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High performance porous iron oxide-carbon nanotube nanocomposite as an  anode material for lithium-ion batteries - ScienceDirect
High performance porous iron oxide-carbon nanotube nanocomposite as an anode material for lithium-ion batteries - ScienceDirect

Open source all-iron battery for renewable energy storage - ScienceDirect
Open source all-iron battery for renewable energy storage - ScienceDirect

Reversible Conversion Reactions of Mesoporous Iron Oxide with High Initial  Coulombic Efficiency for Lithium-Ion Batteries | ACS Sustainable Chemistry  & Engineering
Reversible Conversion Reactions of Mesoporous Iron Oxide with High Initial Coulombic Efficiency for Lithium-Ion Batteries | ACS Sustainable Chemistry & Engineering

Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical,  Catalytic, and Environmental Applications | ACS Nano
Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical, Catalytic, and Environmental Applications | ACS Nano

Enhanced cycle stability of iron(II, III) oxide nanoparticles encapsulated  with nitrogen-doped carbon and graphene frameworks for lithium battery  anodes - ScienceDirect
Enhanced cycle stability of iron(II, III) oxide nanoparticles encapsulated with nitrogen-doped carbon and graphene frameworks for lithium battery anodes - ScienceDirect

Nanomaterials | Free Full-Text | Perspectives on Iron Oxide-Based Materials  with Carbon as Anodes for Li- and K-Ion Batteries
Nanomaterials | Free Full-Text | Perspectives on Iron Oxide-Based Materials with Carbon as Anodes for Li- and K-Ion Batteries

Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical,  Catalytic, and Environmental Applications | ACS Nano
Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical, Catalytic, and Environmental Applications | ACS Nano

Decoration of cobalt/iron oxide nanoparticles on N-doped carbon nanosheets:  Electrochemical performances for lithium-ion batteries | SpringerLink
Decoration of cobalt/iron oxide nanoparticles on N-doped carbon nanosheets: Electrochemical performances for lithium-ion batteries | SpringerLink

Inorganic-organic competitive coating strategy derived uniform hollow  gradient-structured ferroferric oxide-carbon nanospheres for ultra-fast and  long-term lithium-ion battery | Nature Communications
Inorganic-organic competitive coating strategy derived uniform hollow gradient-structured ferroferric oxide-carbon nanospheres for ultra-fast and long-term lithium-ion battery | Nature Communications

C | Free Full-Text | Graphene-Enhanced Battery Components in Rechargeable  Lithium-Ion and Lithium Metal Batteries
C | Free Full-Text | Graphene-Enhanced Battery Components in Rechargeable Lithium-Ion and Lithium Metal Batteries

Iron oxide nanoconfined in carbon nanopores as high capacity anode for  rechargeable alkaline batteries - ScienceDirect
Iron oxide nanoconfined in carbon nanopores as high capacity anode for rechargeable alkaline batteries - ScienceDirect

Iron-based energy storage materials from carbon dioxide and scrap metal -  Materials Advances (RSC Publishing)
Iron-based energy storage materials from carbon dioxide and scrap metal - Materials Advances (RSC Publishing)

Uniform yolk-shell iron sulfide–carbon nanospheres for superior sodium–iron  sulfide batteries | Nature Communications
Uniform yolk-shell iron sulfide–carbon nanospheres for superior sodium–iron sulfide batteries | Nature Communications

How it works: delving into the anatomy of a battery | Pacific Green  Technologies Group
How it works: delving into the anatomy of a battery | Pacific Green Technologies Group

Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical,  Catalytic, and Environmental Applications | ACS Nano
Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical, Catalytic, and Environmental Applications | ACS Nano

Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical,  Catalytic, and Environmental Applications – Regional Centre of Advanced  Technologies and Materials
Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical, Catalytic, and Environmental Applications – Regional Centre of Advanced Technologies and Materials

Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical,  Catalytic, and Environmental Applications | ACS Nano
Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical, Catalytic, and Environmental Applications | ACS Nano

Preparation of Silicon-Carbon-Graphene Composites and their Application to  Lithium Ion Secondary Battery - Aerosol and Air Quality Research
Preparation of Silicon-Carbon-Graphene Composites and their Application to Lithium Ion Secondary Battery - Aerosol and Air Quality Research

Designed lamination of binder-free flexible iron oxide/carbon cloth as high  capacity and stable anode material for lithium-ion batteries - ScienceDirect
Designed lamination of binder-free flexible iron oxide/carbon cloth as high capacity and stable anode material for lithium-ion batteries - ScienceDirect

Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical,  Catalytic, and Environmental Applications | ACS Nano
Iron-Oxide-Supported Nanocarbon in Lithium-Ion Batteries, Medical, Catalytic, and Environmental Applications | ACS Nano

Iron‐Oxide‐Based Advanced Anode Materials for Lithium‐Ion Batteries - Zhang  - 2014 - Advanced Energy Materials - Wiley Online Library
Iron‐Oxide‐Based Advanced Anode Materials for Lithium‐Ion Batteries - Zhang - 2014 - Advanced Energy Materials - Wiley Online Library

A Review of the Iron–Air Secondary Battery for Energy Storage - McKerracher  - 2015 - ChemPlusChem - Wiley Online Library
A Review of the Iron–Air Secondary Battery for Energy Storage - McKerracher - 2015 - ChemPlusChem - Wiley Online Library

Lithium Iron Phosphate Oxide LiFePO4 Powder Carbon Coated LFP 198s Lithium  Ion Battery Cathode Powder Raw Material - China LiFePO4 and Phosphate
Lithium Iron Phosphate Oxide LiFePO4 Powder Carbon Coated LFP 198s Lithium Ion Battery Cathode Powder Raw Material - China LiFePO4 and Phosphate

Recent Developments for Aluminum–Air Batteries | SpringerLink
Recent Developments for Aluminum–Air Batteries | SpringerLink