Towards greener batteries : sustainable components and materials for next-generation batteries
Molaiyan, P., Bhattacharyya, S., dos Reis, G. S., Sliz, R., Paolella, A., & Lassi, U. (2024). Towards greener batteries : sustainable components and materials for next-generation batteries. Green Chemistry, Early online. https://doi.org/10.1039/d3gc05027k
Julkaistu sarjassa
Green ChemistryTekijät
Päivämäärä
2024Tekijänoikeudet
© The Royal Society of Chemistry 2024
Batteries are the main component of many electrical systems, and due to the elevated consumption of electric vehicles and portable electronic devices, they are the dominant and most rapidly growing energy storage technology. Consequently, they are set to play a crucial role in meeting the goal of cutting greenhouse gas emissions to achieve more sustainable societies. In this critical report, a rational basic-to-advanced compilation study of the effectiveness, techno-feasibility, and sustainability aspects of innovative greener manufacturing technologies and processes that deliver each battery component (anodes, cathodes, electrolytes, and separators) is accomplished, aiming to improve battery safety and the circularity of end-products. Special attention is given to biomass-derived anode materials and bio-based separators utilization that indicates excellent prospects considering green chemistry, greener binders, and energy storage applications. To fully reach this potential, one of the most promising ways to achieve sustainable batteries involves biomass-based electrodes and non-flammable and non-toxic electrolytes used in lithium-ion batteries and other chemistries, where the potential of a greener approach is highly beneficial, and challenges are addressed. The crucial obstacles related to the successful fabrication of greener batteries and potential future research directions are highlighted. Bridging the gap between fundamental and experimental research will provide critical insights and explore the potential of greener batteries as one of the frontrunners in the uptake of sustainability and value-added products in the battery markets of the future.
...
Julkaisija
Royal Society of ChemistryISSN Hae Julkaisufoorumista
1463-9262Asiasanat
Julkaisu tutkimustietojärjestelmässä
https://converis.jyu.fi/converis/portal/detail/Publication/220428488
Metadata
Näytä kaikki kuvailutiedotKokoelmat
Rahoittaja(t)
Euroopan komissioRahoitusohjelmat(t)
Interreg -ohjelmat
The content of the publication reflects only the author’s view. The funder is not responsible for any use that may be made of the information it contains.
Lisätietoja rahoituksesta
The authors wish to thank Bio4Energy, a strategic research environment appointed by the Swedish government, as well as the Swedish University of Agricultural Sciences for supporting this work. This work was supported by the financial support of the Academy of Finland's FIRI funding (grant no. 320017), Business Finland R2B Funding (grant no. 7270/31/2022), and EU/Interreg Aurora (Project GreenBattery, grant no. 20357574). Financial support from the Kempes Foundation (Grant No. JCSMK23-0145) is gratefully acknowledged. ...Lisenssi
Samankaltainen aineisto
Näytetään aineistoja, joilla on samankaltainen nimeke tai asiasanat.
-
Sustainable Biomass-Derived Carbon Electrodes for Potassium and Aluminum Batteries : Conceptualizing the Key Parameters for Improved Performance
Simões Dos Reis, Glaydson; Petnikota, Shaikshavali; Subramaniyam, Chandrasekar M.; Pequeno de Oliveira, Helinando; Larsson, Sylvia; Thyrel, Mikael; Lassi, Ulla; García Alvarado, Flaviano (MDPI AG, 2023)The development of sustainable, safe, low-cost, high energy and density power-density energy storage devices is most needed to electrify our modern needs to reach a carbon-neutral society by ~2050. Batteries are the backbones ... -
Considering lithium-ion battery 3D-printing via thermoplastic material extrusion and polymer powder bed fusion
Maurel, Alexis; Haukka, Matti; MacDonald, Eric; Kivijärvi, Lauri; Lahtinen, Elmeri; Kim, Hyeonseok; Armand, Michel; Cayla, Aurélie; Jamali, Arash; Grugeon, Sylvie; Dupont, Loic; Panier, Stéphane (Elsevier BV, 2021)In this paper, the ability to 3D print lithium-ion batteries through thermoplastic material extrusion and polymer powder bed fusion is considered. Focused on the formulation of positive electrodes composed of polypropylene, ... -
Azoniafluorenones : A New Family of Two‐Electron Storage Electrolytes for Sustainable Near‐Neutral pH Aqueous Organic Flow Battery
Artault, Maxime; Gonzalez, Gabriel; Damlin, Pia; Toivola, Juho; Mailman, Aaron; Hannonen, Jenna; Pihko, Petri M.; Peljo, Pekka (Wiley-VCH, 2024)Fluorenones are suitable candidates for negolytes in flow batteries, as they demonstrate the ability to store 2 electrons, and can achieve reversibility, solubility, and stability with appropriate molecular design. However, ... -
Advancements in cathode technology, recycling strategies, and market dynamics : A comprehensive review of sodium ion batteries
Rostami, Hossein; Valio, Johanna; Suominen, Pekka; Tynjälä, Pekka; Lassi, Ulla (Elsevier, 2024)The rising demand for sodium-ion batteries (SIBs) in commercial applications emphasizes the importance of meeting commercial criteria. Despite their potential, SIBs encounter challenges related to specific energy, cycling ... -
Effects of Lithium Source and Content on the Properties of Li-Rich Layered Oxide Cathode Materials
Wang, Yufan; Hietaniemi, Marianna; Välikangas, Juho; Hu, Tao; Tynjälä, Pekka; Lassi, Ulla (MDPI, 2023)Lithium-rich layered oxide (LLO) are considered high-capacity cathode materials for next-generation lithium-ion batteries. In this study, LLO cathode materials were synthesized via the hydroxide coprecipitation method ...
Ellei toisin mainittu, julkisesti saatavilla olevia JYX-metatietoja (poislukien tiivistelmät) saa vapaasti uudelleenkäyttää CC0-lisenssillä.