Renewable Energy Integration for Urban Sustainability A Nanomaterial Perspective

This research explores the transformative part of nanomaterials in progressing urban maintainability through the integration of renewable vitality frameworks. Synthesized quantum dabs, carbon nanotubes, and graphene were characterized and connected over assorted applications, counting solar vitality...

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Main Authors: Bhong Mahesh, Singh Rahul, Singh Pradeep Kumar, Nirsanametla Yadaiah, Verma Rajesh Prasad, Saraswat Manish, Srivastava Amit
Format: Article
Language:English
Published: EDP Sciences 2024-01-01
Series:E3S Web of Conferences
Subjects:
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2024/41/e3sconf_amgse2024_01034.pdf
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author Bhong Mahesh
Singh Rahul
Singh Pradeep Kumar
Nirsanametla Yadaiah
Verma Rajesh Prasad
Saraswat Manish
Srivastava Amit
author_facet Bhong Mahesh
Singh Rahul
Singh Pradeep Kumar
Nirsanametla Yadaiah
Verma Rajesh Prasad
Saraswat Manish
Srivastava Amit
author_sort Bhong Mahesh
collection DOAJ
description This research explores the transformative part of nanomaterials in progressing urban maintainability through the integration of renewable vitality frameworks. Synthesized quantum dabs, carbon nanotubes, and graphene were characterized and connected over assorted applications, counting solar vitality saddling, wind vitality improvement, vitality capacity, and urban foundation improvement. In solar cells, the integration of quantum specks resulted in an eminent increment in control transformation proficiency (PCE), with an 85% change in short-circuit current thickness (J sc) and a 20% increment in open-circuit voltage (Voc). Wind turbine edges upgraded with carbon nanotubes displayed a momentous 21% rise in control yield and a 40% advancement in soundness, emphasizing the potential of nanomaterials in optimizing wind vitality frameworks. Graphene-based supercapacitors illustrated a multiplied particular capacitance and a 10% increment in cyclic solidness, underscoring the adequacy of nanomaterials in vitality capacity applications. The consolidation of nanocomposite building materials showcased a 44% diminishment in warm conductivity, contributing to made strides cover for maintainable urban foundations. Nanosensors, coordinated into smart frameworks, showed a prevalent 80% increment in affectability and a 50% lessening in reaction time compared to customary sensors.
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spelling doaj.art-f3d104abc2d54cc7ba82512c85ba2c2c2024-04-12T07:41:36ZengEDP SciencesE3S Web of Conferences2267-12422024-01-015110103410.1051/e3sconf/202451101034e3sconf_amgse2024_01034Renewable Energy Integration for Urban Sustainability A Nanomaterial PerspectiveBhong Mahesh0Singh Rahul1Singh Pradeep Kumar2Nirsanametla Yadaiah3Verma Rajesh Prasad4Saraswat Manish5Srivastava Amit6Associate professor, Mechanical Engineering Department, Indira College of Engineering and ManagementChitkara Centre for Research and Development, Chitkara UniversityDepartment of Mechanical Engineering, GLA UniversityCentre of Research Impact and Outcome, Chitkara UniversityDepartment of Mechanical Engineering, Graphic Era Deemed to be UniversityLloyd Institute of Engineering & TechnologyLloyd Law CollegeThis research explores the transformative part of nanomaterials in progressing urban maintainability through the integration of renewable vitality frameworks. Synthesized quantum dabs, carbon nanotubes, and graphene were characterized and connected over assorted applications, counting solar vitality saddling, wind vitality improvement, vitality capacity, and urban foundation improvement. In solar cells, the integration of quantum specks resulted in an eminent increment in control transformation proficiency (PCE), with an 85% change in short-circuit current thickness (J sc) and a 20% increment in open-circuit voltage (Voc). Wind turbine edges upgraded with carbon nanotubes displayed a momentous 21% rise in control yield and a 40% advancement in soundness, emphasizing the potential of nanomaterials in optimizing wind vitality frameworks. Graphene-based supercapacitors illustrated a multiplied particular capacitance and a 10% increment in cyclic solidness, underscoring the adequacy of nanomaterials in vitality capacity applications. The consolidation of nanocomposite building materials showcased a 44% diminishment in warm conductivity, contributing to made strides cover for maintainable urban foundations. Nanosensors, coordinated into smart frameworks, showed a prevalent 80% increment in affectability and a 50% lessening in reaction time compared to customary sensors.https://www.e3s-conferences.org/articles/e3sconf/pdf/2024/41/e3sconf_amgse2024_01034.pdfrenewable energynanomaterialsenergy storageurban sustainabilitysmart infrastructure
spellingShingle Bhong Mahesh
Singh Rahul
Singh Pradeep Kumar
Nirsanametla Yadaiah
Verma Rajesh Prasad
Saraswat Manish
Srivastava Amit
Renewable Energy Integration for Urban Sustainability A Nanomaterial Perspective
E3S Web of Conferences
renewable energy
nanomaterials
energy storage
urban sustainability
smart infrastructure
title Renewable Energy Integration for Urban Sustainability A Nanomaterial Perspective
title_full Renewable Energy Integration for Urban Sustainability A Nanomaterial Perspective
title_fullStr Renewable Energy Integration for Urban Sustainability A Nanomaterial Perspective
title_full_unstemmed Renewable Energy Integration for Urban Sustainability A Nanomaterial Perspective
title_short Renewable Energy Integration for Urban Sustainability A Nanomaterial Perspective
title_sort renewable energy integration for urban sustainability a nanomaterial perspective
topic renewable energy
nanomaterials
energy storage
urban sustainability
smart infrastructure
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2024/41/e3sconf_amgse2024_01034.pdf
work_keys_str_mv AT bhongmahesh renewableenergyintegrationforurbansustainabilityananomaterialperspective
AT singhrahul renewableenergyintegrationforurbansustainabilityananomaterialperspective
AT singhpradeepkumar renewableenergyintegrationforurbansustainabilityananomaterialperspective
AT nirsanametlayadaiah renewableenergyintegrationforurbansustainabilityananomaterialperspective
AT vermarajeshprasad renewableenergyintegrationforurbansustainabilityananomaterialperspective
AT saraswatmanish renewableenergyintegrationforurbansustainabilityananomaterialperspective
AT srivastavaamit renewableenergyintegrationforurbansustainabilityananomaterialperspective