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1706164 Vol 8 · Issue 2 Download Paper

Harnessing Nanotechnology for Climate Change Mitigation: Environmental Applications and Sustainable Innovations

Gaurav Pandey Mandeep Kumar Tanmay Singh

Subject area: Physical Sciences and Environment  ·  Area of research: Nanotechnology

Abstract

As of this minute, there are innumerable environmental issues which the globe is dealing with for over?the past decades. But the climate change is indeed?perhaps the biggest threat facing the environment. The rise of 1.5?2 ?C surface temperature has?been reported in past 40?50 years. harsh?due in next 50?100 years the earth temperature will be make harsh living?conditions and results would be disastrous. The major cause of climate?is global warming change. Global warming is caused by the?emission of carbon mixing gases (greenhouse gases) from The most common cause of global warming is carbon dioxide, fossil fuel combustion?in industries, transport, electricity generation, agriculture and commercial sources. Besides that pollution, urbanisation, population etc. also contribute to climate?change in Greater extent by broader parallels ways messing things up in the?ecosystem. Owing to the unique?properties of the nano materials, nanotechnolgy provides a diverse uses in environmental, agricultural, food and?energy fields. Not only the environmental nanotechnology?address against environmental in nature of problems, but nanotechnological products from the processes are seen as the?powerful and novel tools/modes to achieve sustainable objectives. Nanotechnological materials, for?example, nano composites, functionalized nano materials, metal organic frameworks, nano catalysts, bulking agents, carriers, carbon based materials, nano zeolite, nano silica, and other additives such as nano level lubricants, nano level coatings and?etch have huge potential in Greenhouse gas sequestration and?reduction, biofuel generation, wastewaters treatment?and environmental clean-up in an eco-friendly way. The paper?aims to present?an overview of the nanotechnology solutions for addressing climate change. The purpose of this paper is to examine the long-term's trends and patterns of architectural and its proximity to the other types?of design new nanocompounds on the environment and the advancement of sustainable means to?address the climate change related problems.

Keywords

Climate change, Global warming, Environmental remediation, Environmental nanotechnology, Nanocomposites, Biofuel, Nanocatalyst, Carbonaceous materials.

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How to cite this paper

Gaurav Pandey, Mandeep Kumar, Tanmay Singh "Harnessing Nanotechnology for Climate Change Mitigation: Environmental Applications and Sustainable Innovations" Iconic Research And Engineering Journals Volume 8 Issue 2 2024 Page 1091-1111
Gaurav Pandey, Mandeep Kumar, Tanmay Singh "Harnessing Nanotechnology for Climate Change Mitigation: Environmental Applications and Sustainable Innovations" Iconic Research And Engineering Journals, vol. 8, no. 2, Aug. 2024
Gaurav Pandey, Mandeep Kumar, Tanmay Singh (2024). Harnessing Nanotechnology for Climate Change Mitigation: Environmental Applications and Sustainable Innovations. Iconic Research And Engineering Journals, 8(2).
Gaurav Pandey, Mandeep Kumar, Tanmay Singh "Harnessing Nanotechnology for Climate Change Mitigation: Environmental Applications and Sustainable Innovations" Iconic Research And Engineering Journals, vol. 8, no. 2, Aug. 2024.
@article{1706164,
      author = {Gaurav Pandey, Mandeep Kumar, Tanmay Singh},
      title = {Harnessing Nanotechnology for Climate Change Mitigation: Environmental Applications and Sustainable Innovations},
      journal = {Iconic Research And Engineering Journals},
      year = {2024},
      volume = {8},
      number = {2},
      pages = {1091-1111},
      issn = {2456-8880},
      url = {https://www.irejournals.com/formatedpaper/1706164.pdf},
      abstract = {As of this minute, there are innumerable environmental issues which the globe is dealing with for over?the past decades. But the climate change is indeed?perhaps the biggest threat facing the environment. The rise of 1.5?2 ?C surface temperature has?been reported in past 40?50 years. harsh?due in next 50?100 years the earth temperature will be make harsh living?conditions and results would be disastrous. The major cause of climate?is global warming change. Global warming is caused by the?emission of carbon mixing gases (greenhouse gases) from The most common cause of global warming is carbon dioxide, fossil fuel combustion?in industries,  transport, electricity generation, agriculture and commercial sources. Besides that pollution, urbanisation, population etc. also contribute to climate?change in Greater extent by broader parallels ways messing things up in the?ecosystem. Owing to the unique?properties of the nano materials, nanotechnolgy provides a diverse uses in environmental, agricultural, food and?energy fields. Not only the environmental nanotechnology?address against environmental in nature of problems, but nanotechnological products from the processes are seen as the?powerful and novel tools/modes to achieve sustainable objectives. Nanotechnological materials, for?example, nano composites, functionalized nano materials, metal organic frameworks, nano catalysts, bulking agents, carriers, carbon based materials, nano zeolite, nano silica, and other additives such as nano level lubricants, nano level coatings and?etch have huge potential in Greenhouse gas sequestration and?reduction, biofuel generation, wastewaters treatment?and environmental clean-up in an eco-friendly way. The paper?aims to present?an overview of the nanotechnology solutions for addressing climate change. The purpose of this paper is to examine the long-term's trends and patterns of architectural and its proximity to the other types?of design new nanocompounds on the environment and the advancement of sustainable means to?address the climate change related problems.},
      keywords = {Climate change, Global warming, Environmental remediation, Environmental nanotechnology, Nanocomposites, Biofuel, Nanocatalyst, Carbonaceous materials.},
      month = {August},
  }