Themed collection Batteries showcase

43 items
Open Access Perspective

Battery electrode slurry rheology and its impact on manufacturing

Slurry rheology is a critical metrology tool for understanding and optimising the manufacture of battery electrodes.

Graphical abstract: Battery electrode slurry rheology and its impact on manufacturing
Open Access Perspective

Unlocking high-efficiency energy storage and conversion with biocompatible electrodes: the key role of interfacial interaction assembly and structural design

This perspective paper covers textile- and hydrogel-based biocompatible electrodes, and their applications for supercapacitors, biofuel cells, and actuators, focusing on the importance of interfacial interactions between electrode components.

Graphical abstract: Unlocking high-efficiency energy storage and conversion with biocompatible electrodes: the key role of interfacial interaction assembly and structural design
From the themed collection: Energy Advances Recent Review Articles
Review Article

Improving upon rechargeable battery technologies: on the role of high-entropy effects

An overview of high-entropy strategies for batteries is provided, emphasizing their unique structural/compositional attributes and positive effects on stability and performance, alongside a discussion of key challenges and future research directions.

Graphical abstract: Improving upon rechargeable battery technologies: on the role of high-entropy effects
From the themed collection: Batteries showcase
Open Access Review Article

Recent advances in p-type polymeric electrode materials towards high-voltage 4.0 V-class organic lithium-ion batteries

The p-type polymer electrodes have received an exponential growth of interest for organic lithium-ion batteries. This review summarizes their recent developments focusing on structure, performance, advantages, and challenges.

Graphical abstract: Recent advances in p-type polymeric electrode materials towards high-voltage 4.0 V-class organic lithium-ion batteries
From the themed collection: Batteries showcase
Review Article

High-entropy materials for aqueous zinc metal batteries

This review explores the potential and effective application paths of HEMs in AZIBs, aiming to break the constraints in AZIBs and pave the way toward the development of high-performance AZIBs.

Graphical abstract: High-entropy materials for aqueous zinc metal batteries
From the themed collection: Batteries showcase
Open Access Review Article

Recent advances in in situ/operando characterization of lithium–sulfur batteries

We review the recent literature on spectroscopic/electrochemical operando methods as they are increasingly being applied to understand lithium–sulfur batteries.

Graphical abstract: Recent advances in in situ/operando characterization of lithium–sulfur batteries
From the themed collection: Energy Advances Recent Review Articles
Review Article

Green and sustainable metal–air batteries for powering flexible wearable electronics: current status and future prospects

Naturally occurring materials can serve as green alternatives to synthesize and fabricate green wearable metal–air batteries.

Graphical abstract: Green and sustainable metal–air batteries for powering flexible wearable electronics: current status and future prospects
From the themed collection: Batteries showcase
Review Article

Graphene-based 2D materials for rechargeable batteries and hydrogen production and storage: a critical review

Graphene-based 2D materials for batteries and hydrogen production and storage applications.

Graphical abstract: Graphene-based 2D materials for rechargeable batteries and hydrogen production and storage: a critical review
From the themed collection: Batteries showcase
Open Access Review Article

Advanced bifunctional catalyst design for rechargeable zinc–air batteries

This review provides an overview of advanced bifunctional catalysts that promotes both oxygen reduction reaction and oxygen evolution reaction in rechargeable zinc–air batteries, and analyses in detail their principles and future development.

Graphical abstract: Advanced bifunctional catalyst design for rechargeable zinc–air batteries
From the themed collection: Batteries showcase
Tutorial Review

Toward the next generation of sustainable aluminum-ion batteries: a review

This review explores the current research progress on aluminum-ion batteries, focusing on cathode materials according to their mechanisms, as well as anodes and electrolytes, while discussing current challenges and modification strategies.

Graphical abstract: Toward the next generation of sustainable aluminum-ion batteries: a review
From the themed collection: 2024 Green Chemistry Reviews
Open Access Tutorial Review

Recent progresses in the synthesis and strategic designs of sustainable carbon-based fibrous electrodes for flexible batteries

A detailed review on carbon fiber (CF)-based flexible electrodes for application in rechargeable batteries is reported. Various preparation methods for flexible electrodes based on CFs are reviewed, along with their performance evaluations.

