Pioneering sustainable energy solutions with rare-earth nanomaterials: Exploring pathways for energy conversion and storage
Rare-earth-nanomaterials (RE-NMs) have surged to the forefront of cutting-edge research, captivating scientists and engineers alike with their unprecedented potential and transformative applications with the primary sources for these materials being monazite (lanthanide concentrate) used to produce...
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my.uniten.dspace-360852025-03-03T15:41:21Z Pioneering sustainable energy solutions with rare-earth nanomaterials: Exploring pathways for energy conversion and storage Mohamed N.A. Kiong T.S. Ismail A.F. 57201821340 57216824752 29067828200 Actinides Carbon Cerium oxide Cyclic voltammetry Developing countries Dysprosium alloys Dysprosium compounds Erbium compounds Europium alloys Europium compounds Exhaust gases Gadolinium compounds Holmium alloys Holmium compounds Hydrogen bonds Impact ionization Inert gases Lanthanum oxides Laser chemistry Lutetium compounds Neodymium compounds Nitrogen Oxygen Palladium Platinum Praseodymium compounds Radioactive wastes Radioisotopes Radium Rock drills Ruthenium Samarium alloys Selenium Semiconducting samarium compounds Soot Stripping voltammetry Strontium titanates Sulfur Thin film devices Ytterbium compounds Energy conversion and storages Energy solutions Lanthanide series Metal elements Rare metal element Rare metals Rare-earth nanomaterials Rare-earths Renewable energies Renewable energy solution Phosphorus Rare-earth-nanomaterials (RE-NMs) have surged to the forefront of cutting-edge research, captivating scientists and engineers alike with their unprecedented potential and transformative applications with the primary sources for these materials being monazite (lanthanide concentrate) used to produce Rare Earth Oxides (REOs). RE-NMs are nanomaterials derived from the 17 Rare Earth Elements (REEs), encompassing the 15 lanthanides (?La, Ce, Nd, Ho, Pr, Eu, Tm, Sm, Yb, Er, Lu, Gd, Tb, Pm, and Dy), Sc and Y are employed in advanced technologies for their unique nanoscale properties in applications such as electronics, magnets and catalysts. Rare earth elements are classified into three distinct categories: light rare earth elements (LREE), medium rare earth elements (MREE), and heavy rare earth elements (HREE). These elements are prized for their unique electronic configurations, metal radii and atomic numbers, which endow them with extraordinary structural, electronic, chemical bonding, optical and electrical properties. Throughout the ages, there has been a tremendous and cross-disciplinary fascination with these exceptional materials, exploring their myriad applications from active doping and co-doping to tri-doping and innovative composites, all driven by the quest for groundbreaking solutions in energy conversion and storage towards a more sustainable world. This critical review provides a broad overview of recent progress in the design and development of rare-earth-based nanomaterials. It addresses: (1) the discovery and sources of rare-earth-based nanomaterials, (2) methods for synthesizing RE-NMs and fabricating RE-NM thin films and (3) the exploration of RE-NMs in applications including solar cells, electrochemical devices and supercapacitors, along with their diverse applications across multiple fields. To conclude, this review summarizes current advancements and offers stimulating perspectives on the challenges and future research directions in the realm of RE-NMs. This review aims to open new research pathways for developing recycling methods and cutting-edge renewable energy nanomaterials (RE-NMs) from residue waste. Utilizing these materials in renewable energy applications could minimize environmental impact and pave the way for innovative uses of photocatalysts, solar cells and supercapacitors contributing to sustainable energy solutions in the future. ? 2024 Hydrogen Energy Publications LLC Final 2025-03-03T07:41:21Z 2025-03-03T07:41:21Z 2024 Review 10.1016/j.ijhydene.2024.10.299 2-s2.0-85208144619 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85208144619&doi=10.1016%2fj.ijhydene.2024.10.299&partnerID=40&md5=3698f5d6ca6006b7b4a08c809156a08f https://irepository.uniten.edu.my/handle/123456789/36085 93 607 649 Elsevier Ltd Scopus |
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Actinides Carbon Cerium oxide Cyclic voltammetry Developing countries Dysprosium alloys Dysprosium compounds Erbium compounds Europium alloys Europium compounds Exhaust gases Gadolinium compounds Holmium alloys Holmium compounds Hydrogen bonds Impact ionization Inert gases Lanthanum oxides Laser chemistry Lutetium compounds Neodymium compounds Nitrogen Oxygen Palladium Platinum Praseodymium compounds Radioactive wastes Radioisotopes Radium Rock drills Ruthenium Samarium alloys Selenium Semiconducting samarium compounds Soot Stripping voltammetry Strontium titanates Sulfur Thin film devices Ytterbium compounds Energy conversion and storages Energy solutions Lanthanide series Metal elements Rare metal element Rare metals Rare-earth nanomaterials Rare-earths Renewable energies Renewable energy solution Phosphorus |
