# Advanced Battery Materials and Technologies

**Type:** Topics  
**Canonical URL:** https://scholariq.org/topics/advanced-battery-materials-and-technologies/

## Facts

| Field | Value |
| --- | --- |
| Description | This cluster of papers focuses on advances in lithium battery technologies, including topics such as lithium-sulfur batteries, solid-state electrolytes, nanostructured cathodes, high-energy storage, dendrite-free deposition of lithium metal, polymer electrolytes, sulfur hosts for cathodes, ionic conductivity, cathode materials, and electrochemical stability. |
| Domain | Physical Sciences |
| Field | Engineering |
| OpenAlex ID | t10281 |
| Works | 133 |

## Topic papers all

Showing 15 of 133.

- [Thermal runaway mechanism of lithium ion battery for electric vehicles: A review](https://scholariq.org/papers/thermal-runaway-mechanism-of-lithium-ion-battery-for-electric-vehicles-a-review/)
- [A review of lithium-ion battery safety concerns: The issues, strategies, and testing standards](https://scholariq.org/papers/a-review-of-lithium-ion-battery-safety-concerns-the-issues-strategies-and/)
- [Mitigating Thermal Runaway of Lithium-Ion Batteries](https://scholariq.org/papers/mitigating-thermal-runaway-of-lithium-ion-batteries/)
- [Enhancement of long stability of sulfur cathode by encapsulating sulfur into micropores of carbon spheres](https://scholariq.org/papers/enhancement-of-long-stability-of-sulfur-cathode-by-encapsulating-sulfur-into/)
- [Ultrapermeable, Reverse-Selective Nanocomposite Membranes](https://scholariq.org/papers/ultrapermeable-reverse-selective-nanocomposite-membranes/)
- [Hydrocarbon-Based Polymer Electrolyte Membranes: Importance of Morphology on Ion Transport and Membrane Stability](https://scholariq.org/papers/hydrocarbon-based-polymer-electrolyte-membranes-importance-of-morphology-on-ion/)
- [Graphite as anode materials: Fundamental mechanism, recent progress and advances](https://scholariq.org/papers/graphite-as-anode-materials-fundamental-mechanism-recent-progress-and-advances/)
- [Thermal runaway features of large format prismatic lithium ion battery using extended volume accelerating rate calorimetry](https://scholariq.org/papers/thermal-runaway-features-of-large-format-prismatic-lithium-ion-battery-using/)
- [Thermal Runaway of Lithium-Ion Batteries without Internal Short Circuit](https://scholariq.org/papers/thermal-runaway-of-lithium-ion-batteries-without-internal-short-circuit/)
- [Compositionally complex doping for zero-strain zero-cobalt layered cathodes](https://scholariq.org/papers/compositionally-complex-doping-for-zero-strain-zero-cobalt-layered-cathodes/)
- [Investigating the thermal runaway mechanisms of lithium-ion batteries based on thermal analysis database](https://scholariq.org/papers/investigating-the-thermal-runaway-mechanisms-of-lithium-ion-batteries-based-on/)
- [Investigating the relationship between internal short circuit and thermal runaway of lithium-ion batteries under thermal abuse condition](https://scholariq.org/papers/investigating-the-relationship-between-internal-short-circuit-and-thermal/)
- [A review of carbon materials and their composites with alloy metals for sodium ion battery anodes](https://scholariq.org/papers/a-review-of-carbon-materials-and-their-composites-with-alloy-metals-for-sodium/)
- [Multi-scale computation methods: Their applications in lithium-ion battery research and development](https://scholariq.org/papers/multi-scale-computation-methods-their-applications-in-lithium-ion-battery/)
- [Characterization of penetration induced thermal runaway propagation process within a large format lithium ion battery module](https://scholariq.org/papers/characterization-of-penetration-induced-thermal-runaway-propagation-process/)

## Topic primary papers

Showing 15 of 52.

- [Enhancement of long stability of sulfur cathode by encapsulating sulfur into micropores of carbon spheres](https://scholariq.org/papers/enhancement-of-long-stability-of-sulfur-cathode-by-encapsulating-sulfur-into/)
- [Developing high safety Li-metal anodes for future high-energy Li-metal batteries: strategies and perspectives](https://scholariq.org/papers/developing-high-safety-li-metal-anodes-for-future-high-energy-li-metal-batteries/)
- [Rational Design of MXene/1T‐2H MoS<sub>2</sub>‐C Nanohybrids for High‐Performance Lithium–Sulfur Batteries](https://scholariq.org/papers/rational-design-of-mxene-1t-2h-mos-sub-2-sub-c-nanohybrids-for-high-performance/)
- [Critical effects of electrolyte recipes for Li and Na metal batteries](https://scholariq.org/papers/critical-effects-of-electrolyte-recipes-for-li-and-na-metal-batteries/)
- [Fused Heteroaromatic Organic Compounds for High‐Power Electrodes of Rechargeable Lithium Batteries](https://scholariq.org/papers/fused-heteroaromatic-organic-compounds-for-high-power-electrodes-of-rechargeable/)
- [Crumpled Graphene Balls Stabilized Dendrite-free Lithium Metal Anodes](https://scholariq.org/papers/crumpled-graphene-balls-stabilized-dendrite-free-lithium-metal-anodes/)
- [One-pot solution coating of high quality LiF layer to stabilize Li metal anode](https://scholariq.org/papers/one-pot-solution-coating-of-high-quality-lif-layer-to-stabilize-li-metal-anode/)
- [Tailoring Practically Accessible Polymer/Inorganic Composite Electrolytes for All-Solid-State Lithium Metal Batteries: A Review](https://scholariq.org/papers/tailoring-practically-accessible-polymer-inorganic-composite-electrolytes-for/)
- [Synthesis and Electrochemical Performance of Sulfur/Highly Porous Carbon Composites](https://scholariq.org/papers/synthesis-and-electrochemical-performance-of-sulfur-highly-porous-carbon/)
- [Achieving Desirable Initial Coulombic Efficiencies and Full Capacity Utilization of Li‐Ion Batteries by Chemical Prelithiation of Graphite Anode](https://scholariq.org/papers/achieving-desirable-initial-coulombic-efficiencies-and-full-capacity-utilization/)
- [High performance lithium metal anode: Progress and prospects](https://scholariq.org/papers/high-performance-lithium-metal-anode-progress-and-prospects/)
- [A quantum-chemical study on the discharge reaction mechanism of lithium-sulfur batteries](https://scholariq.org/papers/a-quantum-chemical-study-on-the-discharge-reaction-mechanism-of-lithium-sulfur/)
- [Structure Design and Composition Engineering of Carbon‐Based Nanomaterials for Lithium Energy Storage](https://scholariq.org/papers/structure-design-and-composition-engineering-of-carbon-based-nanomaterials-for/)
- [Understanding the effects of chemical reactions at the cathode–electrolyte interface in sulfide based all-solid-state batteries](https://scholariq.org/papers/understanding-the-effects-of-chemical-reactions-at-the-cathode-electrolyte/)
- [Current-density dependence of Li <sub>2</sub> S/Li <sub>2</sub> S <sub>2</sub> growth in lithium–sulfur batteries](https://scholariq.org/papers/current-density-dependence-of-li-sub-2-sub-s-li-sub-2-sub-s-sub-2-sub-growth-in/)

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Source: ScholarIQ — public research metadata, principally OpenAlex. See https://scholariq.org/sources/ for provenance and https://scholariq.org/methodology/ for what these figures mean.