Graphical abstract: Recent progresses in the synthesis and strategic designs of sustainable carbon-based fibrous electrodes for flexible batteries
From the themed collection: RSC Sustainability Recent Review Articles
Critical Review

Biomass-derived metal-free heteroatom doped nanostructured carbon electrocatalysts for high-performance rechargeable lithium–air batteries

Renewable energy sources are crucial for addressing the energy crisis and global warming, but their intermittent nature necessitates storage.

Graphical abstract: Biomass-derived metal-free heteroatom doped nanostructured carbon electrocatalysts for high-performance rechargeable lithium–air batteries
From the themed collection: 2024 Green Chemistry Reviews
Communication

Yeast bio-batteries

We present a fully rechargeable, eco-friendly bio-battery powered by Saccharomyces cerevisiae on recyclable PET electrodes, with high cyclability and promising applications in sustainable energy solutions for low-power devices.

Graphical abstract: Yeast bio-batteries
From the themed collection: Batteries showcase
Open Access Communication

Structural and transport properties of battery electrolytes at sub-zero temperatures

Formulating and establishing design principles to improve low-temperature performance of battery electrolytes.

Graphical abstract: Structural and transport properties of battery electrolytes at sub-zero temperatures
From the themed collection: Recent Open Access Articles
Open Access Communication

Electrolyte tuning with low concentrations of additive for dendrite suppression in lithium metal anodes

Lithium metal is considered as an ideal anode for high-energy density storage systems with dendrites being a major issue for lifetime and safety. A gadolinium additive is found to be suppressing dendrite growth resulting higher performance retention.

Graphical abstract: Electrolyte tuning with low concentrations of additive for dendrite suppression in lithium metal anodes
From the themed collection: Recent Open Access Articles
Paper

Recyclable HF-free Ti3C2Tx 3D-printed supercapacitors: their second life in sodium-ion batteries

Sodium lactate and conductive carbon are recycled to utilize them as electrolytes of supercapacitors and conductive additives of sodium-ion batteries, respectively.

Graphical abstract: Recyclable HF-free Ti3C2Tx 3D-printed supercapacitors: their second life in sodium-ion batteries
From the themed collection: Batteries showcase
Paper

Diameter dependent performance of silicon nanowire anodes grown on 3D current collectors for lithium-ion batteries

Si nanowires (Si NWs) with diameters tuned from ∼35 to 100 nm were directly grown on large-area (30 cm2) stainless-steel mesh (SSM) substrates via a facile vapour–liquid–solid approach.

Graphical abstract: Diameter dependent performance of silicon nanowire anodes grown on 3D current collectors for lithium-ion batteries
From the themed collection: Batteries showcase
Paper

Bimetallic-ion co-intercalation to stabilize vanadium–oxygen bonds towards high-performance aqueous zinc-ion storage

We designed a bimetallic-ion co-intercalation strategy to boost the performance of AZIBs using VOH, which significantly stabilizes the vanadium–oxygen bond.

Graphical abstract: Bimetallic-ion co-intercalation to stabilize vanadium–oxygen bonds towards high-performance aqueous zinc-ion storage
From the themed collection: Batteries showcase
Open Access Paper

Non-woven pitch-based carbon fiber electrodes for low-cost redox flow battery

The low-cost and sustainable non-woven carbon fibers produced from petroleum pitch using a melt-blowing process are shown to be an ideal alternative to expensive polyacrylonitrile-based carbon felt electrode material for redox flow batteries.

Graphical abstract: Non-woven pitch-based carbon fiber electrodes for low-cost redox flow battery
From the themed collection: Recent Open Access Articles
Open Access Paper

Vat photopolymerization of tantalum-doped Li7La3Zr2O12 electrolytes: a new Frontier in solid-state battery design

Vat photopolymerization based 3D printing to fabricate Ta-doped LLZO electrolytes for solid state batteries, aiming to address limitations in traditional manufacturing methods.

