{"id":112994,"date":"2020-11-16T17:20:01","date_gmt":"2020-11-16T14:20:01","guid":{"rendered":"https:\/\/en.buradabiliyorum.com\/designing-layered-oxide-materials-for-sodium-ion-batteries\/"},"modified":"2020-11-16T17:20:01","modified_gmt":"2020-11-16T14:20:01","slug":"designing-layered-oxide-materials-for-sodium-ion-batteries","status":"publish","type":"post","link":"https:\/\/buradabiliyorum.com\/en\/designing-layered-oxide-materials-for-sodium-ion-batteries\/","title":{"rendered":"#Designing layered oxide materials for sodium-ion batteries"},"content":{"rendered":"<p>&#8220;<strong>#Designing layered oxide materials for sodium-ion batteries<\/strong>&#8221;<\/p>\n<div>\n<div class=\"article__info-item mr-auto\">\n                                            <svg class=\"article__info-icon\"><use href=\"https:\/\/techx.b-cdn.net\/tmpl\/v2\/img\/svg\/sprite.svg#icon_clock\" x=\"0\" y=\"0\"\/><\/svg><\/p>\n<p class=\"text-uppercase text-low\">\n                                                November 16, 2020<br \/>\n                                                <span class=\"ml-2 badge a_editorial\">feature<\/span><\/p>\n<\/p><\/div>\n<\/p><\/div>\n<div>\n<div class=\"article-gallery lightGallery\">\n<div data-thumb=\"https:\/\/scx1.b-cdn.net\/csz\/news\/tmb\/2020\/designinglay.jpg\" data-src=\"https:\/\/scx2.b-cdn.net\/gfx\/news\/2020\/designinglay.jpg\" data-sub-html=\"Cationic potential and its use in sodium (Na)-ion layered oxides. (A) Schematic illustration of crystal representative P2-type (hexagonal) and O3-type (rhombohedral) layered oxides. (B) Cationic potential of representative P2- and O3-type Na-ion layered oxides, considering the Na content, oxidation state of transition metals, and TM composition. Credit: Science, doi: 10.1126\/science.aay9972\">\n<figure class=\"article-img\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/scx1.b-cdn.net\/csz\/news\/800\/2020\/designinglay.jpg\" alt=\"Designing layered oxide materials for sodium-ion batteries\" title=\"Cationic potential and its use in sodium (Na)-ion layered oxides. (A) Schematic illustration of crystal representative P2-type (hexagonal) and O3-type (rhombohedral) layered oxides. (B) Cationic potential of representative P2- and O3-type Na-ion layered oxides, considering the Na content, oxidation state of transition metals, and TM composition. Credit: Science, doi: 10.1126\/science.aay9972\" width=\"567\" height=\"480\"\/><figcaption class=\"text-darken text-low-up text-truncate-js text-truncate mt-3\">\n                Cationic potential and its use in sodium (Na)-ion layered oxides. (A) Schematic illustration of crystal representative P2-type (hexagonal) and O3-type (rhombohedral) layered oxides. (B) Cationic potential of representative P2- and O3-type Na-ion layered oxides, considering the Na content, oxidation state of transition metals, and TM composition. Credit: <a href=\"https:\/\/buradabiliyorum.com\/en\/category\/sciencee\/\" data-internallinksmanager029f6b8e52c=\"5\" title=\"Science\" target=\"_blank\" rel=\"noopener\">Science<\/a>, doi: 10.1126\/science.aay9972<br \/>\n            <\/figcaption><\/figure>\n<\/div>\n<\/div>\n<p>Lithium cobalt oxide is a layered metal oxide that has attracted great attention to develop rechargeable batteries. Sodium-ion batteries can store grid-scale energy due to the <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/onlinelibrary.wiley.com\/doi\/abs\/10.1002\/aenm.201200026\">natural abundance<\/a> of sodium. The composition can determine the structural chemistry for electrochemical performance, however, due to complex compositions, the results are very challenging to predict. In a new report now on <i>Science<\/i>, Chenglong Zhao and a team of international scientists at the Chinese Academy of Science, China, Harvard University, U.S., Delft University of <a href=\"https:\/\/buradabiliyorum.com\/en\/category\/technology\/\" data-internallinksmanager029f6b8e52c=\"4\" title=\"Technology\" target=\"_blank\" rel=\"noopener\">Technology<\/a>, the Netherlands, and the University of Toronto, Canada, introduced a &#8220;cationic potential&#8221; to capture key interactions of layered materials and predict the resulting stacking structures. The team showed how the stacking architecture determined the functional properties to offer solutions towards developing alkali metal layered oxides for electrical energy storage.