Results 221 to 230 of about 55,956 (262)
Mesoporous Nanoarchitectures for Electrochemical Energy Conversion and Storage [PDF]
AbstractMesoporous materials have attracted considerable attention because of their distinctive properties, including high surface areas, large pore sizes, tunable pore structures, controllable chemical compositions, and abundant forms of composite materials.
Yuxing Yan +6 more
openaire +3 more sources
Some of the next articles are maybe not open access.
Related searches:
Related searches:
Stimuli‐Responsive Electrochemical Energy Storage Devices
The Chemical Record, 2022AbstractElectrochemical energy storage (EES) devices have been swiftly developed in recent years. Stimuli‐responsive EES devices that respond to different external stimuli are considered the most advanced EES devices. The stimuli‐responsive EES devices enhanced the performance and applications of the EES devices.
Parsimehr, Hamidreza, Ehsani, Ali
openaire +2 more sources
The role of graphene for electrochemical energy storage
Nature Materials, 2014Since its first isolation in 2004, graphene has become one of the hottest topics in the field of materials science, and its highly appealing properties have led to a plethora of scientific papers. Among the many affected areas of materials science, this 'graphene fever' has influenced particularly the world of electrochemical energy-storage devices ...
Raccichini, R. +3 more
openaire +3 more sources
Corn‐based Electrochemical Energy Storage Devices
The Chemical Record, 2020AbstractThe attention to renewable materials is amazingly increased in recent years to decrease environmental pollutions. Zea mays (corn) is one of the most produced plants by humans to provide food and energy. Hence, corn wastes as abundant and low‐cost biomass are easily found throughout the world.
Parsimehr, Hamidreza, Ehsani, Ali
openaire +3 more sources
Elemental Selenium for Electrochemical Energy Storage
The Journal of Physical Chemistry Letters, 2015To meet the increasing demand for electrochemical energy storage with high energy density, elemental Se is proposed as a new attractive candidate with high volumetric capacity density similar to that of S. Se is chemically and electrochemically analogous to S to a large extent but is saliently featured owing to its semiconductivity, compatibility with ...
Chun-Peng, Yang +2 more
openaire +2 more sources
Electrochemical Energy Storage
2018Electrochemical energy storage systems have the potential to make a major contribution to the implementation of sustainable energy. This chapter describes the basic principles of electrochemical energy storage and discusses three important types of system: rechargeable batteries, fuel cells and flow batteries.
D. Noel Buckley +3 more
openaire +1 more source
Graphdiyne applied for electrochemical energy storage
Dalton Transactions, 2019Fantastic characteristics originate from the unique chemical and electronic structure endow GDY with a bright future for applications in electrochemical energy storage.
Jianjiang He +5 more
openaire +2 more sources
Electrochemical energy storage
1994The most traditional of all energy storage devices for power systems is electrochemical energy storage (EES), which can be classified into three categories: primary batteries, secondary batteries and fuel cells. The common feature of these devices is primarily that stored chemical energy is converted to electrical energy.
openaire +1 more source
Experimental Research of Electrochemical Energy Storage
2017The paper presents experimental research involving VRLA (Valve Regulated Lead Acid) AGM (Absorbed Glass Mat) batteries. Test-bench research was conducted in the conditions of constant load current. The paper presents the temperature increase on the battery’s terminals and body accompanying battery discharge in the conditions of a preset ambient ...
Adrian Chmielewski +2 more
openaire +1 more source
Nanomaterials for electrochemical energy storage
Frontiers of Physics, 2014The development of nanotechnology in the past two decades has generated great capability of controlling materials at the nanometer scale and has enabled exciting opportunities to design materials with desirable electronic, ionic, photonic, and mechanical properties.
Liu, Nian +3 more
openaire +2 more sources

