Themed collection Circularity showcase
Circular battery design: investing in sustainability and profitability
The market share of low-cost battery chemistries, which offer little to no recycling profitability with current methods, is growing. Design for circularity could be the key to reducing costs and enhancing sustainability for these batteries.
Energy Environ. Sci., 2024,17, 8529-8544
https://doi.org/10.1039/D4EE03418J
The pathway to net zero: a chemicals perspective
The global ambition is to reach a net zero waste and emissions society by 2050.
RSC Sustain., 2024,2, 1337-1349
https://doi.org/10.1039/D3SU00368J
The global burden of plastics in oral health: prospects for circularity, sustainable materials development and practice
Plastics in oral healthcare: innovations to move away from landfills to create value and sustainable care.
RSC Sustain., 2024,2, 881-902
https://doi.org/10.1039/D3SU00364G
Advancing sustainable end-of-life strategies for photovoltaic modules with silicon reclamation for lithium-ion battery anodes
Upcycling silicon from waste solar panels into Li-ion batteries as anodes is a potential solution to handle the ever-growing solar waste.
Green Chem., 2024,26, 3688-3697
https://doi.org/10.1039/D4GC00357H
From green to circular chemistry paved by biocatalysis
Biocatalysts raised by the green chemistry and circular chemistry principles can constitute the most important and efficient strategy for achieving many of the 17 Sustainable Development Goals launched by the UN.
Green Chem., 2023,25, 7041-7057
https://doi.org/10.1039/D3GC01878D
Circular economy for perovskite solar cells – drivers, progress and challenges
We examine drivers and benefits of adopting circular economy practices for perovskite solar cells (PSCs), a promising low-cost PV technology, identifying key challenges and reviewing research progress towards achieving a circular economy for PSCs.
Energy Environ. Sci., 2023,16, 3711-3733
https://doi.org/10.1039/D3EE00841J
A comparative overview of the electrochemical valorization and incorporation of CO2 in industrially relevant compounds
This review covers the recent work on the electrochemical valorization of CO2 towards key industrial compounds like carboxylic acids, urea and dimethyl carbonate by combining the eCO2RR intermediates with other active (in)organic reagents.
EES. Catal., 2024,2, 753-779
https://doi.org/10.1039/D4EY00005F
Improving plastic pyrolysis oil quality via an electrochemical process for polymer recycling: a review
In this review we discuss the application of electrochemical hydrogenation for pyrolysis oil upgrading, thus facilitating a circular polymer economy and low-carbon fuel production.
Energy Adv., 2024,3, 366-388
https://doi.org/10.1039/D3YA00389B
Electroreforming injects a new life into solid waste
This review draws the similarities between electroreforming of biomass and plastic derivatives and highlights the pretreatment of raw solid waste, the innovation in catalyst design, and mechanism investigation of waste derivative conversion.
EES. Catal., 2023,1, 892-920
https://doi.org/10.1039/D3EY00147D
Future bioenergy source by microalgae–bacteria consortia: a circular economy approach
Future sustainable approach of bioenergy production that uses microalgae–bacteria consortium to produce bioelectricity and biofuel for industrial and daily activities.
Green Chem., 2023,25, 8935-8949
https://doi.org/10.1039/D3GC02228E
Ginger waste as a potential feedstock for a zero-waste ginger biorefinery: a review
Ginger waste is an increasingly available renewable feedstock, which is rich in biobased chemicals and materials as well as a source of bioenergy. Ginger waste is explored as a feedstock leading to a potential zero-waste biorefinery.
RSC Sustain., 2023,1, 213-223
https://doi.org/10.1039/D2SU00099G
Molecular and material property variations during the ideal degradation and mechanical recycling of PET
To verify if PET mechanical recycling is feasible, we need to acknowledge chemical and material property variations. This review highlights the relevance of the connectivity of these variations as a function of the number of recycling cycles.
RSC Sustain., 2024,2, 3596-3637
https://doi.org/10.1039/D4SU00485J
From waste to resource: advancements in sustainable lignin modification
An overview on lignin modification and applications possibilities is provided. Importantly, a quantitative comparison of all discussed literature procedures in terms of sustainability is included.