Graphical abstract: Vat photopolymerization of tantalum-doped Li7La3Zr2O12 electrolytes: a new Frontier in solid-state battery design
From the themed collection: Batteries showcase
Paper

Pre-lithiation carbon anodes mitigating potassium loss for high-performance potassium-ion energy storage devices

A pre-lithiation carbon anode with a preformed SEI layer effectively mitigates potassium loss, thus enabling the fabrication of high-performance K+ energy storage devices without the need for unsafe and immature pre-potassium treatments.

Graphical abstract: Pre-lithiation carbon anodes mitigating potassium loss for high-performance potassium-ion energy storage devices
From the themed collection: Batteries showcase
Open Access Paper

An ultrathin Li-doped perovskite SEI film with high Li ion flux for a fast charging lithium metal battery

A novel artificial SEI film (Li–CsPbCl3) based on lithium-doped cesium lead chloride perovskite enables fast charging lithium metal batteries by regulating the rapid transport and uniform deposition of lithium ions.

Graphical abstract: An ultrathin Li-doped perovskite SEI film with high Li ion flux for a fast charging lithium metal battery
From the themed collection: Batteries showcase
Paper

Manipulating defects simultaneously boosts the crystal stability and the electrochemical reversibility toward long-life aqueous zinc ion batteries

Combining sulfur-doping and heterojunction in vanadium oxide cathodes is first proposed herein toward long-life aqueous zinc ion batteries. The obtained S-VO2/V6O13-2 manifests a high capacity retention rate of 85.8% after 500 cycles at 0.5 A g−1.

Graphical abstract: Manipulating defects simultaneously boosts the crystal stability and the electrochemical reversibility toward long-life aqueous zinc ion batteries
From the themed collection: Batteries showcase
Paper

Regulating interfacial reactions through electrolyte chemistry enables an anion-rich interphase for wide-temperature zinc metal batteries

Zinc-ion batteries are challenged by zinc dendrites, notorious side reactions, and poor performance at low temperatures.

Graphical abstract: Regulating interfacial reactions through electrolyte chemistry enables an anion-rich interphase for wide-temperature zinc metal batteries
From the themed collection: Batteries showcase
Open Access Paper

Lithiated polymer coating for interface stabilization in Li6PS5Cl-based solid-state batteries with high-nickel NCM

During cell cycling with NCM cathode and Li6PS5Cl catholyte, interfacial degradation leads to reduced active mass and particle cracking. We mitigate this by coating NCM with polyvinylpyrrolidone and sulfonated poly(phenylene sulfone).

Graphical abstract: Lithiated polymer coating for interface stabilization in Li6PS5Cl-based solid-state batteries with high-nickel NCM
From the themed collection: Batteries showcase
Paper

Asymmetric orbital hybridization at the MXene–VO2−x interface stabilizes oxygen vacancies for enhanced reversibility in aqueous zinc-ion batteries

The MXene–VO2−x cathode with asymmetric Ti–O–V orbital hybridization at the heterointerface for zinc-ion batteries is designed to stabilize the oxygen vacancies through charge transfer, thus efficiently boosting the electrochemical performance.

Graphical abstract: Asymmetric orbital hybridization at the MXene–VO2−x interface stabilizes oxygen vacancies for enhanced reversibility in aqueous zinc-ion batteries
From the themed collection: Batteries showcase
Open Access Paper

Reduced graphene oxide derived from the spent graphite anodes as a sulfur host in lithium–sulfur batteries

Recycled graphite anodes from spent LIBs as a conductive carbon host in LSBs.

Graphical abstract: Reduced graphene oxide derived from the spent graphite anodes as a sulfur host in lithium–sulfur batteries
From the themed collection: Batteries showcase
Paper

Removal of residual contaminants by minute-level washing facilitates the direct regeneration of spent cathodes from retired EV Li-ion batteries

Our study presents a minute-level water-based pretreatment that purifies degraded cathodes, enhancing lithium diffusivity and capacity retention in rejuvenated cathodes compared to contaminated ones.