<\/p>\n<p>                                                                                <b>Layering the charge <\/b><\/p>\n<p>Researchers must develop sustainable electrical energy storage systems to meet the demands to integrate intermittent, renewable energy. When compared with <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/www.nobelprize.org\/prizes\/chemistry\/2019\/popular-information\/#:~:text=The%20Nobel%20Prize%20in%20Chemistry%202019%20is%20awarded%20to%20John,as%20mobile%20phones%20and%20laptops.\">lithium (Li)-ion batteries<\/a>, the abundance and low cost of sodium (Na) make Na-ion batteries promising substituents for smart grids and <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/onlinelibrary.wiley.com\/doi\/abs\/10.1002\/aenm.201200026\">large-scale energy storage<\/a>. Since 1980, <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/0025540880900124\">Li-ion layered batteries<\/a> have represented the dominant family of electrode materials; incidentally developed as a new cathode material for which American materials scientist J.B.Goodenough eventually received the joint <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/www.nobelprize.org\/prizes\/chemistry\/2019\/popular-information\/\">Nobel Prize in Chemistry<\/a> with M. Stanley Whittingham and Akira Yoshino, in 2019. One or multiple <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/www.sciencedirect.com\/topics\/physics-and-astronomy\/transition-metals#:~:text=Transition%20metals%20are%20the%20d,1%20to%20d9%20electrons.&amp;text=The%20electron%20donating%20species%20are,O%2C%20NH3%2C%20etc.\">transition metal<\/a> (TM) elements can facilitate the redox reaction associated with <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/acs.jpclett.7b02530\">Li-ion (de-)intercalation<\/a>. For example, materials scientists can build layered structures from edge-sharing transition metal oxide <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/onlinelibrary.wiley.com\/doi\/10.1002\/aenm.202001151\">(TMO<sub>6<\/sub>) octahedra<\/a> to form repeating layers, amongst which lithium ions can be positioned in the octahedral oxygen environment to observe <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/phys.org\/search\/?search=O-type+stacking&amp;s=0\">O-type stacking<\/a>. This architecture offers high compositional diversity and tunable electrochemical performance with improved charge.<br \/>\n                                            <!-- Google middle Adsense block --><\/p>\n<div class=\"article-gallery lightGallery\">\n<div data-thumb=\"https:\/\/scx1.b-cdn.net\/csz\/news\/tmb\/2020\/1-designinglay.jpg\" data-src=\"https:\/\/scx2.b-cdn.net\/gfx\/news\/2020\/1-designinglay.jpg\" data-sub-html=\"Designing an O3-type oxide. (A) Analysis of the cationic potential of Na-Li-Mn(Ti)-O oxides. (B) XRD patterns of the targeted NaLi1\/3Mn2\/3O2 and the standard references. (C) Rietveld refinement of XRD pattern of NaLi1\/3Ti1\/6Mn1\/2O2. (D) Schematic illustration of the corresponding structure with the Li\/Mn(Ti) ordering in the [Li1\/3Ti1\/6Mn1\/2]O2 slabs. Credit: Science, doi: 10.1126\/science.aay9972\">\n<figure class=\"article-img text-center\"><img decoding=\"async\" src=\"https:\/\/scx1.b-cdn.net\/csz\/news\/800\/2020\/1-designinglay.jpg\" alt=\"Designing layered oxide materials for sodium-ion batteries\"\/><figcaption class=\"text-left text-darken text-truncate text-low-up mt-3\">\n                Designing an O3-type oxide. (A) Analysis of the cationic potential of Na-Li-Mn(Ti)-O oxides. (B) XRD patterns of the targeted NaLi1\/3Mn2\/3O2 and the standard references. (C) Rietveld refinement of XRD pattern of NaLi1\/3Ti1\/6Mn1\/2O2. (D) Schematic illustration of the corresponding structure with the Li\/Mn(Ti) ordering in the [Li1\/3Ti1\/6Mn1\/2]O2 slabs. Credit: Science, doi: 10.1126\/science.aay9972<br \/>\n            <\/figcaption><\/figure>\n<\/div>\n<\/div>\n<p>  <b>Developing sodium-ion batteries.