rechargeable batteries

A. Mauger et al.

JOURNAL OF POWER SOURCES (2017)

Article Chemistry, Multidisciplinary

Influence of Lattice Polarizability on the Ionic Conductivity in the Lithium Superionic Argyrodites Li6PS5X (X = Cl, Br, I)

Marvin A. Kraft et al.

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY (2017)

Editorial Material Energy & Fuels

A solid future for battery development

Juergen Janek et al.

NATURE ENERGY (2016)

Article Chemistry, Physical

Design principles for solid-state lithium superionic conductors

Yan Wang et al.

NATURE MATERIALS (2015)

Article Electrochemistry

Variation in structure and Li+-ion migration in argyrodite-type Li6PS5X (X = Cl, Br, I) solid electrolytes

Prasada Rao Rayavarapu et al.

JOURNAL OF SOLID STATE ELECTROCHEMISTRY (2012)

Review Nanoscience & Nanotechnology

A Review on Lithium-Ion Batteries Safety Issues: Existing Problems and Possible Solutions

Jianwu Wen et al.

MATERIALS EXPRESS (2012)

Review Chemistry, Multidisciplinary

Challenges in the development of advanced Li-ion batteries: a review

Vinodkumar Etacheri et al.

ENERGY & ENVIRONMENTAL SCIENCE (2011)

Article Chemistry, Physical

A lithium superionic conductor

Noriaki Kamaya et al.

NATURE MATERIALS (2011)

Article Materials Science, Multidisciplinary

Studies of lithium argyrodite solid electrolytes for all-solid-state batteries

R. P. Rao et al.

PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE (2011)

Article Electrochemistry

Novel technique to form electrode-electrolyte nanointerface in all-solid-state rechargeable lithium batteries

Akitoshi Hayashi et al.

ELECTROCHEMISTRY COMMUNICATIONS (2008)