Green Chem., 2024,26, 4358-4386
https://doi.org/10.1039/D4GC00745J
Homogeneous vs. heterogeneous catalysts for acceptorless dehydrogenation of biomass-derived glycerol and ethanol towards circular chemistry
Survey and comparison of homogeneous and heterogeneous catalytic processes for acceptorless dehydrogenation of glycerol and ethanol based on green metrics.
Green Chem., 2024,26, 3546-3564
https://doi.org/10.1039/D3GC04378A
Design of depolymerizable polymers toward a circular economy
While our society is facing the challenge of accumulating plastic waste, this review discusses recent advances towards polymer circularity with an emphasis on manipulations of the monomer–polymer equilibrium to create chemically recyclable polymers.
Green Chem., 2024,26, 2384-2420
https://doi.org/10.1039/D3GC04215D
Sustainable valorisation of food waste into engineered biochars for CO2 capture towards a circular economy
The large amount of food waste generated globally has significant adverse environmental impacts, highlighting the need for a historic resolution to achieve sustainable managment of food waste as well as its circular economy.
Green Chem., 2024,26, 1790-1805
https://doi.org/10.1039/D3GC04138G
Catalytic depolymerization of polyester plastics toward closed-loop recycling and upcycling
Catalytic depolymerization of polyester plastics toward closed-loop recycling and upcycling
Green Chem., 2024,26, 571-592
https://doi.org/10.1039/D3GC04174C
Bio-based agricultural products: a sustainable alternative to agrochemicals for promoting a circular economy
Utilizing waste streams to produce bio-based products has the potential to promote a circular economy. In addition, by incorporating biowaste into the circular economy, the production of sustainable bioproducts and bioenergy can be enhanced.
RSC Sustain., 2023,1, 746-762
https://doi.org/10.1039/D3SU00075C
Maximizing polypropylene recovery from waste carpet feedstock: a solvent-driven pathway towards circular economy
A novel approach for the efficient recovery of polypropylene from waste carpet feedstock utilising a solvent based method.
RSC Sustain., 2024,2, 1367-1371
https://doi.org/10.1039/D3SU00270E
Metal-free upcycling of plastic waste: photo-induced oxidative degradation of polystyrene in air
A photooxidation method was reported to facilitate the efficient degradation of polystyrene (PS) in air using porphyrin-based porous organic polymers (PPOPs). The method is mild and effective in promoting the degradation of different PS derivatives.
Green Chem., 2024,26, 1363-1369
https://doi.org/10.1039/D3GC04197B
Unifying CO2-to-fuel and biomass valorization over a metal-free 2D carbon nitride-fullerene heterostructure: a solar-driven chemical circular economy
Metal-free biomass alcohol oxidation in synergy with CO fuel production.
J. Mater. Chem. A, 2023,11, 18672-18678
https://doi.org/10.1039/D3TA04455F
Closed-loop recycling of microparticle-based polymers
We propose a recycling strategy for tough polymers based on microparticles. The "microparticle-based" concept allows materials recycling without loss of their properties (‘closed-loop’ recycling).
Green Chem., 2023,25, 3418-3424
https://doi.org/10.1039/D3GC00090G
Mapping the end-of-life of chemicals for circular economy opportunities
Material flow analysis of chemicals in the United States highlights low recycling rates, substantial climate change and human health impacts, and the potential for a circular economy to reduce waste and drive sustainability in the chemical industry.
RSC Sustain., 2024,2, 3353-3361
https://doi.org/10.1039/D4SU00517A
Chemically recyclable and reprogrammable epoxy thermosets derived from renewable resources
Bio-based epoxy networks were synthesized using a vanillin-based epoxy monomer and bio-derived diamines. These networks were recycled using both acidic depolymerization and transimination methods. Reprogramming was achieved using different amines.
RSC Sustain., 2024,2, 3311-3319
https://doi.org/10.1039/D4SU00382A
Homogenization offers access to quinoxalines in minutes: a solvent-free, catalyst-free protocol with a near-zero E-factor
A catalyst-free, sustainable methodology was developed for effortless synthesis of quinoxalines by milling 1,2-diamines and various 1,2-dicarbonyl compounds in a mini cell homogenizer at 4000 rpm for 3 min. The method has a near-zero E-factor.
