Conductive film for lithium batteries


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Rational design of binder, conductive additive and current

Herein, a binder-, conductive additive- and current collector-free Si/reduced graphene oxide film has been constructed via a simple thermal-reduction method. In the film,

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Effect of carbon blacks on electrical conduction and conductive

Carbon black is an important additive that facilitates electronic conduction in

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Li3TiCl6 as ionic conductive and compressible positive

Here, we propose the synthesis and use of lithium titanium chloride (Li3TiCl6) as room-temperature ionic conductive (i.e., 1.04 mS cm−1 at 25 °C) and compressible active

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Li3TiCl6 as ionic conductive and compressible positive

Here, we propose the synthesis and use of lithium titanium chloride (Li 3 TiCl 6) as room-temperature ionic conductive (i.e., 1.04 mS cm −1 at 25 °C) and compressible active

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High Ionic Conductive, Mechanical Robust Sulfide Solid Electrolyte

In this study, porous adhesive poly(ethylene vinyl acetate) (PEVA) scaffolds

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Sulfide solid electrolyte thin film with high ionic conductive from

Sulfide solid-state electrolyte (SSE) in all-solid-state lithium batteries (ASSLBs) has attracted increasing attention due to its outstanding safety and high energy density.

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Conductive Metal–Organic Frameworks for Rechargeable Lithium Batteries

Currently, rechargeable lithium batteries are representative of high-energy-density battery systems. Nevertheless, the development of rechargeable lithium batteries is

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Sulfide solid electrolyte thin film with high ionic conductive from

Recently, several attempts have been reported in ASSLBs of thin sulfide SSE films. Nan''s et al. reported a sulfide/polymer composite electrolyte film prepared by liquid

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High Ionic Conductive, Mechanical Robust Sulfide Solid

High Ionic Conductive, Mechanical Robust Sulfide Solid Electrolyte Films and Interface Design for All-Solid-State Lithium Metal Batteries. Dabing Li, Dabing Li. Beijing

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Ion-conductive properties and lithium battery performance of

The CPEs were subsequently assembled in solid-state lithium-ion batteries, and the cell performance including cycle performance, discharge capacity, and rate capability

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Volumetric Stress Managements on Silicon Anode of Lithium‐Ion Batteries

1 Introduction. Lithium-ion batteries (LIBs) have been extensively applied in portable electronics and renewable energy storage devices because of their high energy

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Flexible, Electrically Conductive, Nanostructured,

Lithium–sulfur batteries are afflicted with capacity fading on account of polysulfide shuttling. A novel cost-effective electrode that can hinder the polysulfide shuttling and realize high active material utilization is highly

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A high ionic conductive PDOL/LAGP composite solid electrolyte film

As the energy utilization is shifting to renewable and low carbon, the development of efficient energy storage devices is a great way to save energy [[1], [2], [3]].The lithium metal

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Flexible, Electrically Conductive, Nanostructured, Asymmetric

Flexible, Electrically Conductive, Nanostructured, Asymmetric Aerogel Films for Lithium-Sulfur Batteries. Lulu Bai, Junsheng Ma, Hongquan Song, Ya Yang, Chunyi Zhi, Sang Young Lee,

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Flexible, Electrically Conductive, Nanostructured, Asymmetric

Download Citation | On Dec 6, 2021, Lulu Bai and others published Flexible, Electrically Conductive, Nanostructured, Asymmetric Aerogel Films for Lithium–Sulfur Batteries | Find,

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Nanosheet cellulose-assisted solution processing of highly conductive

Thick electrode technology has attracted much attention of the industry as an effective and practical way to achieve high energy density of batteries, since it just needs to

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A high ionic conductive PDOL/LAGP composite solid electrolyte film

The results showed that the prepared PDOL/LAGP composite solid electrolyte film has high electrochemical performance and good interfacial compatibility with lithium

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Macroscopically uniform interface layer with Li+ conductive

Lithium (Li) metal is considered as the ultimate anode material to replace graphite anode in high-energy-density rechargeable batteries 1,2,3.Paring with high areal

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Effect of carbon blacks on electrical conduction and conductive

Carbon black is an important additive that facilitates electronic conduction in lithium-ion batteries and affects the conductive binder domain although it only occupies 5–8%

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High Ionic Conductive, Mechanical Robust Sulfide Solid

In this study, porous adhesive poly(ethylene vinyl acetate) (PEVA) scaffolds and polytetrafluoroethylene (PTFE) binders are utilized to interweave sulfide solid electrolytes into

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Highly Conductive and Lightweight Composite Film as Polysulfide

Between the sheets: A highly conductive and lightweight poly(3,4-ethylenedioxythiophene):polystyrene sulfonate–carbon nanotube (PEDOT:PSS-CNT)

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Dry-processed thick electrode design with porous conductive

Designing thick electrodes is essential for the applications of lithium-ion batteries that demand high energy density. Introducing a dry electrode process that does not require

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