<\/b><br \/>\nLayered oxides offer <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/22543301\/\">a natural starting point<\/a> in the search for electrodes for sodium (Na)-ion batteries. However, aside from O-type stacking for Na-ion oxides, P-type stacking can also occur, where P-type refers to <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/pubs.acs.org\/doi\/10.1021\/ja00324a012\">prismatic Na-ion coordination<\/a> with distinctly different electrode performance. Researchers have investigated a variety of P2-type (hexagonal) and O3-type (rhombohedral) sodium-ion layered oxides to search for electrodes with good chemical and dynamic stability, as well as high Na storage performance. Nevertheless, effective guidelines are not yet in place to design and prepare such optimal electrode materials suited for sodium-ion batteries. <\/p>\n<div class=\"article-gallery lightGallery\">\n<div data-thumb=\"https:\/\/scx1.b-cdn.net\/csz\/news\/tmb\/2020\/2-designinglay.jpg\" data-src=\"https:\/\/scx2.b-cdn.net\/gfx\/news\/2020\/2-designinglay.jpg\" data-sub-html=\"Designing a P2-type oxide. (A) Analysis of cationic potential of Na-Li-Mn-O oxides. (B) XRD patterns of NaLi1\/3Ti1\/6Mn1\/2O2 and Na5\/6Li5\/18Mn13\/18O2 oxides. (C) Rietveld refinement of XRD pattern of Na5\/6Li5\/18Mn13\/18O2. (D) Schematic illustration of the corresponding structure with the Li\/Mn ordering in the [Li5\/18Mn13\/18]O2 slabs. Credit: Science, doi: 10.1126\/science.aay9972\">\n<figure class=\"article-img text-center\"><img decoding=\"async\" src=\"https:\/\/scx1.b-cdn.net\/csz\/news\/800\/2020\/2-designinglay.jpg\" alt=\"Designing layered oxide materials for sodium-ion batteries\"\/><figcaption class=\"text-left text-darken text-truncate text-low-up mt-3\">\n                Designing a P2-type oxide. (A) Analysis of cationic potential of Na-Li-Mn-O oxides. (B) XRD patterns of NaLi1\/3Ti1\/6Mn1\/2O2 and Na5\/6Li5\/18Mn13\/18O2 oxides. (C) Rietveld refinement of XRD pattern of Na5\/6Li5\/18Mn13\/18O2. (D) Schematic illustration of the corresponding structure with the Li\/Mn ordering in the [Li5\/18Mn13\/18]O2 slabs. Credit: Science, doi: 10.1126\/science.aay9972<br \/>\n            <\/figcaption><\/figure>\n<\/div>\n<\/div>\n<p><b>Using the cationic potential to design sodium ion batteries<\/b><\/p>\n<p>Zhao et al. therefore aimed at a simple de<a href=\"https:\/\/buradabiliyorum.com\/en\/category\/download-scripts-themes-apps\/\" data-internallinksmanager029f6b8e52c=\"9\" title=\"Download Scripts &amp; Themes &amp; Apps\" target=\"_blank\" rel=\"noopener\">script<\/a>or for layered oxides and expressed the extent of the cation density and its polarizability, normalized to the ionic potential anion by defining the &#8220;cationic potential.&#8221; Then they used the cationic potential as a guide to design specific stacking structures by controlling the sodium content and transition metal composition. As a starting point, they used <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/onlinelibrary.wiley.com\/doi\/full\/10.1002\/nano.202000030\">manganese-based layered oxide cathodes<\/a> (NaLi<sub>1\/3<\/sub>Mn<sub>2\/3<\/sub>O<sub>2<\/sub>), while <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/onlinelibrary.wiley.com\/doi\/abs\/10.1002\/adma.201701788\">theoretical calculations<\/a> indicated the compound to be stable in an O3-type structure, the composition itself remains to be experimentally prepared in that orientation. Zhao et al. therefore lowered the cationic potential as a possible route to experimentally yield the expected O3-type structure by substituting the <a href=\"https:\/\/buradabiliyorum.com\/en\/category\/anime-manga\/\" data-internallinksmanager029f6b8e52c=\"6\" title=\"Anime || Manga\" target=\"_blank\" rel=\"noopener\">manga<\/a>nese cation (Mn<sup>4+<\/sup>) with a titanium cation (Ti<sup>4+<\/sup>) containing a lower ionic potential to form titanium-based layered oxide cathodes (NaLi<sub>1\/3<\/sub>Ti<sub>1\/6<\/sub>Mn<sub>1\/2<\/sub>O<sub>2<\/sub>) in the expected O3-type configuration. The team confirmed the outcome using <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/www.sciencedirect.com\/topics\/materials-science\/X-ray-diffraction\">X-ray diffraction patterns<\/a> to show a