RSC Mechanochem., 2025, Advance Article
https://doi.org/10.1039/D4MR00100A
Nature-inspired recycling of a protein mixture into a green fluorescent protein-based hydrogel
Protein metabolism is a wonderful example of polymer recycling. A random mixture of proteins gets digested into amino acids, which then can be used by cells to produce whichever protein is needed at the time of synthesis.
RSC Sustain., 2024,2, 2903-2909
https://doi.org/10.1039/D4SU00212A
Advancing sustainable practices in Li-ion battery cathode material recycling: mechanochemical optimisation for magnetic cobalt recovery
A systematic exploration of milling parameters was performed for improving reduction of cobalt from LCO cathode by aluminium, followed by magnetic extraction.
RSC Mechanochem., 2024,1, 393-401
https://doi.org/10.1039/D4MR00018H
The need to integrate mass- and energy-based metrics with life cycle impacts for sustainable chemicals manufacture
Analysis of over 700 chemical production routes showing that decision making towards more environmentally sustainable pathways is enhanced by combining mass- and energy-based process metrics with simplified life cycle impact indicators.
Green Chem., 2024,26, 9300-9309
https://doi.org/10.1039/D4GC00394B
Sustainable food packaging using modified kombucha-derived bacterial cellulose nanofillers in biodegradable polymers
The incorporation of modified bacterial cellulose derived from agricultural waste improves biodegradable composites by reducing oxygen permeability and accelerating biodegradation while maintaining mechanical properties.
RSC Sustain., 2024,2, 2367-2376
https://doi.org/10.1039/D4SU00168K
Ionic-liquid-processed keratin-based biocomposite films with cellulose and chitin for sustainable dye removal
Abundant biopolymers derived from wastes were used to prepare bio-based films, resulting in notable enhancements in their properties and promising potential as effective adsorbent materials.
RSC Sustain., 2024,2, 2239-2248
https://doi.org/10.1039/D4SU00179F
Recycling spent batteries to green innovation: a CuCo-based composite as an electrocatalyst for CO2 reduction
It is proposed to transform electronic waste into electrocatalytic devices, with the aim of producing nanomaterials and reducing the carbon footprint, thus completing a full cycle of recycling and reusing materials.
Sustainable Energy Fuels, 2024,8, 3104-3112
https://doi.org/10.1039/D4SE00368C
Steady states and kinetic modelling of the acid-catalysed ethanolysis of glucose, cellulose, and corn cob to ethyl levulinate
Ethyl levulinate is a promising advanced biofuel and platform chemical that can be derived from lignocellulosic biomass by ethanolysis processes.
Energy Adv., 2024,3, 1439-1458
https://doi.org/10.1039/D4YA00043A
Recyclable in-mold and printed electronics with polymer separation layers
Polymer separation layers facilitate the disassembly and recycling of composites made from printed electronics.
RSC Sustain., 2024,2, 1883-1894
https://doi.org/10.1039/D4SU00092G
Solvent-free chemical upcycling of poly(bisphenol A carbonate) and poly(lactic acid) plastic waste using SBA-15-functionalized basic ionic liquids
An efficient and solvent-free chemical upcycling of polycarbonate and polylactic acid plastic waste into valuable monomers to promote a circular and resource-efficient economy using SBA-15 functionalized basic ionic liquid catalysts is presented.
Green Chem., 2024,26, 3814-3831
https://doi.org/10.1039/D3GC04907H
Green-chemistry synthesis and optical properties of lead-free Cs2AgSbCl6 double perovskite by a mechanochemical method
Cs2AgSbCl6 double perovskite (DP) has been synthesized through many solid-state and solution routes.
RSC Mechanochem., 2024,1, 69-77
https://doi.org/10.1039/D3MR00024A
Durable and recyclable biomimetic glycol lignin/polyolefin compounds for a circular economy
Glycol lignin acts as a simultaneous UV absorbent, antioxidant, and mechanical reinforcement in polyolefins, thereby reducing carbon emissions and facilitating effective mechanical recycling.
