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The sustainable materials roadmap

Titirici, M. (författare)
Imperial College, UK,Imperial Coll London, Dept Chem Engn, London SW7 2BX, England.
Hosseinaei, Omid (författare)
RISE,Material- och ytdesign
Anderson, P. A. (författare)
University of Birmingham, UK,Univ Birmingham, Birmingham Ctr Strateg Elements & Crit Mat, Birmingham, W Midlands, England.;UKRI Interdisciplinary Circular Econ Ctr Technol, Exeter, Devon, England.;Univ Birmingham, EPSRC Crit Elements & Mat Network CREAM, Birmingham, W Midlands, England.;Faraday Inst, ReLiB Project, Quad One,Harwell Sci & Innovat Campus, Didcot, Oxon, England.
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Berglund, Lars, 1956- (författare)
KTH,Wallenberg Wood Science Center,Biokompositer
Li, Yuanyuan (författare)
KTH,Wallenberg Wood Science Center,Biokompositer
Finnveden, Göran (författare)
KTH,Hållbar utveckling, miljövetenskap och teknik,Luxembourg Inst Sci & Technol Environm Sustainabi, Belvaux, Luxembourg.
Björklund, Anna, Professor, 1971- (författare)
KTH,Hållbar utveckling, miljövetenskap och teknik
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Imperial College, UK Imperial Coll London, Dept Chem Engn, London SW7 2BX, England (creator_code:org_t)
2022-08-04
2022
Engelska.
Ingår i: Journal of Physics. - : Institute of Physics. - 2515-7639. ; 5:3
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • Over the past 150 years, our ability to produce and transform engineered materials has been responsible for our current high standards of living, especially in developed economies. However, we must carefully think of the effects our addiction to creating and using materials at this fast rate will have on the future generations. The way we currently make and use materials detrimentally affects the planet Earth, creating many severe environmental problems. It affects the next generations by putting in danger the future of the economy, energy, and climate. We are at the point where something must drastically change, and it must change now. We must create more sustainable materials alternatives using natural raw materials and inspiration from nature while making sure not to deplete important resources, i.e. in competition with the food chain supply. We must use less materials, eliminate the use of toxic materials and create a circular materials economy where reuse and recycle are priorities. We must develop sustainable methods for materials recycling and encourage design for disassembly. We must look across the whole materials life cycle from raw resources till end of life and apply thorough life cycle assessments (LCAs) based on reliable and relevant data to quantify sustainability. We need to seriously start thinking of where our future materials will come from and how could we track them, given that we are confronted with resource scarcity and geographical constrains. This is particularly important for the development of new and sustainable energy technologies, key to our transition to net zero. Currently ‘critical materials’ are central components of sustainable energy systems because they are the best performing. A few examples include the permanent magnets based on rare earth metals (Dy, Nd, Pr) used in wind turbines, Li and Co in Li-ion batteries, Pt and Ir in fuel cells and electrolysers, Si in solar cells just to mention a few. These materials are classified as ‘critical’ by the European Union and Department of Energy. Except in sustainable energy, materials are also key components in packaging, construction, and textile industry along with many other industrial sectors. This roadmap authored by prominent researchers working across disciplines in the very important field of sustainable materials is intended to highlight the outstanding issues that must be addressed and provide an insight into the pathways towards solving them adopted by the sustainable materials community. In compiling this roadmap, we hope to aid the development of the wider sustainable materials research community, providing a guide for academia, industry, government, and funding agencies in this critically important and rapidly developing research space which is key to future sustainability. © 2022 The Author(s). 

Ämnesord

NATURVETENSKAP  -- Kemi -- Materialkemi (hsv//swe)
NATURAL SCIENCES  -- Chemical Sciences -- Materials Chemistry (hsv//eng)
TEKNIK OCH TEKNOLOGIER  -- Materialteknik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Materials Engineering (hsv//eng)
NATURVETENSKAP  -- Geovetenskap och miljövetenskap -- Miljövetenskap (hsv//swe)
NATURAL SCIENCES  -- Earth and Related Environmental Sciences -- Environmental Sciences (hsv//eng)

Nyckelord

materials
project
research
sustainable
sustainable materials
Climate change
Fuel cells
Industrial research
Life cycle
Packaging materials
Rare earths
Recycling
Supply chains
Sustainable development
Textile industry
Toxic materials
'current
Developed economies
Engineered materials
Faster rates
High standards
Roadmap
Standard of living
Lithium-ion batteries

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