4.5 Article

Studies on the inhibition of lithium dendrite formation in sulfide solid electrolytes doped with LiX (X = Br, I)

Related references

Note: Only part of the references are listed.
Article Nanoscience & Nanotechnology

Visualization and Control of Chemically Induced Crack Formation in All-Solid-State Lithium-Metal Batteries with Sulfide Electrolyte

Misae Otoyama et al.

Summary: The reduction reaction at the interface between the SE and lithium metal is the primary cause of short-circuiting in all-solid-state batteries. The combination of reduction-expansion-cracking of LPS at the new interfaces eventually leads to the formation of large cracks and short-circuiting.

ACS APPLIED MATERIALS & INTERFACES (2021)

Article Chemistry, Physical

Investigation of the Suppression of Dendritic Lithium Growth with a Lithium-Iodide-Containing Solid Electrolyte

Masakuni Takahashi et al.

Summary: This study quantitatively elucidated the cause of lithium dendrite suppression by doping LiI into Li3PS4 solid electrolyte, finding that the interface maintenance and inhibition of reductive decomposition play a key role in dendrite formation. Additionally, the dendrite suppression ability was enhanced with increased ionic conductivity, indicating the significant contributions of both the physical properties of the lithium metal/solid electrolyte interface and the bulk ionic conductivity.

CHEMISTRY OF MATERIALS (2021)

Article Multidisciplinary Sciences

Low-temperature paddlewheel effect in glassy solid electrolytes

Jeffrey G. Smith et al.

NATURE COMMUNICATIONS (2020)

Article Chemistry, Multidisciplinary

Solid-State Electrolyte Design for Lithium Dendrite Suppression

Xiao Ji et al.

ADVANCED MATERIALS (2020)

Article Chemistry, Physical

LISICON-Based Amorphous Oxide for Bulk-Type All-Solid-State Lithium-Ion Battery

Toyoki Okumura et al.

ACS APPLIED ENERGY MATERIALS (2020)

Article Chemistry, Physical

Suppressing Li Dendrite Formation in Li2S-P2S5 Solid Electrolyte by LiI Incorporation

Fudong Han et al.

ADVANCED ENERGY MATERIALS (2018)

Article Chemistry, Physical

Mechanical Properties of Li2S-P2S5 Glasses with Lithium Halides and Application in All-Solid-State Batteries

Atsutaka Kato et al.

ACS APPLIED ENERGY MATERIALS (2018)

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)

Article Chemistry, Physical

Interface Stability in Solid-State Batteries

William D. Richards et al.

CHEMISTRY OF MATERIALS (2016)

Review Chemistry, Multidisciplinary

Designing high-energy lithium-sulfur batteries

Zhi Wei Seh et al.

CHEMICAL SOCIETY REVIEWS (2016)

Article Energy & Fuels

High-power all-solid-state batteries using sulfide superionic conductors

Yuki Kato et al.

NATURE ENERGY (2016)

Article Multidisciplinary Sciences

Structural and electronic features of binary Li2S-P2S5 glasses

Koji Ohara et al.

SCIENTIFIC REPORTS (2016)

Article Chemistry, Multidisciplinary

The Li-Ion Rechargeable Battery: A Perspective

John B. Goodenough et al.

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY (2013)

Article Multidisciplinary Sciences

Sulfide Solid Electrolyte with Favorable Mechanical Property for All-Solid-State Lithium Battery

Atsushi Sakuda et al.

SCIENTIFIC REPORTS (2013)

Review Materials Science, Ceramics

Recent development of sulfide solid electrolytes and interfacial modification for all-solid-state rechargeable lithium batteries

Masahiro Tatsumisago et al.

JOURNAL OF ASIAN CERAMIC SOCIETIES (2013)

Article Electrochemistry

Rechargeable batteries: challenges old and new

John B. Goodenough

JOURNAL OF SOLID STATE ELECTROCHEMISTRY (2012)

Review Chemistry, Multidisciplinary

Designing nanostructured Si anodes for high energy lithium ion batteries

Hui Wu et al.

NANO TODAY (2012)

Article Chemistry, Physical

A lithium superionic conductor

Noriaki Kamaya et al.

NATURE MATERIALS (2011)

Review Multidisciplinary Sciences

Electrical Energy Storage for the Grid: A Battery of Choices

Bruce Dunn et al.

SCIENCE (2011)

Review Chemistry, Physical

Challenges for Rechargeable Li Batteries

John B. Goodenough et al.

CHEMISTRY OF MATERIALS (2010)

Article Materials Science, Ceramics

Preparation and characterization of superionic conducting Li7P3S11 crystal from glassy liquids

Keiichi Minami et al.

JOURNAL OF THE CERAMIC SOCIETY OF JAPAN (2010)

Article Chemistry, Multidisciplinary

Fast lithium ion conduction in garnet-type Li7La3Zr2O12

Ramaswamy Murugan et al.

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION (2007)

Article Electrochemistry

Formation of superionic crystals from mechanically milled Li2S-P2S5 glasses

A Hayashi et al.

ELECTROCHEMISTRY COMMUNICATIONS (2003)

Article Electrochemistry

Lithium ionic conductor thio-LISICON -: The Li2S-GeS2-P2S5 system

R Kanno et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2001)