J. Mater. Chem. A, 2024,12, 3014-3025
https://doi.org/10.1039/D3TA06230A
Selective chemical disassembly of elastane fibres and polyurethane coatings in textiles
Solvolysis of elastane in blended fabrics using tert-amyl alcohol and KOH (cat.) provides elastane monomers and a fibre matrix. The process is especially useful for polyamide/elastane blends, providing a possibility for fibre-to-fibre recycling.
Green Chem., 2023,25, 10622-10629
https://doi.org/10.1039/D3GC02994H
Hybrid thermo-electrochemical conversion of plastic wastes commingled with marine biomass to value-added products using renewable energy
Surface plastics and microplastics commingled with biomass are emerging pollutants in the marine environment.
Energy Environ. Sci., 2023,16, 5805-5821
https://doi.org/10.1039/D3EE02461J
Recovery of palladium from waste fashion items through food waste by-products
We propose an affordable and safe route to recover palladium in its metallic form from waste fashion items and recycle it in electronic devices.
RSC Sustain., 2023,1, 2350-2357
https://doi.org/10.1039/D3SU00242J
Design principles for LiFePO4 electrodes with improved recyclability
To improve sustainability of lithium-ion battery electrodes there is a need to design in recycling at the manufacturing stage.
Green Chem., 2023,25, 9959-9968
https://doi.org/10.1039/D3GC03970F
Vacuum pyrolysis depolymerization of waste polystyrene foam into high-purity styrene using a spirit lamp flame for convenient chemical recycling
Vacuum pyrolysis of waste polystyrene foam over a spirit lamp flame for 20 minutes produced 98% pure styrene without needing fractionation or purification, which promises a convenient closed-loop chemical recycling system.
RSC Sustain., 2023,1, 2058-2065
https://doi.org/10.1039/D3SU00207A
Surface modification of aramid fiber meshes – the key to chemically recyclable epoxy composites
Fiber surface functionalization can play a dual role in the development of fiber reinforced polymer composites; improving the overall performance and enabling recovery of high-quality fibers.
RSC Sustain., 2023,1, 1967-1981
https://doi.org/10.1039/D3SU00258F
Expanding the circularity of plastic and biochar materials by developing alternative low environmental footprint sensors
Flexible screen-printing technology modified with nano/material coating boosted the manufacturing of highly sensitive electrochemical sensors for fast and easy-to-handle tests in different application fields.
Green Chem., 2023,25, 6774-6783
https://doi.org/10.1039/D3GC01103H
Selective conversion of polyethylene wastes to methylated aromatics through cascade catalysis
Polyethylene was selective converted into methylated aromatics over the catalysts of aluminosilicate MFI zeolite nanosheets (s-ZSM-5) and mesoporous MFI zeolite modified with zinc species (Zn/meso-ZSM-5).
EES. Catal., 2023,1, 529-538
https://doi.org/10.1039/D3EY00011G
Sustainable waste-nitrogen upcycling enabled by low-concentration nitrate electrodialysis and high-performance ammonia electrosynthesis
A product-oriented electrolyzer design offers a remarkably high nitrate-to-ammonia performance on a simple nickel electrode in an aqueous NaOH/KOH/H2O electrolyte.
EES. Catal., 2023,1, 504-515
https://doi.org/10.1039/D3EY00058C
Techno-economic-environmental assessment of the integration of power-to-X and biogas utilization towards the production of electricity, hydrogen, methane and methanol
Various routes for the valorisation of biogas towards methane and methanol and for electricity or hydrogen storage is assessed.
Sustainable Energy Fuels, 2023,7, 2690-2706
https://doi.org/10.1039/D3SE00052D
Valorisation of red beet waste: one-step extraction and separation of betalains and chlorophylls using thermoreversible aqueous biphasic systems
An integrated extraction–separation process: extraction and selective separation of chlorophylls and betalains using thermoreversible aqueous biphasic systems.
Green Chem., 2023,25, 1852-1864
https://doi.org/10.1039/D2GC04480C
About this collection
A sustainable future includes zero-waste solutions and the continuous reuse of materials through circular design. This collection looks at recycling technologies, product design for disassembly, waste-to-resource processes and sustainable materials.