Authors :
G. G. Ramteke
Volume/Issue :
Volume 11 - 2026, Issue 8 - August
Google Scholar :
https://tinyurl.com/25dprxdt
DOI :
https://doi.org/10.38124/ijisrt/26aug1084
Note : A published paper may take 4-5
working days from the publication date to appear in PlumX Metrics, Semantic Scholar, and
ResearchGate.
Abstract :
Nanotechnology has come out as a world-shattering and versatile domain running at the 1–100 nm extent, where
materials reveal inimitable physical, chemical, and biological attributes discrete as of their bulk counterparts. In view of
the fact that Richard Feynman’s influential 1959 address “There’s Plenty of Room at the Bottom,” investigation has
swelled hastily across healthcare, electronics, energy, agriculture, space, and environmental sectors. This manuscript
offers an ample outline of modern progress in nanotechnology with a spotlight on six key realms: 1) Nanomedicine for
untimely syndrome recognition, targeted therapy, and tissue revival by means of nanoparticles and carbon nanotubes; 2)
Nanoelectronics and quantum technologies for beyond-Moore’s Law devices, 2D materials, and nanoscale qubits; 3)
Energy and clean technology together with perovskite solar cells, nanostructured batteries, and nanocatalysts for fuel
cells; 4) Ecological mitigation through nano-adsorbents, nanofiltration membranes, and photocatalysts for water and air
refinement; 5) Advanced materials and nanocomposites for aerospace, automotive, and manufacturing; and 6) Promising
relevancies in food, agriculture, nanorobotics, and space exploration. The article furthermore emphasizes benefits like
efficiency, miniaturization, and sustainability, while addressing significant disputes including toxicity, regulatory gaps,
cost, and ethical concerns. By assimilating novelty with accountable governance, nanotechnology embraces huge
prospective to drive sustainable upgrading and tackle worldwide disputes in health, energy, and environment.
Keywords :
Nanotechnology, Nanotubes, Nanomedicine, Nanoelectronics, Quantum Technology Nanorobotics.
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Nanotechnology has come out as a world-shattering and versatile domain running at the 1–100 nm extent, where
materials reveal inimitable physical, chemical, and biological attributes discrete as of their bulk counterparts. In view of
the fact that Richard Feynman’s influential 1959 address “There’s Plenty of Room at the Bottom,” investigation has
swelled hastily across healthcare, electronics, energy, agriculture, space, and environmental sectors. This manuscript
offers an ample outline of modern progress in nanotechnology with a spotlight on six key realms: 1) Nanomedicine for
untimely syndrome recognition, targeted therapy, and tissue revival by means of nanoparticles and carbon nanotubes; 2)
Nanoelectronics and quantum technologies for beyond-Moore’s Law devices, 2D materials, and nanoscale qubits; 3)
Energy and clean technology together with perovskite solar cells, nanostructured batteries, and nanocatalysts for fuel
cells; 4) Ecological mitigation through nano-adsorbents, nanofiltration membranes, and photocatalysts for water and air
refinement; 5) Advanced materials and nanocomposites for aerospace, automotive, and manufacturing; and 6) Promising
relevancies in food, agriculture, nanorobotics, and space exploration. The article furthermore emphasizes benefits like
efficiency, miniaturization, and sustainability, while addressing significant disputes including toxicity, regulatory gaps,
cost, and ethical concerns. By assimilating novelty with accountable governance, nanotechnology embraces huge
prospective to drive sustainable upgrading and tackle worldwide disputes in health, energy, and environment.
Keywords :
Nanotechnology, Nanotubes, Nanomedicine, Nanoelectronics, Quantum Technology Nanorobotics.