Graphical abstract: Removal of residual contaminants by minute-level washing facilitates the direct regeneration of spent cathodes from retired EV Li-ion batteries
From the themed collection: Batteries showcase
Paper

Enhancement of catalytic centres by RuO2 addition to CuFe2O4 cathode catalyst for rechargeable lithium–air batteries: influence of CO2 on Li–O2 battery performances

Herein, the oxygen reduction reaction and oxygen evolution reaction (ORR/OER) kinetics of the inverse-spinel CuFe2O4 catalyst was enhanced via the addition of a very low quantity of RuO2, which powers an LED when used in Li–air and Li–CO2 batteries.

Graphical abstract: Enhancement of catalytic centres by RuO2 addition to CuFe2O4 cathode catalyst for rechargeable lithium–air batteries: influence of CO2 on Li–O2 battery performances
From the themed collection: Batteries showcase
Open Access Paper

Double layer capacitance as a sensitive metric to monitor the formation of solid electrolyte interphases in Li–ion batteries

Step-protocol to measure the SEI formation by double layer capacitances with detangled time and potential contributions.

Graphical abstract: Double layer capacitance as a sensitive metric to monitor the formation of solid electrolyte interphases in Li–ion batteries
From the themed collection: Batteries showcase
Open Access Paper

Interplay of intercalation dynamics and lithium plating in monolithic and architectured graphite anodes during fast charging

Fast charging of high-capacity anodes is challenging due to lithium plating reactions, which lead to poor cycling performance and safety concerns.

Graphical abstract: Interplay of intercalation dynamics and lithium plating in monolithic and architectured graphite anodes during fast charging
From the themed collection: Recent Open Access Articles
Paper

An energy-efficient tellurium electrode enabled by a Cs2TeI6 perovskite structure for durable aqueous Zn–Te batteries

CsI in 2 M ZnSO4 aqueous electrolyte facilitates the formation of Cs2TeI6 perovskite phase for Te electrode, effectively suppressing Te4+ hydrolysis and sustaining fast redox kinetics in multi-electron transfer Zn–Te aqueous batteries.

Graphical abstract: An energy-efficient tellurium electrode enabled by a Cs2TeI6 perovskite structure for durable aqueous Zn–Te batteries
From the themed collection: Batteries showcase
Open Access Paper

Recovery of graphite from industrial lithium-ion battery black mass

A streamlined workflow is established for the recovery of graphite from industrial lithium-ion battery black mass, which could be seamlessly integrated into the existing cathode materials recycling processes developed in the industry.

Graphical abstract: Recovery of graphite from industrial lithium-ion battery black mass
From the themed collection: Batteries showcase
Open Access Paper

Electrolyte engineering for thermally stable Li–S batteries operating from –20 °C to 100 °C

An optimized electrolyte configuration is proposed for high performance Li–S batteries operating in extremely harsh temperature environments.

Graphical abstract: Electrolyte engineering for thermally stable Li–S batteries operating from –20 °C to 100 °C
From the themed collection: Recent Open Access Articles
Open Access Paper

Cathode properties of a controlled crystallinity nano-Li1.2Cr0.4Mn0.4O2 cathode for lithium ion batteries

The milled-Li1.2Cr0.4Mn0.4O2 (milled-LCMO) cathode, a promising material for next-generation Li ion batteries, is prepared by dry ball-milling of layered rocksalt-type Li1.2Cr0.4Mn0.4O2 (layered-LCMO) obtained by solid-state synthesis.

Graphical abstract: Cathode properties of a controlled crystallinity nano-Li1.2Cr0.4Mn0.4O2 cathode for lithium ion batteries
From the themed collection: Batteries showcase
Open Access Paper

Non-aqueous direct leaching using a reusable nickel-selective amic-acid extractant for efficient lithium-ion battery recycling

A nickel-selective amic-acid extractant D2EHAG efficiently leaches and separates metals from LiB cathode materials. Furthermore, D2EHAG can be reused for subsequent leaching, making it a promising candidate for a sustainable recycling process.

