Manipulating Local Chemistry of Phosphorus for High-Performance Sodium Ion Battery Anode Applications
Explore this paper's citation graph
- Type
- article
- Published
- 2018-12-04
- Cited by
- 8
- References
- 61
- OpenAlex
- https://openalex.org/W2903373522
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:104341803
Keywords
Anode, Electrochemistry, Battery (electricity), Composite number, Phosphorus
References
- Preparation of titanium dioxide nanoparticles modified with methacrylate and their electrophoretic properties
- Heat treatment effect on the physical properties of cobalt doped TiO2 sol–gel materials
- Preparation, characterization of P-doped TiO2 nanoparticles and their excellent photocatalystic properties under the solar light irradiation
- Cu 6 Sn 5 –TiC–C nanocomposite anodes for high-performance sodium-ion batteries
- Chemical Analysis by X-Ray Diffraction
- Effect of calcined atmosphere on the photocatalytic activity of P-doped TiO2
- Effect of TiC addition on SnSb-C composite anodes for sodium-ion batteries
- Dual Raman features of double coaxial carbon nanotubes with N-doped and B-doped multiwalls.
- Effect of the P/Ti Ratio on the Visible-Light Photocatalytic Activity of P-Doped TiO2
- Raman spectrum of anatase, TiO2
- Tin Phosphide as a Promising Anode Material for Na‐Ion Batteries
- Growth and Crystallization of Titanium Oxide Films at Different Anodization Modes
- Electrochemical and thermal properties of hard carbon-type anodes for Na-ion batteries
- Self‐Supported Nanotube Arrays of Sulfur‐Doped TiO2 Enabling Ultrastable and Robust Sodium Storage
- Amorphous Red Phosphorus Embedded in Highly Ordered Mesoporous Carbon with Superior Lithium and Sodium Storage Capacity.
- Double‐Walled Sb@TiO2−x Nanotubes as a Superior High‐Rate and Ultralong‐Lifespan Anode Material for Na‐Ion and Li‐Ion Batteries
- Amorphous Phosphorus/Nitrogen-Doped Graphene Paper for Ultrastable Sodium-Ion Batteries.
- Synergistic Na-storage reactions in Sn4P3 as a high-capacity, cycle-stable anode of Na-ion batteries.
- Carbothermic reduction synthesis of red phosphorus-filled 3D carbon material as a high-capacity anode for sodium ion batteries
- Highly Visible Light Responsive, Narrow Band gap TiO2 Nanoparticles Modified by Elemental Red Phosphorus for Photocatalysis and Photoelectrochemical Applications
Cited by
- A Review on Applications of Layered Phosphorus in Energy Storage
- A review of phosphorus and phosphides as anode materials for advanced sodium-ion batteries
- Red phosphorus confined in hierarchical hollow surface-modified Co9S8 for enhanced sodium storage
- Rational Design of Hierarchically Structured CoS2@NCNTs from Metal–Organic Frameworks for Efficient Lithium/Sodium Storage Performance
- Boosting Potassium Storage Performance of Red Phosphorous via Modifying the Nickel Foam Substrate
- Phosphorus/Phosphide‐Based Materials for Alkali Metal‐Ion Batteries
- Advancements in sodium-ion batteries: An in-depth scientometric review
Related papers
- Closing the Battery Loop for Rechargeable Batteries
- Narrow band-gap cathode Fe3(PO4)2 for sodium-ion battery with enhanced sodium storage
- Research status and perspectives of rechargeable Li-CO2 battery
- High Performance Na–CuCl2 Rechargeable Battery toward Room Temperature ZEBRA‐Type Battery
- Na4Mn9O18/Carbon Nanotube Composite as a High Electrochemical Performance Material for Aqueous Sodium-Ion Batteries
- Electrochemical Properties of Hard Carbon Materials As Anode Materials for Sodium-Ion Battery
- Development of fiber-type potassium-based cathode for sodium ion battery
- Research progress in the sodium-ion battery cathode material
- Sodium-ion battery based on an electrochemically converted NaFePO4 cathode and nanostructured tin-carbon anode.
- Nanostructured vanadium tri-oxides, as a long life and high performance anode for sodium-ion battery