Chemistry in supercritical fluids for the synthesis of metal nanomaterials
Metal nanomaterials are playing an increasingly important role in addressing challenges in modern society with respect to energy, catalysis, environment, information and so on. To maximize their performances in different application fields, fine control of their characteristics such as size and size...
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description | Metal nanomaterials are playing an increasingly important role in addressing challenges in modern society with respect to energy, catalysis, environment, information and so on. To maximize their performances in different application fields, fine control of their characteristics such as size and size distribution, morphology, composition, structure and surface properties is required. Suitable selection of the synthesis method for metal nanomaterials to achieve such control thus becomes rather important. In addition, the intent to use metal nanomaterials at a large scale puts extra expectations on the synthesis method that should be able to produce metal nanomaterials with high efficiency. Supercritical fluid synthesis of metal nanomaterials appears as a promising way to meet such needs thanks to the unique synthesis environment that speeds up the process but keeps the high controllability and reproducibility. In particular, supercritical fluid synthesis in flows enables continuous synthesis of metal nanomaterials and has high potential to be adapted into an industrial-level production process. This review focuses exclusively on the application of supercritical fluids in the synthesis of non-supported metal nanomaterials in both batch and flow reactors. Advancements in understanding the chemistry processes observed in the synthesis including thermolysis and reductive reactions in various types of fluids under their supercritical conditions are discussed and reviewed, with special attention to identifying the relationship between the properties of metal nanomaterials and the process parameters. Further, the versatility of the chemistry proceeding in supercritical fluids is shown by a few more examples on the synthesis of nanomaterials for applications in cutting edge technologies such as semiconductor nanocrystals, quantum dots, graphenic nanomaterials and metal-organic frameworks. Scaling up the supercritical fluid continuous flow synthesis to levels of pilot plants and even a full industrial plant has been achieved. The latest results and industrial progress in this area are discussed. Given this progress, the evaluation of the environmental impacts of the supercritical fluid flow synthesis becomes rather important. Finally, life cycle assessment (LCA) analysis is introduced as a powerful tool to evaluate the sustainability of chemical synthesis in supercritical fluids, shown by a few examples.
The supercritical flow synthesis of metal nanomaterials is sust |
doi_str_mv | 10.1039/c9re00290a |
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The supercritical flow synthesis of metal nanomaterials is sustainable and scalable for the efficient production of materials.</description><identifier>ISSN: 2058-9883</identifier><identifier>EISSN: 2058-9883</identifier><identifier>DOI: 10.1039/c9re00290a</identifier><language>eng</language><publisher>Cambridge: Royal Society of Chemistry</publisher><subject>Chemical Sciences ; Chemical synthesis ; Chemistry ; Continuous flow ; Controllability ; Environmental impact ; Evaluation ; Fluid dynamics ; Fluid flow ; Fluids ; Industrial plants ; Life cycle analysis ; Life cycle assessment ; Material chemistry ; Metal-organic frameworks ; Morphology ; Nanocrystals ; Nanomaterials ; Organic chemistry ; Particle size distribution ; Process parameters ; Quantum dots ; Stability ; Supercritical fluids ; Surface properties</subject><ispartof>Reaction chemistry & engineering, 2019-11, Vol.4 (12), p.23-254</ispartof><rights>Copyright Royal Society of Chemistry 2019</rights><rights>Distributed under a Creative Commons Attribution 4.0 International License</rights><lds50>peer_reviewed</lds50><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c443t-8e9adcee3fbf89969b5d598739966bfec904c95b9bc8bf4371f0d7cab3f787fb3</citedby><cites>FETCH-LOGICAL-c443t-8e9adcee3fbf89969b5d598739966bfec904c95b9bc8bf4371f0d7cab3f787fb3</cites><orcidid>0000-0002-4726-7074 ; 0000-0003-1775-0716 ; 0000-0002-5249-9929</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>230,314,776,780,881,27901,27902</link.rule.ids><backlink>$$Uhttps://hal.science/hal-02393835$$DView record in HAL$$Hfree_for_read</backlink></links><search><creatorcontrib>Xu, Yu</creatorcontrib><creatorcontrib>Musumeci, Valentina</creatorcontrib><creatorcontrib>Aymonier, Cyril</creatorcontrib><title>Chemistry in supercritical fluids for the synthesis of metal nanomaterials</title><title>Reaction chemistry & engineering</title><description>Metal nanomaterials are playing an increasingly important role in addressing challenges in modern society with respect to