Graphical abstract: Non-aqueous direct leaching using a reusable nickel-selective amic-acid extractant for efficient lithium-ion battery recycling
From the themed collection: Batteries showcase
Open Access Paper

Multi-metal (Fe, Cu, and Zn) coordinated hollow porous dodecahedron nanocage catalyst for oxygen reduction in Zn–air batteries

The coupling of multiple low-cost metals and porous nanocarbon materials aimed at replacing precious metals to enhance electrocatalytic oxygen reduction is a critical challenge in some crucial research areas.

Graphical abstract: Multi-metal (Fe, Cu, and Zn) coordinated hollow porous dodecahedron nanocage catalyst for oxygen reduction in Zn–air batteries
From the themed collection: Batteries showcase
Paper

Long-life sodium–sulfur batteries enabled by super-sodiophilic seeds

Sodium–metal batteries (SMBs) are an appealing sustainable low-cost alternative to lithium–metal batteries due to their high theoretical capacity (1165 mA h g−1) and abundance of sodium.

Graphical abstract: Long-life sodium–sulfur batteries enabled by super-sodiophilic seeds
From the themed collection: Batteries showcase
Open Access Paper

Singlet oxygen is not the main source of electrolyte degradation in lithium–oxygen batteries

The lithium–oxygen field has focused on singlet oxygen’s role in cell degradation. This study shows no significant reaction between singlet oxygen and the electrolyte or carbon cathode, confirming it is not the major degradation source.

Graphical abstract: Singlet oxygen is not the main source of electrolyte degradation in lithium–oxygen batteries
From the themed collection: Recent Open Access Articles
Paper

Active site switching on high entropy phosphides as bifunctional oxygen electrocatalysts for rechargeable/robust Zn–air battery

FeCoNiPdWP exhibit excellent oxygen evolution and reduction reaction performance via all elements playing distinctive roles and the switchable active sites in redox reactions, leading to robust zinc air batteries.

Graphical abstract: Active site switching on high entropy phosphides as bifunctional oxygen electrocatalysts for rechargeable/robust Zn–air battery
From the themed collection: Batteries showcase
Paper

Dual-carbon coupling modulated bimetallic sulfides as high-efficiency bifunctional oxygen electrocatalysts in a rechargeable Zn–air battery

A hybrid of bimetallic sulfides modulated by 1D/2D carbon displays highly efficient bifunctional electrocatalytic performance for the ORR/OER in a rechargeable Zn–air battery.

Graphical abstract: Dual-carbon coupling modulated bimetallic sulfides as high-efficiency bifunctional oxygen electrocatalysts in a rechargeable Zn–air battery
From the themed collection: Batteries showcase
Open Access Paper

A bi-functional air electrode developed from a dual-MOF strategy for high-performance zinc–air batteries

We designed a bi-functional (OER/ORR) air electrode using the a dual-MOF strategy for ZABs wherein a Fe-containing MOF (MIL-100) acts as a support to expose OER active sites and carbonized ZIF-67 acts as the ORR catalyst.

Graphical abstract: A bi-functional air electrode developed from a dual-MOF strategy for high-performance zinc–air batteries
From the themed collection: Batteries showcase
Open Access Paper

Enhanced electrochemical discharge of Li-ion batteries for safe recycling

The safe recycling of spent LIBs is challenging, as they often contain residual energy. Left untreated, this can trigger a thermal runaway and result in disaster during the recycling process. Electrochemical discharge method is an easy and inexpensive method to eliminate this hazard.

Graphical abstract: Enhanced electrochemical discharge of Li-ion batteries for safe recycling
From the themed collection: Recent Open Access Articles
43 items

About this collection

How can we increase battery efficiency, reduce costs and improve sustainability? This collection investigates materials, chemistry and design to enhance energy storage capabilities.

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