Skip to search formSkip to main contentSkip to account menu

Battery materials for ultrafast charging and discharging

@article{Kang2009BatteryMF,
  title={Battery materials for ultrafast charging and discharging},
  author={Byoungwoo Kang and Gerbrand Ceder},
  journal={Nature},
  year={2009},
  volume={458},
  pages={190-193},
  url={https://api.semanticscholar.org/CorpusID:20592628}
}
It is shown that batteries which obtain high energy density by storing charge in the bulk of a material can also achieve ultrahigh discharge rates, comparable to those of supercapacitors.

Hybrid supercapacitor-battery materials for fast electrochemical charge storage

High energy and high power electrochemical energy storage devices rely on different fundamental working principles - bulk vs. surface ion diffusion and electron conduction. Meeting both

Three-dimensional bicontinuous ultrafast-charge and -discharge bulk battery electrodes.

This work demonstrates very large battery charge and discharge rates with minimal capacity loss by using cathodes made from a self-assembled three-dimensional bicontinuous nanoarchitecture consisting of an electrolytically active material sandwiched between rapid ion and electron transport pathways.

A nanonet-enabled Li ion battery cathode material with high power rate, high capacity, and long cycle lifetime.

These figures indicate that a cathode material significantly better than V(2)O(5) of other morphologies is produced, which is critical to the sustainable high capacities of advanced energy conversion and storage devices.

Copper hexacyanoferrate battery electrodes with long cycle life and high power.

Crystalline nanoparticles of copper hexacyanoferrate, which has an ultra-low strain open framework structure, can be operated as a battery electrode in inexpensive aqueous electrolytes and round-trip energy efficiencies of 99% can be achieved.

High-rate lithium ion energy storage to facilitate increased penetration of photovoltaic systems in electricity grids

High-rate lithium ion batteries with long cycling lives can provide electricity grid stabilization services in the presence of large fractions of intermittent generators, such as photovoltaics.

Plug-in hybrids and new energy storages

    V. Bršlica
    Engineering, Environmental Science
  • 2009
The rapid development in batteries chemistry and technology allows preparing the lithium or Ni-MH cells with energy density over 360kJ/kg. Plug-in hybrid vehicle PHEV mass production is prepared with

A solid state energy storage device with supercapacitor–battery hybrid design

High power and high energy density are important requirements for advanced energy storage systems in mobile electronic devices, electric vehicles, and military-grade high-rate energy storage systems.

Rational material design for ultrafast rechargeable lithium-ion batteries.

This tutorial review presents the state-of-the-art developments in ultrafast charging LIBs by the rational design of materials, and several aspects of the intrinsic materials, materials engineering and processing, and electrode materials architecture design towards maximizing both ionic and electronic conductivity in the electrode with a short diffusion length.
...
...

Transition from 'supercapacitor' to 'battery' behavior in electrochemical energy storage

    B. E. Conway
    Materials Science, Physics
  • 1990
The storage of electrochemical energy in battery supercapacitor, and double-layer capacitor devices is considered. Supercapacitor systems based on 2-dimensional underpotential deposition reactions

Electronically conductive phospho-olivines as lithium storage electrodes

It is shown that controlled cation non-stoichiometry combined with solid-solution doping by metals supervalent to Li+ increases the electronic conductivity of LiFePO4 by a factor of ∼108, which may allow development of lithium batteries with the highest power density yet.

An Asymmetric Hybrid Nonaqueous Energy Storage Cell

A nonaqueous asymmetric electrochemical cell technology is presented where the positive electrode stores charge through a reversible nonfaradaic or pseudocapacitive reaction of anions on the surface

Nanostructured materials for lithium-ion batteries: surface conductivity vs. bulk ion/electron transport.

Factors relating to doping and defects in olivine phosphates LiMPO4 (M = Fe, Mn, Co, Ni) are discussed and methods by which in situ nanophase composites with conductivities ranging from 10(-4)-10(-2) S cm(-1) can be prepared are described.

Nanostructured materials for advanced energy conversion and storage devices

This review describes some recent developments in the discovery of nanoelectrolytes and nanoeLECTrodes for lithium batteries, fuel cells and supercapacitors and the advantages and disadvantages of the nanoscale in materials design for such devices.

Nanosize effect on high-rate Li-ion intercalation in LiCoO2 electrode.

The size-controlled synthesis of nanocrystalline LiCoO2 is established through a hydrothermal reaction and, for the first time, the structural and electrochemical properties of this intercalation cathode material are clarified.

Phospho‐olivines as Positive‐Electrode Materials for Rechargeable Lithium Batteries

Reversible extraction of lithium from (triphylite) and insertion of lithium into at 3.5 V vs. lithium at 0.05 mA/cm2 shows this material to be an excellent candidate for the cathode of a low‐power,

Issues and challenges facing rechargeable lithium batteries

A brief historical review of the development of lithium-based rechargeable batteries is presented, ongoing research strategies are highlighted, and the challenges that remain regarding the synthesis, characterization, electrochemical performance and safety of these systems are discussed.

Nano-network electronic conduction in iron and nickel olivine phosphates

The demonstration of non-carbonaceous-network grain-boundary conduction to be the first in these materials, and that it holds promise for other insulating phosphates.
...
...
Morty Proxy This is a proxified and sanitized view of the page, visit original site.