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An Update on Graphene Oxide: Applications and Toxicity

[Image: see text] Graphene oxide (GO) has attracted much attention in the past few years because of its interesting and promising electrical, thermal, mechanical, and structural properties. These properties can be altered, as GO can be readily functionalized. Brodie synthesized the GO in 1859 by rea...

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Autores principales: Yadav, Sandeep, Singh Raman, Anirudh Pratap, Meena, Harshvardhan, Goswami, Abhay Giri, Bhawna, Kumar, Vinod, Jain, Pallavi, Kumar, Gyanendra, Sagar, Mansi, Rana, Devendra Kumar, Bahadur, Indra, Singh, Prashant
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9558614/
https://www.ncbi.nlm.nih.gov/pubmed/36249372
http://dx.doi.org/10.1021/acsomega.2c03171
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author Yadav, Sandeep
Singh Raman, Anirudh Pratap
Meena, Harshvardhan
Goswami, Abhay Giri
Bhawna,
Kumar, Vinod
Jain, Pallavi
Kumar, Gyanendra
Sagar, Mansi
Rana, Devendra Kumar
Bahadur, Indra
Singh, Prashant
author_facet Yadav, Sandeep
Singh Raman, Anirudh Pratap
Meena, Harshvardhan
Goswami, Abhay Giri
Bhawna,
Kumar, Vinod
Jain, Pallavi
Kumar, Gyanendra
Sagar, Mansi
Rana, Devendra Kumar
Bahadur, Indra
Singh, Prashant
author_sort Yadav, Sandeep
collection PubMed
description [Image: see text] Graphene oxide (GO) has attracted much attention in the past few years because of its interesting and promising electrical, thermal, mechanical, and structural properties. These properties can be altered, as GO can be readily functionalized. Brodie synthesized the GO in 1859 by reacting graphite with KClO(3) in the presence of fuming HNO(3); the reaction took 3–4 days to complete at 333 K. Since then, various schemes have been developed to reduce the reaction time, increase the yield, and minimize the release of toxic byproducts (NO(2) and N(2)O(4)). The modified Hummers method has been widely accepted to produce GO in bulk. Due to its versatile characteristics, GO has a wide range of applications in different fields like tissue engineering, photocatalysis, catalysis, and biomedical applications. Its porous structure is considered appropriate for tissue and organ regeneration. Various branches of tissue engineering are being extensively explored, such as bone, neural, dentistry, cartilage, and skin tissue engineering. The band gap of GO can be easily tuned, and therefore it has a wide range of photocatalytic applications as well: the degradation of organic contaminants, hydrogen generation, and CO(2) reduction, etc. GO could be a potential nanocarrier in drug delivery systems, gene delivery, biological sensing, and antibacterial nanocomposites due to its large surface area and high density, as it is highly functionalized with oxygen-containing functional groups. GO or its composites are found to be toxic to various biological species and as also discussed in this review. It has been observed that superoxide dismutase (SOD) and reactive oxygen species (ROS) levels gradually increase over a period after GO is introduced in the biological systems. Hence, GO at specific concentrations is toxic for various species like earthworms, Chironomus riparius, Zebrafish, etc.
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spelling pubmed-95586142022-10-14 An Update on Graphene Oxide: Applications and Toxicity Yadav, Sandeep Singh Raman, Anirudh Pratap Meena, Harshvardhan Goswami, Abhay Giri Bhawna, Kumar, Vinod Jain, Pallavi Kumar, Gyanendra Sagar, Mansi Rana, Devendra Kumar Bahadur, Indra Singh, Prashant ACS Omega [Image: see text] Graphene oxide (GO) has attracted much attention in the past few years because of its interesting and promising electrical, thermal, mechanical, and structural properties. These properties can be altered, as GO can be readily functionalized. Brodie synthesized the GO in 1859 by reacting graphite with KClO(3) in the presence of fuming HNO(3); the reaction took 3–4 days to complete at 333 K. Since then, various schemes have been developed to reduce the reaction time, increase the yield, and minimize the release of toxic byproducts (NO(2) and N(2)O(4)). The modified Hummers method has been widely accepted to produce GO in bulk. Due to its versatile characteristics, GO has a wide range of applications in different fields like tissue engineering, photocatalysis, catalysis, and biomedical applications. Its porous structure is considered appropriate for tissue and organ regeneration. Various branches of tissue engineering are being extensively explored, such as bone, neural, dentistry, cartilage, and skin tissue engineering. The band gap of GO can be easily tuned, and therefore it has a wide range of photocatalytic applications as well: the degradation of organic contaminants, hydrogen generation, and CO(2) reduction, etc. GO could be a potential nanocarrier in drug delivery systems, gene delivery, biological sensing, and antibacterial nanocomposites due to its large surface area and high density, as it is highly functionalized with oxygen-containing functional groups. GO or its composites are found to be toxic to various biological species and as also discussed in this review. It has been observed that superoxide dismutase (SOD) and reactive oxygen species (ROS) levels gradually increase over a period after GO is introduced in the biological systems. Hence, GO at specific concentrations is toxic for various species like earthworms, Chironomus riparius, Zebrafish, etc. American Chemical Society 2022-09-28 /pmc/articles/PMC9558614/ /pubmed/36249372 http://dx.doi.org/10.1021/acsomega.2c03171 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Yadav, Sandeep
Singh Raman, Anirudh Pratap
Meena, Harshvardhan
Goswami, Abhay Giri
Bhawna,
Kumar, Vinod
Jain, Pallavi
Kumar, Gyanendra
Sagar, Mansi
Rana, Devendra Kumar
Bahadur, Indra
Singh, Prashant
An Update on Graphene Oxide: Applications and Toxicity
title An Update on Graphene Oxide: Applications and Toxicity
title_full An Update on Graphene Oxide: Applications and Toxicity
title_fullStr An Update on Graphene Oxide: Applications and Toxicity
title_full_unstemmed An Update on Graphene Oxide: Applications and Toxicity
title_short An Update on Graphene Oxide: Applications and Toxicity
title_sort update on graphene oxide: applications and toxicity
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9558614/
https://www.ncbi.nlm.nih.gov/pubmed/36249372
http://dx.doi.org/10.1021/acsomega.2c03171
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