layered rock-salt structure, where <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/pubchem.ncbi.nlm.nih.gov\/compound\/Sodium-superoxide\">sodium superoxide<\/a> (NaO<sub>2<\/sub>) layers alternated with the mixed titanium-based layered oxide (Li<sub>1\/3<\/sub>Ti<sub>1\/6<\/sub>Mn<sub>1\/2<\/sub>O<sub>2<\/sub>). <\/p>\n<div class=\"article-gallery lightGallery\">\n<div data-thumb=\"https:\/\/scx1.b-cdn.net\/csz\/news\/tmb\/2020\/3-designinglay.jpg\" data-src=\"https:\/\/scx2.b-cdn.net\/gfx\/news\/2020\/3-designinglay.jpg\" data-sub-html=\"Cationic potential phase map for alkali metal layered oxides. Summary of reported alkali metal layered materials including Li-\/Na-\/K-ion oxides. Credit: Science, doi: 10.1126\/science.aay9972\">\n<figure class=\"article-img text-center\"><img decoding=\"async\" src=\"https:\/\/scx1.b-cdn.net\/csz\/news\/800\/2020\/3-designinglay.jpg\" alt=\"Designing layered oxide materials for sodium-ion batteries\"\/><figcaption class=\"text-left text-darken text-truncate text-low-up mt-3\">\n                Cationic potential phase map for alkali metal layered oxides. Summary of reported alkali metal layered materials including Li-\/Na-\/K-ion oxides. Credit: Science, doi: 10.1126\/science.aay9972<br \/>\n            <\/figcaption><\/figure>\n<\/div>\n<\/div>\n<p>  <b>Extending the cationic potential to other metal layered oxides<\/b><br \/>\nThe team then used the cationic potential to design a P2-type structure aimed at an anomalously high Na-content, starting as before from manganese-based layered oxide cathodes (NaLi<sub>1\/3<\/sub>Mn<sub>2\/3<\/sub>O<sub>2<\/sub>). In this instance, to prevent the formation of an O3-type structure, they increased the cationic potential by increasing the ionic potential at the transition metal sites. The resulting composition maintained a successfully prepared P2-type structure with a high sodium content and also had a higher capacity electric charge of more than 200 milliampere hours (mAh) g<sup>\u22121<\/sup>.  The team extended the cationic potential to other alkali metal layered oxides, including lithium and potassium ions, where the resulting cationic potential increased from potassium to sodium to lithium. The work showed how the cationic potential could predict the structure of new sodium\/transition metal oxide layered materials relative to specific compositional demands. <\/p>\n<div class=\"article-gallery lightGallery\">\n<div data-thumb=\"https:\/\/scx1.b-cdn.net\/csz\/news\/tmb\/2020\/4-designinglay.jpg\" data-src=\"https:\/\/scx2.b-cdn.net\/gfx\/news\/2020\/4-designinglay.jpg\" data-sub-html=\"Morphology and structural characterization of NaLi1\/3Ti1\/6Mn1\/2O2 oxide. Scanning electron microscope image and atomic-resolution high-angle annular dark field scanning transmission electron microscopy image. Credit: Science, doi: 10.1126\/science.aay9972\">\n<figure class=\"article-img text-center\"><img decoding=\"async\" src=\"https:\/\/scx1.b-cdn.net\/csz\/news\/800\/2020\/4-designinglay.jpg\" alt=\"Designing layered oxide materials for sodium-ion batteries\"\/><figcaption class=\"text-left text-darken text-truncate text-low-up mt-3\">\n                Morphology and structural characterization of NaLi1\/3Ti1\/6Mn1\/2O2 oxide. Scanning electron microscope image and atomic-resolution high-angle annular dark field scanning transmission electron microscopy image. Credit: Science, doi: 10.1126\/science.aay9972<br \/>\n            <\/figcaption><\/figure>\n<\/div>\n<\/div>\n<p><b>Outlook<\/b><\/p>\n<p>In this way, Chenglong Zhao and colleagues demonstrated the ionic potential as a measure of the polarization of ions to reflect the influence of electrostatic energy on the system. The team proposed the cationic potential method to distinguish and design materials useful for sodium-ion layered oxides. The cationic potential approach developed here, however, does not apply for several conditions, including disordered compounds resulting <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/pubs.rsc.org\/en\/content\/articlelanding\/2018\/ta\/c8ta03667e#!divAbstract\">from mechanical milling<\/a> or oxides prepared <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S0013468615305843\">under specific conditions<\/a>. The cationic potential only predicted if the proposed material would crystallize in a P- or O-type structure. The team aim to gain further insights to the structural information to decide if the corresponding material is stable or practical relative to specific compositional demands in materials engineering.