Received: 2017-03-23
Accepted: 2018-10-05
Published Online: 2018-12-31
Published in Print: 2018-12-01
© by M. Venkateswarlu, et al., published by De Gruyter
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- Preparation of Ti/IrO2 Anode with Low Iridium Content by Thermal Decomposition Process: Electrochemical removal of organic pollutants in water
- Electrodeposition of Polymer Nanostructures using Three Diffuse Double Layers: Polymerization beyond the Liquid/Liquid Interfaces
- Carbon supported g-C3N4 for electrochemical sensing of hydrazine
- SnO2/PANI nanocomposite electrodes for supercapacitors and lithium ion batteries
- Partially Fluorinated Ether as an Electrolyte Additive to Modify Electrode Surface and Suppress Dissolution of Polysulfides in Li-S Batteries
- Nano-TiO2 Phosphate Conversion Coatings – A Chemical Approach
- Effect of magnesium sulfate on the electrochemical behavior of lead electrodes for lead acid batteries
- A three-dimensional conducting network of rGO-in-graphite-felt as electrode for vanadium redox flow batteries
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Articles in the same Issue
- Preparation of Ti/IrO2 Anode with Low Iridium Content by Thermal Decomposition Process: Electrochemical removal of organic pollutants in water
- Electrodeposition of Polymer Nanostructures using Three Diffuse Double Layers: Polymerization beyond the Liquid/Liquid Interfaces
- Carbon supported g-C3N4 for electrochemical sensing of hydrazine
- SnO2/PANI nanocomposite electrodes for supercapacitors and lithium ion batteries
- Partially Fluorinated Ether as an Electrolyte Additive to Modify Electrode Surface and Suppress Dissolution of Polysulfides in Li-S Batteries
- Nano-TiO2 Phosphate Conversion Coatings – A Chemical Approach
- Effect of magnesium sulfate on the electrochemical behavior of lead electrodes for lead acid batteries
- A three-dimensional conducting network of rGO-in-graphite-felt as electrode for vanadium redox flow batteries