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Towards the Continuous Hydrothermal Synthesis of ZnO@Mg(2)Al-CO(3) Core-Shell Composite Nanomaterials

Core-shell Zinc Oxide/Layered Double Hydroxide (ZnO@LDH) composite nanomaterials have been produced by a one-step continuous hydrothermal synthesis process, in an attempt to further enhance the application potential of layered double hydroxide (LDH) nanomaterials. The synthesis involves two hydrothe...

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Autores principales: Clark, Ian, Smith, Jacob, Gomes, Rachel L., Lester, Edward
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7602976/
https://www.ncbi.nlm.nih.gov/pubmed/33081377
http://dx.doi.org/10.3390/nano10102052
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author Clark, Ian
Smith, Jacob
Gomes, Rachel L.
Lester, Edward
author_facet Clark, Ian
Smith, Jacob
Gomes, Rachel L.
Lester, Edward
author_sort Clark, Ian
collection PubMed
description Core-shell Zinc Oxide/Layered Double Hydroxide (ZnO@LDH) composite nanomaterials have been produced by a one-step continuous hydrothermal synthesis process, in an attempt to further enhance the application potential of layered double hydroxide (LDH) nanomaterials. The synthesis involves two hydrothermal reactors in series with the first producing a ZnO core and the second producing the Mg(2)Al-CO(3) shell. Crystal domain length of single phase ZnO and composite ZnO was 25 nm and 42 nm, respectively. The ZnO@LDH composite had a specific surface area of 76 m(2) g(−1), which was larger than ZnO or Mg(2)Al-CO(3) when produced separately (53 m(2) g(−1) and 58 m(2) g(−1), respectively). The increased specific surface area is attributed to the structural arrangement of the Mg(2)Al-CO(3) in the composite. Platelets are envisaged to nucleate on the core and grow outwards, thus reducing the face–face stacking that occurs in conventional Mg(2)Al-CO(3) synthesis. The Mg/Al ratio in the single phase LDH was close to the theoretical ratio of 2, but the Mg/Al ratio in the composite was 1.27 due to the formation of Zn(2)Al-CO(3) LDH from residual Zn(2+) ions. NaOH concentration was also found to influence Mg/Al ratio, with lower NaOH resulting in a lower Mg/Al ratio. NaOH concentration also affected morphology and specific surface area, with reduced NaOH content in the second reaction stage causing a dramatic increase in specific surface area (> 250 m(2) g(−1)). The formation of a core-shell composite material was achieved through continuous synthesis; however, the final product was not entirely ZnO@Mg(2)Al-CO(3). The product contained a mixture of ZnO, Mg(2)Al-CO(3), Zn(2)Al-CO(3), and the composite material. Whilst further optimisation is required in order to remove other crystalline impurities from the synthesis, this research acts as a stepping stone towards the formation of composite materials via a one-step continuous synthesis.
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spelling pubmed-76029762020-11-01 Towards the Continuous Hydrothermal Synthesis of ZnO@Mg(2)Al-CO(3) Core-Shell Composite Nanomaterials Clark, Ian Smith, Jacob Gomes, Rachel L. Lester, Edward Nanomaterials (Basel) Article Core-shell Zinc Oxide/Layered Double Hydroxide (ZnO@LDH) composite nanomaterials have been produced by a one-step continuous hydrothermal synthesis process, in an attempt to further enhance the application potential of layered double hydroxide (LDH) nanomaterials. The synthesis involves two hydrothermal reactors in series with the first producing a ZnO core and the second producing the Mg(2)Al-CO(3) shell. Crystal domain length of single phase ZnO and composite ZnO was 25 nm and 42 nm, respectively. The ZnO@LDH composite had a specific surface area of 76 m(2) g(−1), which was larger than ZnO or Mg(2)Al-CO(3) when produced separately (53 m(2) g(−1) and 58 m(2) g(−1), respectively). The increased specific surface area is attributed to the structural arrangement of the Mg(2)Al-CO(3) in the composite. Platelets are envisaged to nucleate on the core and grow outwards, thus reducing the face–face stacking that occurs in conventional Mg(2)Al-CO(3) synthesis. The Mg/Al ratio in the single phase LDH was close to the theoretical ratio of 2, but the Mg/Al ratio in the composite was 1.27 due to the formation of Zn(2)Al-CO(3) LDH from residual Zn(2+) ions. NaOH concentration was also found to influence Mg/Al ratio, with lower NaOH resulting in a lower Mg/Al ratio. NaOH concentration also affected morphology and specific surface area, with reduced NaOH content in the second reaction stage causing a dramatic increase in specific surface area (> 250 m(2) g(−1)). The formation of a core-shell composite material was achieved through continuous synthesis; however, the final product was not entirely ZnO@Mg(2)Al-CO(3). The product contained a mixture of ZnO, Mg(2)Al-CO(3), Zn(2)Al-CO(3), and the composite material. Whilst further optimisation is required in order to remove other crystalline impurities from the synthesis, this research acts as a stepping stone towards the formation of composite materials via a one-step continuous synthesis. MDPI 2020-10-16 /pmc/articles/PMC7602976/ /pubmed/33081377 http://dx.doi.org/10.3390/nano10102052 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Clark, Ian
Smith, Jacob
Gomes, Rachel L.
Lester, Edward
Towards the Continuous Hydrothermal Synthesis of ZnO@Mg(2)Al-CO(3) Core-Shell Composite Nanomaterials
title Towards the Continuous Hydrothermal Synthesis of ZnO@Mg(2)Al-CO(3) Core-Shell Composite Nanomaterials
title_full Towards the Continuous Hydrothermal Synthesis of ZnO@Mg(2)Al-CO(3) Core-Shell Composite Nanomaterials
title_fullStr Towards the Continuous Hydrothermal Synthesis of ZnO@Mg(2)Al-CO(3) Core-Shell Composite Nanomaterials
title_full_unstemmed Towards the Continuous Hydrothermal Synthesis of ZnO@Mg(2)Al-CO(3) Core-Shell Composite Nanomaterials
title_short Towards the Continuous Hydrothermal Synthesis of ZnO@Mg(2)Al-CO(3) Core-Shell Composite Nanomaterials
title_sort towards the continuous hydrothermal synthesis of zno@mg(2)al-co(3) core-shell composite nanomaterials
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7602976/
https://www.ncbi.nlm.nih.gov/pubmed/33081377
http://dx.doi.org/10.3390/nano10102052
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