# Advanced battery technologies research

**Type:** Topics  
**Canonical URL:** https://scholariq.org/topics/advanced-battery-technologies-research-2/

## Facts

| Field | Value |
| --- | --- |
| Description | This cluster of papers focuses on the development and advancement of aqueous zinc-ion battery technology for energy storage, with an emphasis on rechargeable batteries, zinc anode, electrolyte design, cathode materials, high energy density, and its application in grid storage. |
| Domain | Physical Sciences |
| Field | Engineering |
| OpenAlex ID | t11690 |
| Works | 118 |

## Topic papers all

Showing 15 of 118.

- [Latest advances in supercapacitors: from new electrode materials to novel device designs](https://scholariq.org/papers/latest-advances-in-supercapacitors-from-new-electrode-materials-to-novel-device/)
- [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/)
- [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/)
- [Promotion of oxygen reduction by a bio-inspired tethered iron phthalocyanine carbon nanotube-based catalyst](https://scholariq.org/papers/promotion-of-oxygen-reduction-by-a-bio-inspired-tethered-iron-phthalocyanine/)
- [Sulfonated hydrocarbon membranes for medium-temperature and low-humidity proton exchange membrane fuel cells (PEMFCs)](https://scholariq.org/papers/sulfonated-hydrocarbon-membranes-for-medium-temperature-and-low-humidity-proton/)
- [Aliphatic/Aromatic Polyimide Ionomers as a Proton Conductive Membrane for Fuel Cell Applications](https://scholariq.org/papers/aliphatic-aromatic-polyimide-ionomers-as-a-proton-conductive-membrane-for-fuel/)
- [Recent Progress in Electrically Rechargeable Zinc–Air Batteries](https://scholariq.org/papers/recent-progress-in-electrically-rechargeable-zinc-air-batteries/)
- [Preparation of MnCo<sub>2</sub>O<sub>4</sub>@Ni(OH)<sub>2</sub> Core–Shell Flowers for Asymmetric Supercapacitor Materials with Ultrahigh Specific Capacitance](https://scholariq.org/papers/preparation-of-mnco-sub-2-sub-o-sub-4-sub-ni-oh-sub-2-sub-core-shell-flowers-for/)
- [Ternary Metal Phosphide with Triple‐Layered Structure as a Low‐Cost and Efficient Electrocatalyst for Bifunctional Water Splitting](https://scholariq.org/papers/ternary-metal-phosphide-with-triple-layered-structure-as-a-low-cost-and/)
- [Hierarchical FeCo2O4@NiCo layered double hydroxide core/shell nanowires for high performance flexible all-solid-state asymmetric supercapacitors](https://scholariq.org/papers/hierarchical-feco2o4-nico-layered-double-hydroxide-core-shell-nanowires-for-high/)
- [Nanocrack-regulated self-humidifying membranes](https://scholariq.org/papers/nanocrack-regulated-self-humidifying-membranes/)
- [Graphene/Graphene‐Tube Nanocomposites Templated from Cage‐Containing Metal‐Organic Frameworks for Oxygen Reduction in Li–O<sub>2</sub> Batteries](https://scholariq.org/papers/graphene-graphene-tube-nanocomposites-templated-from-cage-containing-metal/)
- [Biopolymer-based hydrogel electrolytes for advanced energy storage/conversion devices: Properties, applications, and perspectives](https://scholariq.org/papers/biopolymer-based-hydrogel-electrolytes-for-advanced-energy-storage-conversion/)
- [Nitrogen‐Doped Cobalt Oxide Nanostructures Derived from Cobalt–Alanine Complexes for High‐Performance Oxygen Evolution Reactions](https://scholariq.org/papers/nitrogen-doped-cobalt-oxide-nanostructures-derived-from-cobalt-alanine-complexes/)
- [Nickel Cobalt Hydroxide @Reduced Graphene Oxide Hybrid Nanolayers for High Performance Asymmetric Supercapacitors with Remarkable Cycling Stability](https://scholariq.org/papers/nickel-cobalt-hydroxide-reduced-graphene-oxide-hybrid-nanolayers-for-high/)

## Topic primary papers

Showing 15 of 25.