energy, catalysis, environment, information and so on. To maximize their performances in different application fields, fine control of their characteristics such as size and size distribution, morphology, composition, structure and surface properties is required. Suitable selection of the synthesis method for metal nanomaterials to achieve such control thus becomes rather important. In addition, the intent to use metal nanomaterials at a large scale puts extra expectations on the synthesis method that should be able to produce metal nanomaterials with high efficiency. Supercritical fluid synthesis of metal nanomaterials appears as a promising way to meet such needs thanks to the unique synthesis environment that speeds up the process but keeps the high controllability and reproducibility. In particular, supercritical fluid synthesis in flows enables continuous synthesis of metal nanomaterials and has high potential to be adapted into an industrial-level production process. This review focuses exclusively on the application of supercritical fluids in the synthesis of non-supported metal nanomaterials in both batch and flow reactors. Advancements in understanding the chemistry processes observed in the synthesis including thermolysis and reductive reactions in various types of fluids under their supercritical conditions are discussed and reviewed, with special attention to identifying the relationship between the properties of metal nanomaterials and the process parameters. Further, the versatility of the chemistry proceeding in supercritical fluids is shown by a few more examples on the synthesis of nanomaterials for applications in cutting edge technologies such as semiconductor nanocrystals, quantum dots, graphenic nanomaterials and metal-organic frameworks. Scaling up the supercritical fluid continuous flow synthesis to levels of pilot plants and even a full industrial plant has been achieved. The latest results and industrial progress in this area are discussed. Given this progress, the evaluation of the environmental impacts of the supercritical fluid flow synthesis becomes rather important. Finally, life cycle assessment (LCA) analysis is introduced as a powerful tool to evaluate the sustainability of chemical synthesis in supercritical fluids, shown by a few examples.
The supercritical flow synthesis of metal nanomaterials is sustainable and scalable for the efficient production of materials.</description><subject>Chemical Sciences</subject><subject>Chemical synthesis</subject><subject>Chemistry</subject><subject>Continuous flow</subject><subject>Controllability</subject><subject>Environmental impact</subject><subject>Evaluation</subject><subject>Fluid dynamics</subject><subject>Fluid flow</subject><subject>Fluids</subject><subject>Industrial plants</subject><subject>Life cycle analysis</subject><subject>Life cycle assessment</subject><subject>Material chemistry</subject><subject>Metal-organic frameworks</subject><subject>Morphology</subject><subject>Nanocrystals</subject><subject>Nanomaterials</subject><subject>Organic chemistry</subject><subject>Particle size distribution</subject><subject>Process parameters</subject><subject>Quantum dots</subject><subject>Stability</subject><subject>Supercritical fluids</subject><subject>Surface properties</subject><issn>2058-9883</issn><issn>2058-9883</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2019</creationdate><recordtype>article</recordtype><recordid>eNp9kM1LAzEUxIMoWLQX70LEk8Lq281-JMeyVKsUBNFzSLIJTdkvk12h_72pK9WTpxne_Bgeg9BFDHcxEHavmNMACQNxhGYJZDRilJLjP_4Uzb3fAkCcAxBazNBzudGN9YPbYdtiP_baKWcHq0SNTT3aymPTOTxsNPa7Noi3HncGN3oIRCvarhGDdlbU_hydmCB6_qNn6P1h-VauovXL41O5WEcqTckQUc1EpbQmRhrKWM5kVmWMFiT4XBqtGKSKZZJJRaVJSREbqAolJDEFLYwkZ-hm6t2ImvfONsLteCcsXy3WfH-DhDBCSfYZB_Z6YnvXfYzaD3zbja4N7_GExFma0yRlgbqdKOU67502h9oY-H5aXrLX5fe0iwBfTrDz6sD9Th_yq_9y3leGfAHY94Ek</recordid><startdate>20191119</startdate><enddate>20191119</enddate><creator>Xu, Yu</creator><creator>Musumeci, Valentina</creator><creator>Aymonier, Cyril</creator><general>Royal Society of Chemistry</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7SR</scope><scope>8BQ</scope><scope>8FD</scope><scope>JG9</scope><scope>1XC</scope><scope>VOOES</scope><orcidid>https://orcid.org/0000-0002-4726-7074</orcidid><orcidid>https://orcid.org/0000-0003-1775-0716</orcidid><orcidid>https://orcid.org/0000-0002-5249-9929</orcidid></search><sort><creationdate>20191119</creationdate><title>Chemistry in supercritical fluids for the synthesis of metal nanomaterials</title><author>Xu, Yu ; Musumeci, Valentina ; Aymonier, Cyril</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c443t-8e9adcee3fbf89969b5d598739966bfec904c95b9bc8bf4371f0d7cab3f787fb3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2019</creationdate><topic>Chemical Sciences</topic><topic>Chemical synthesis</topic><topic>Chemistry</topic><topic>Continuous flow</topic><topic>Controllability</topic><topic>Environmental impact</topic><topic>Evaluation</topic><topic>Fluid dynamics</topic><topic>Fluid