A comprehensive review on monitoring and purification of water through tunable 2D nanomaterials.


Journal

Brazilian journal of biology = Revista brasleira de biologia
ISSN: 1678-4375
Titre abrégé: Braz J Biol
Pays: Brazil
ID NLM: 101129542

Informations de publication

Date de publication:
2023
Historique:
received: 12 04 2023
accepted: 09 06 2023
medline: 21 7 2023
pubmed: 19 7 2023
entrez: 19 7 2023
Statut: epublish

Résumé

Instead of typical household trash, the heavy metal complexes, organic chemicals, and other poisons produced by huge enterprises threaten water systems across the world. In order to protect our drinking water from pollution, we must keep a close eye on the situation. Nanotechnology, specifically two-dimensional (2D) nanomaterials, is used in certain wastewater treatment systems. Graphene, g-C3N4, MoS2, and MXene are just a few examples of emerging 2D nanomaterials that exhibit an extraordinary ratio of surface (m3), providing material consumption, time consumption, and treatment technique for cleaning and observing water. In this post, we'll talk about the ways in which 2D nanomaterials may be tuned to perform certain functions, namely how they can be used for water management. The following is a quick overview of nanostructured materials and its possible use in water management: Also discussed in length are the applications of 2D nanomaterials in water purification, including pollutant adsorption, filtration, disinfection, and photocatalysis. Fluorescence sensors, colorimetric, electrochemical, and field-effect transistors are only some of the devices being studied for their potential use in monitoring water quality using 2D nanomaterials. Utilizing 2D content has its benefits and pitfalls when used to water management. New developments in this fast-expanding business will boost water treatment quality and accessibility in response to rising awareness of the need of clean, fresh water among future generations.

Identifiants

pubmed: 37466515
pii: S1519-69842023000100816
doi: 10.1590/1519-6984.273843
pii:
doi:

Substances chimiques

MXene 0

Types de publication

Review Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

e273843

Auteurs

F O Areche (FO)

Universidad Nacional de Huancavelica, Huancavelica, Peru.

C M C Mamani (CMC)

National University of Jaen, Jaen, Peru.

J A L Cárdenas (JAL)

José Faustino Sánchez Carrión National University, Huacho, Peru.

L A Sumarriva-Bustinza (LA)

National University of Education Enrique Guzmán y Valle, Lima, Peru.

P A P Pastrana (PAP)

Universidad Nacional de Huancavelica, Huancavelica, Peru.

M S Porras-Roque (MS)

Jorge Basadre Grohmann National University, Tacna, Peru.

M A C Huayapa (MAC)

National University of Juliaca, Juliaca, Peru.

C Y H Zea (CYH)

National University of Juliaca, Juliaca, Peru.

O G V Rios (OGV)

César Vallejo University, Lima, Peru.

J E S Montes (JES)

Santiago Antunez de Mayolo National University, Huaraz, Peru.

E N Paitan-Anticona (EN)

National University of Central Peru, Huancayo, Peru.

N L Chávez-Sumarriva (NL)

Scientific University of the Sur, Lima, Peru.

A A M Paucarmayta (AAM)

National University of Central Peru, Huancayo, Peru.

V G S Araujo (VGS)

Universidad Nacional de Huancavelica, Huancavelica, Peru.

M H M Paucarmayta (MHM)

National Intercultural University of the Selva Central Juan Santos Atahualpa, Chanchamayo, Peru.

S M Carrasco (SM)

Micaela Bastidas National University of Apurimac, Abancay, Peru.

R J M Yapias (RJM)

Altoandina National Autonomous University of Tarma, Tarma, Peru.

D C Paricanaza-Ticona (DC)

Universidad Nacional de Huancavelica, Huancavelica, Peru.

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Classifications MeSH