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Metallic Solids02:37

Metallic Solids

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Metallic solids such as crystals of copper, aluminum, and iron are formed by metal atoms. The structure of metallic crystals is often described as a uniform distribution of atomic nuclei within a “sea” of delocalized electrons. The atoms within such a metallic solid are held together by a unique force known as metallic bonding that gives rise to many useful and varied bulk properties.
All metallic solids exhibit high thermal and electrical conductivity, metallic luster, and malleability....
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Batteries and Fuel Cells03:12

Batteries and Fuel Cells

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A battery is a galvanic cell that is used as a source of electrical power for specific applications. Modern batteries exist in a multitude of forms to accommodate various applications, from tiny button batteries such as those that power wristwatches to the very large batteries used to supply backup energy to municipal power grids. Some batteries are designed for single-use applications and cannot be recharged (primary cells), while others are based on conveniently reversible cell reactions that...
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Structures of Solids02:22

Structures of Solids

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Solids in which the atoms, ions, or molecules are arranged in a definite repeating pattern are known as crystalline solids. Metals and ionic compounds typically form ordered, crystalline solids. A crystalline solid has a precise melting temperature because each atom or molecule of the same type is held in place with the same forces or energy. Amorphous solids or non-crystalline solids (or, sometimes, glasses) which lack an ordered internal structure and are randomly arranged. Substances that...
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Alkali Metals03:06

Alkali Metals

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Group 1 elements are soft and shiny metallic solids. They are malleable, ductile, and good conductors of heat and electricity. The melting points of the alkali metals are unusually low for metals and decrease going down the group, while the density increases going down the group with the exception of potassium (Table 1).
Table 1: Properties of the alkali metals
24.3K
Bonding in Metals02:32

Bonding in Metals

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Metallic bonds are formed between two metal atoms. A simplified model to describe metallic bonding has been developed by Paul Drüde called the “Electron Sea Model”. 
52.2K
Protein-protein Interfaces02:04

Protein-protein Interfaces

14.6K
Many proteins form complexes to carry out their functions, making protein-protein interactions (PPIs) essential for an organism's survival. Most PPIs are stabilized by numerous weak noncovalent chemical forces. The physical shape of the interfaces determines the way two proteins interact. Many globular proteins have closely-matching shapes on their surfaces, which form a large number of weak bonds. Additionally, many PPIs occur between two helices or between a surface cleft and a...
14.6K

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Updated: Jan 24, 2026

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
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Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications

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Failure Mechanism and Interface Engineering for NASICON-Structured All-Solid-State Lithium Metal Batteries.

Linchun He1, Qiaomei Sun1, Chao Chen1,2

  • 1Department of Mechanical Engineering , National University of Singapore , Singapore 117575.

ACS Applied Materials & Interfaces
|May 24, 2019
PubMed
Summary

Researchers developed a protective polymer coating for solid-state electrolytes, preventing reactions with lithium metal. This innovation enhances the stability and application of all-solid-state lithium metal batteries (ASSLiMB).

Keywords:
NASICON structureall-solid-state lithium metal batteryfailure mechanisminterfacesolid-state electrolyte

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Area of Science:

  • Materials Science
  • Electrochemistry
  • Solid-State Batteries

Background:

  • All-solid-state lithium metal batteries (ASSLiMB) are promising for high-energy storage, utilizing solid-state electrolytes (SSE) instead of liquid ones.
  • NASICON-structured Li1+ xAl xGe2- x(PO3)4 (LAGP) is a favored SSE due to its high ionic conductivity and stability.
  • A key limitation of LAGP is its instability when in contact with molten lithium, hindering its use in ASSLiMB.

Purpose of the Study:

  • To investigate the reaction mechanisms and failure modes between LAGP and molten lithium.
  • To develop an effective interfacial modification strategy to prevent degradation of LAGP in ASSLiMB.

Main Methods:

  • Studied reaction processes and failure mechanisms between LAGP and molten lithium.
  • Developed a protective interface layer using a thermosetting Li salt polymer, P(AA-co-MA)Li, with added LiCl for enhanced ionic conductivity.
  • Fabricated and galvanically cycled symmetric Li/interface/LAGP/interface/Li cells using molten Li-Sn alloy.

Main Results:

  • Identified a failure mechanism between LAGP and molten lithium.
  • The P(AA-co-MA)Li interface coating effectively prevented interfacial reactions.
  • Symmetric cells exhibited stable, low overpotentials (0.036 V, 0.105 V, 0.257 V) at various current densities over 100 cycles.

Conclusions:

  • The interfacial reaction between LAGP and molten lithium can be successfully suppressed by applying a P(AA-co-MA)Li coating.
  • This interfacial engineering approach significantly improves the stability of LAGP-based solid-state electrolytes for ASSLiMB applications.
  • The developed interface strategy offers a viable solution for realizing high-performance and reliable all-solid-state lithium metal batteries.