- [Recent Progress in Electrically Rechargeable Zinc–Air Batteries](https://scholariq.org/papers/recent-progress-in-electrically-rechargeable-zinc-air-batteries/)
- [Flexible High‐Energy Polymer‐Electrolyte‐Based Rechargeable Zinc–Air Batteries](https://scholariq.org/papers/flexible-high-energy-polymer-electrolyte-based-rechargeable-zinc-air-batteries/)
- [Low-defect Prussian blue nanocubes as high capacity and long life cathodes for aqueous Na-ion batteries](https://scholariq.org/papers/low-defect-prussian-blue-nanocubes-as-high-capacity-and-long-life-cathodes-for/)
- [Controllable Urchin‐Like NiCo<sub>2</sub>S<sub>4</sub> Microsphere Synergized with Sulfur‐Doped Graphene as Bifunctional Catalyst for Superior Rechargeable Zn–Air Battery](https://scholariq.org/papers/controllable-urchin-like-nico-sub-2-sub-s-sub-4-sub-microsphere-synergized-with/)
- [Navigating challenges in large-scale renewable energy storage: Barriers, solutions, and innovations](https://scholariq.org/papers/navigating-challenges-in-large-scale-renewable-energy-storage-barriers-solutions/)
- [Stabilization of Zn anode via a multifunctional cysteine additive](https://scholariq.org/papers/stabilization-of-zn-anode-via-a-multifunctional-cysteine-additive/)
- [Unraveling the deposition/dissolution chemistry of MnO <sub>2</sub> for high-energy aqueous batteries](https://scholariq.org/papers/unraveling-the-deposition-dissolution-chemistry-of-mno-sub-2-sub-for-high-energy/)
- [Amphoteric Cellulose‐Based Double‐Network Hydrogel Electrolyte Toward Ultra‐Stable Zn Anode](https://scholariq.org/papers/amphoteric-cellulose-based-double-network-hydrogel-electrolyte-toward-ultra/)
- [Intercalation of organics into layered structures enables superior interface compatibility and fast charge diffusion for dendrite-free Zn anodes](https://scholariq.org/papers/intercalation-of-organics-into-layered-structures-enables-superior-interface/)
- [Hybrid Superlattice‐Triggered Selective Proton Grotthuss Intercalation in δ‐MnO<sub>2</sub> for High‐Performance Zinc‐Ion Battery](https://scholariq.org/papers/hybrid-superlattice-triggered-selective-proton-grotthuss-intercalation-in-mno/)
- [Regulating the electronic structure of manganese-based materials to optimize the performance of zinc-ion batteries](https://scholariq.org/papers/regulating-the-electronic-structure-of-manganese-based-materials-to-optimize-the/)
- [Operando Revealing Dynamic Reconstruction of NiCo Carbonate Hydroxide for High-Rate Energy Storage](https://scholariq.org/papers/operando-revealing-dynamic-reconstruction-of-nico-carbonate-hydroxide-for-high/)
- [Cobalt based metal-organic frameworks and their derivatives for electrochemical energy conversion and storage](https://scholariq.org/papers/cobalt-based-metal-organic-frameworks-and-their-derivatives-for-electrochemical/)
- [A Sustainable Dual Cross-Linked Cellulose Hydrogel Electrolyte for High-Performance Zinc-Metal Batteries](https://scholariq.org/papers/a-sustainable-dual-cross-linked-cellulose-hydrogel-electrolyte-for-high/)
- [Enhancing Zinc Anode Stability with Gallium Ion‐Induced Electrostatic Shielding and Oriented Plating](https://scholariq.org/papers/enhancing-zinc-anode-stability-with-gallium-ion-induced-electrostatic-shielding/)

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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.
