Cargando…

Oxygen Generation Using Catalytic Nano/Micromotors

Gaseous oxygen plays a vital role in driving the metabolism of living organisms and has multiple agricultural, medical, and technological applications. Different methods have been discovered to produce oxygen, including plants, oxygen concentrators and catalytic reactions. However, many such approac...

Descripción completa

Detalles Bibliográficos
Autores principales: Naeem, Sumayyah, Naeem, Farah, Mujtaba, Jawayria, Shukla, Ashish Kumar, Mitra, Shirsendu, Huang, Gaoshan, Gulina, Larisa, Rudakovskaya, Polina, Cui, Jizhai, Tolstoy, Valeri, Gorin, Dmitry, Mei, Yongfeng, Solovev, Alexander A., Dey, Krishna Kanti
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8541545/
https://www.ncbi.nlm.nih.gov/pubmed/34683302
http://dx.doi.org/10.3390/mi12101251
_version_ 1784589256758394880
author Naeem, Sumayyah
Naeem, Farah
Mujtaba, Jawayria
Shukla, Ashish Kumar
Mitra, Shirsendu
Huang, Gaoshan
Gulina, Larisa
Rudakovskaya, Polina
Cui, Jizhai
Tolstoy, Valeri
Gorin, Dmitry
Mei, Yongfeng
Solovev, Alexander A.
Dey, Krishna Kanti
author_facet Naeem, Sumayyah
Naeem, Farah
Mujtaba, Jawayria
Shukla, Ashish Kumar
Mitra, Shirsendu
Huang, Gaoshan
Gulina, Larisa
Rudakovskaya, Polina
Cui, Jizhai
Tolstoy, Valeri
Gorin, Dmitry
Mei, Yongfeng
Solovev, Alexander A.
Dey, Krishna Kanti
author_sort Naeem, Sumayyah
collection PubMed
description Gaseous oxygen plays a vital role in driving the metabolism of living organisms and has multiple agricultural, medical, and technological applications. Different methods have been discovered to produce oxygen, including plants, oxygen concentrators and catalytic reactions. However, many such approaches are relatively expensive, involve challenges, complexities in post-production processes or generate undesired reaction products. Catalytic oxygen generation using hydrogen peroxide is one of the simplest and cleanest methods to produce oxygen in the required quantities. Chemically powered micro/nanomotors, capable of self-propulsion in liquid media, offer convenient and economic platforms for on-the-fly generation of gaseous oxygen on demand. Micromotors have opened up opportunities for controlled oxygen generation and transport under complex conditions, critical medical diagnostics and therapy. Mobile oxygen micro-carriers help better understand the energy transduction efficiencies of micro/nanoscopic active matter by careful selection of catalytic materials, fuel compositions and concentrations, catalyst surface curvatures and catalytic particle size, which opens avenues for controllable oxygen release on the level of a single catalytic microreactor. This review discusses various micro/nanomotor systems capable of functioning as mobile oxygen generators while highlighting their features, efficiencies and application potentials in different fields.
format Online
Article
Text
id pubmed-8541545
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-85415452021-10-24 Oxygen Generation Using Catalytic Nano/Micromotors Naeem, Sumayyah Naeem, Farah Mujtaba, Jawayria Shukla, Ashish Kumar Mitra, Shirsendu Huang, Gaoshan Gulina, Larisa Rudakovskaya, Polina Cui, Jizhai Tolstoy, Valeri Gorin, Dmitry Mei, Yongfeng Solovev, Alexander A. Dey, Krishna Kanti Micromachines (Basel) Review Gaseous oxygen plays a vital role in driving the metabolism of living organisms and has multiple agricultural, medical, and technological applications. Different methods have been discovered to produce oxygen, including plants, oxygen concentrators and catalytic reactions. However, many such approaches are relatively expensive, involve challenges, complexities in post-production processes or generate undesired reaction products. Catalytic oxygen generation using hydrogen peroxide is one of the simplest and cleanest methods to produce oxygen in the required quantities. Chemically powered micro/nanomotors, capable of self-propulsion in liquid media, offer convenient and economic platforms for on-the-fly generation of gaseous oxygen on demand. Micromotors have opened up opportunities for controlled oxygen generation and transport under complex conditions, critical medical diagnostics and therapy. Mobile oxygen micro-carriers help better understand the energy transduction efficiencies of micro/nanoscopic active matter by careful selection of catalytic materials, fuel compositions and concentrations, catalyst surface curvatures and catalytic particle size, which opens avenues for controllable oxygen release on the level of a single catalytic microreactor. This review discusses various micro/nanomotor systems capable of functioning as mobile oxygen generators while highlighting their features, efficiencies and application potentials in different fields. MDPI 2021-10-15 /pmc/articles/PMC8541545/ /pubmed/34683302 http://dx.doi.org/10.3390/mi12101251 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Naeem, Sumayyah
Naeem, Farah
Mujtaba, Jawayria
Shukla, Ashish Kumar
Mitra, Shirsendu
Huang, Gaoshan
Gulina, Larisa
Rudakovskaya, Polina
Cui, Jizhai
Tolstoy, Valeri
Gorin, Dmitry
Mei, Yongfeng
Solovev, Alexander A.
Dey, Krishna Kanti
Oxygen Generation Using Catalytic Nano/Micromotors
title Oxygen Generation Using Catalytic Nano/Micromotors
title_full Oxygen Generation Using Catalytic Nano/Micromotors
title_fullStr Oxygen Generation Using Catalytic Nano/Micromotors
title_full_unstemmed Oxygen Generation Using Catalytic Nano/Micromotors
title_short Oxygen Generation Using Catalytic Nano/Micromotors
title_sort oxygen generation using catalytic nano/micromotors
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8541545/
https://www.ncbi.nlm.nih.gov/pubmed/34683302
http://dx.doi.org/10.3390/mi12101251
work_keys_str_mv AT naeemsumayyah oxygengenerationusingcatalyticnanomicromotors
AT naeemfarah oxygengenerationusingcatalyticnanomicromotors
AT mujtabajawayria oxygengenerationusingcatalyticnanomicromotors
AT shuklaashishkumar oxygengenerationusingcatalyticnanomicromotors
AT mitrashirsendu oxygengenerationusingcatalyticnanomicromotors
AT huanggaoshan oxygengenerationusingcatalyticnanomicromotors
AT gulinalarisa oxygengenerationusingcatalyticnanomicromotors
AT rudakovskayapolina oxygengenerationusingcatalyticnanomicromotors
AT cuijizhai oxygengenerationusingcatalyticnanomicromotors
AT tolstoyvaleri oxygengenerationusingcatalyticnanomicromotors
AT gorindmitry oxygengenerationusingcatalyticnanomicromotors
AT meiyongfeng oxygengenerationusingcatalyticnanomicromotors
AT solovevalexandera oxygengenerationusingcatalyticnanomicromotors
AT deykrishnakanti oxygengenerationusingcatalyticnanomicromotors