flow</topic><topic>Fluids</topic><topic>Industrial plants</topic><topic>Life cycle analysis</topic><topic>Life cycle assessment</topic><topic>Material chemistry</topic><topic>Metal-organic frameworks</topic><topic>Morphology</topic><topic>Nanocrystals</topic><topic>Nanomaterials</topic><topic>Organic chemistry</topic><topic>Particle size distribution</topic><topic>Process parameters</topic><topic>Quantum dots</topic><topic>Stability</topic><topic>Supercritical fluids</topic><topic>Surface properties</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Xu, Yu</creatorcontrib><creatorcontrib>Musumeci, Valentina</creatorcontrib><creatorcontrib>Aymonier, Cyril</creatorcontrib><collection>CrossRef</collection><collection>Engineered Materials Abstracts</collection><collection>METADEX</collection><collection>Technology Research Database</collection><collection>Materials Research Database</collection><collection>Hyper Article en Ligne (HAL)</collection><collection>Hyper Article en Ligne (HAL) (Open Access)</collection><jtitle>Reaction chemistry & engineering</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Xu, Yu</au><au>Musumeci, Valentina</au><au>Aymonier, Cyril</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Chemistry in supercritical fluids for the synthesis of metal nanomaterials</atitle><jtitle>Reaction chemistry & engineering</jtitle><date>2019-11-19</date><risdate>2019</risdate><volume>4</volume><issue>12</issue><spage>23</spage><epage>254</epage><pages>23-254</pages><issn>2058-9883</issn><eissn>2058-9883</eissn><abstract>Metal nanomaterials are playing an increasingly important role in addressing challenges in modern society with respect to energy, catalysis, environment, information and so on. To maximize their performances in different application fields, fine control of their characteristics such as size and size distribution, morphology, composition, structure and surface properties is required. Suitable selection of the synthesis method for metal nanomaterials to achieve such control thus becomes rather important. In addition, the intent to use metal nanomaterials at a large scale puts extra expectations on the synthesis method that should be able to produce metal nanomaterials with high efficiency. Supercritical fluid synthesis of metal nanomaterials appears as a promising way to meet such needs thanks to the unique synthesis environment that speeds up the process but keeps the high controllability and reproducibility. In particular, supercritical fluid synthesis in flows enables continuous synthesis of metal nanomaterials and has high potential to be adapted into an industrial-level production process. This review focuses exclusively on the application of supercritical fluids in the synthesis of non-supported metal nanomaterials in both batch and flow reactors. Advancements in understanding the chemistry processes observed in the synthesis including thermolysis and reductive reactions in various types of fluids under their supercritical conditions are discussed and reviewed, with special attention to identifying the relationship between the properties of metal nanomaterials and the process parameters. Further, the versatility of the chemistry proceeding in supercritical fluids is shown by a few more examples on the synthesis of nanomaterials for applications in cutting edge technologies such as semiconductor nanocrystals, quantum dots, graphenic nanomaterials and metal-organic frameworks. Scaling up the supercritical fluid continuous flow synthesis to levels of pilot plants and even a full industrial plant has been achieved. The latest results and industrial progress in this area are discussed. Given this progress, the evaluation of the environmental impacts of the supercritical fluid flow synthesis becomes rather important. Finally, life cycle assessment (LCA) analysis is introduced as a powerful tool to evaluate the sustainability of chemical synthesis in supercritical fluids, shown by a few examples.
The supercritical flow synthesis of metal nanomaterials is sustainable and scalable for the efficient production of materials.</abstract><cop>Cambridge</cop><pub>Royal Society of Chemistry</pub><doi>10.1039/c9re00290a</doi><tpages>25</tpages><orcidid>https://orcid.org/0000-0002-4726-7074</orcidid><orcidid>https://orcid.org/0000-0003-1775-0716</orcidid><orcidid>https://orcid.org/0000-0002-5249-9929</orcidid><oa>free_for_read</oa></addata></record> |
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subjects | Chemical Sciences Chemical synthesis Chemistry Continuous flow Controllability Environmental impact Evaluation Fluid dynamics Fluid flow Fluids Industrial plants Life cycle analysis Life cycle assessment Material chemistry Metal-organic frameworks Morphology Nanocrystals Nanomaterials Organic chemistry Particle size distribution Process parameters Quantum dots Stability Supercritical fluids Surface properties |
title | Chemistry in supercritical fluids for the synthesis of metal nanomaterials |
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