\n                                                                                                                        <\/p>\n<hr\/>\n<div class=\"article-main__explore my-4 d-print-none\">\n<p>                                            <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" class=\"text-medium text-info mt-2 d-inline-block\" href=\"https:\/\/phys.org\/news\/2020-11-method-atomic-sodium-ion-batteries.html\">Method to predict the atomic structure of sodium-ion batteries<\/a>\n                                        <\/div>\n<hr class=\"mb-4\"\/>\n<div class=\"article-main__more p-4\">\n                                                                                                <strong>More information:<\/strong><br \/>\n                                                Zhao C. et al. Rational design of layered oxide materials for sodium-ion batteries, <i>Science<\/i>, <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" data-doi=\"1\" href=\"http:\/\/dx.doi.org\/10.1126\/science.aay9972\">DOI: 10.1126\/science.aay9972<\/a><br \/>\nBianchini M. et al. The interplay between thermodynamics and kinetics in the solid-state synthesis of layered oxides, <i>Nature Materials<\/i>, <a rel=\"nofollow noopener noreferrer\" target=\"_blank\" href=\"https:\/\/doi.org\/10.1038\/s41563-020-0688-6\">doi.org\/10.1038\/s41563-020-0688-6<\/a><\/p><\/div>\n<p>                                                Provided by<br \/>\n                                                                                                    Science X Network<\/p>\n<p class=\"article-main__note mt-4\">\n                                                \u00a9 2020 Science X Network<\/p>\n<p>                                        <!-- print only --><\/p>\n<div class=\"d-none d-print-block\">\n<p>                                                 <strong>Citation<\/strong>:<br \/>\n                                                 Designing layered oxide materials for sodium-ion batteries (2020, November 16)<br \/>\n                                                 retrieved 16 November 2020<br \/>\n                                                 from https:\/\/techxplore.com\/<a href=\"https:\/\/buradabiliyorum.com\/en\/category\/news\/\" data-internallinksmanager029f6b8e52c=\"2\" title=\"News\" target=\"_blank\" rel=\"noopener\">news<\/a>\/2020-11-layered-oxide-materials-sodium-ion-batteries.html<\/p>\n<p>                                            This document is subject to copyright. 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(A) Schematic illustration of crystal representative P2-type (hexagonal) and O3-type (rhombohedral) layered oxides. (B) Cationic potential of representative P2- and O3-type Na-ion layered oxides, considering the Na content, oxidation state of transition metals, and&#8230;<\/p>\n","protected":false},"author":1,"featured_media":112995,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"fifu_image_url":"https:\/\/scx2.b-cdn.net\/gfx\/news\/2020\/designinglay.jpg","fifu_image_alt":"","footnotes":""},"categories":[16],"tags":[],"class_list":["post-112994","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-sciencee"],"_links":{"self":[{"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/posts\/112994","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/comments?post=112994"}],"version-history":[{"count":0,"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/posts\/112994\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/media\/112995"}],"wp:attachment":[{"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/media?parent=112994"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/categories?post=112994"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/buradabiliyorum.com\/en\/wp-json\/wp\/v2\/tags?post=112994"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}