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Actinides Carbon Cerium oxide Cyclic voltammetry Developing countries Dysprosium alloys Dysprosium compounds Erbium compounds Europium alloys Europium compounds Exhaust gases Gadolinium compounds Holmium alloys Holmium compounds Hydrogen bonds Impact ionization Inert gases Lanthanum oxides Laser chemistry Lutetium compounds Neodymium compounds Nitrogen Oxygen Palladium Platinum Praseodymium compounds Radioactive wastes Radioisotopes Radium Rock drills Ruthenium Samarium alloys Selenium Semiconducting samarium compounds Soot Stripping voltammetry Strontium titanates Sulfur Thin film devices Ytterbium compounds Energy conversion and storages Energy solutions Lanthanide series Metal elements Rare metal element Rare metals Rare-earth nanomaterials Rare-earths Renewable energies Renewable energy solution Phosphorus Mohamed N.A. Kiong T.S. Ismail A.F. Pioneering sustainable energy solutions with rare-earth nanomaterials: Exploring pathways for energy conversion and storage |
description |
Rare-earth-nanomaterials (RE-NMs) have surged to the forefront of cutting-edge research, captivating scientists and engineers alike with their unprecedented potential and transformative applications with the primary sources for these materials being monazite (lanthanide concentrate) used to produce Rare Earth Oxides (REOs). RE-NMs are nanomaterials derived from the 17 Rare Earth Elements (REEs), encompassing the 15 lanthanides (?La, Ce, Nd, Ho, Pr, Eu, Tm, Sm, Yb, Er, Lu, Gd, Tb, Pm, and Dy), Sc and Y are employed in advanced technologies for their unique nanoscale properties in applications such as electronics, magnets and catalysts. Rare earth elements are classified into three distinct categories: light rare earth elements (LREE), medium rare earth elements (MREE), and heavy rare earth elements (HREE). These elements are prized for their unique electronic configurations, metal radii and atomic numbers, which endow them with extraordinary structural, electronic, chemical bonding, optical and electrical properties. Throughout the ages, there has been a tremendous and cross-disciplinary fascination with these exceptional materials, exploring their myriad applications from active doping and co-doping to tri-doping and innovative composites, all driven by the quest for groundbreaking solutions in energy conversion and storage towards a more sustainable world. This critical review provides a broad overview of recent progress in the design and development of rare-earth-based nanomaterials. It addresses: (1) the discovery and sources of rare-earth-based nanomaterials, (2) methods for synthesizing RE-NMs and fabricating RE-NM thin films and (3) the exploration of RE-NMs in applications including solar cells, electrochemical devices and supercapacitors, along with their diverse applications across multiple fields. To conclude, this review summarizes current advancements and offers stimulating perspectives on the challenges and future research directions in the realm of RE-NMs. This review aims to open new research pathways for developing recycling methods and cutting-edge renewable energy nanomaterials (RE-NMs) from residue waste. Utilizing these materials in renewable energy applications could minimize environmental impact and pave the way for innovative uses of photocatalysts, solar cells and supercapacitors contributing to sustainable energy solutions in the future. ? 2024 Hydrogen Energy Publications LLC |
author2 |
57201821340 |
author_facet |
57201821340 Mohamed N.A. Kiong T.S. Ismail A.F. |
format |
Review |
author |
Mohamed N.A. Kiong T.S. Ismail A.F. |
author_sort |
Mohamed N.A. |
title |
Pioneering sustainable energy solutions with rare-earth nanomaterials: Exploring pathways for energy conversion and storage |
title_short |
Pioneering sustainable energy solutions with rare-earth nanomaterials: Exploring pathways for energy conversion and storage |
title_full |
Pioneering sustainable energy solutions with rare-earth nanomaterials: Exploring pathways for energy conversion and storage |
title_fullStr |
Pioneering sustainable energy solutions with rare-earth nanomaterials: Exploring pathways for energy conversion and storage |
title_full_unstemmed |
Pioneering sustainable energy solutions with rare-earth nanomaterials: Exploring pathways for energy conversion and storage |
title_sort |
pioneering sustainable energy solutions with rare-earth nanomaterials: exploring pathways for energy conversion and storage |
publisher |
Elsevier Ltd |
publishDate |
2025 |
_version_ |
1825816214049390592 |
score |
13.244413 |