КАТОДНІ МАТЕРІАЛИ ДЛЯ НАТРІЙ-ЙОННИХ ВТОРИННИХ ДЖЕРЕЛ СТРУМУ ЗІ СТРУКТУРАМИ, ПОХІДНИМИ ВІД СТРУКТУРИ КАМ’ЯНОЇ СОЛІ

The rechargeable lithium-ion batteries have been dominating the portable electronic market for the past two decades with high energy density and long cycle-life. However, applications of lithium-ion batteries in large-scale stationary energy storage are likely to be limited by the high cost and avai...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Datum:2019
1. Verfasser: Malovanyy, Sergiy
Format: Artikel
Sprache:English
Veröffentlicht: V.I.Vernadsky Institute of General and Inorganic Chemistry 2019
Online Zugang:https://ucj.org.ua/index.php/journal/article/view/84
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Назва журналу:Ukrainian Chemistry Journal

Institution

Ukrainian Chemistry Journal
id oai:ojs2.1444248.nisspano.web.hosting-test.net:article-84
record_format ojs
spelling oai:ojs2.1444248.nisspano.web.hosting-test.net:article-842019-11-04T11:08:03Z CATHODE MATERIALS OF ROCK SALT DERIVATIVE STRUCTURES FOR SODIUM-ION SECONDARY POWER SOURCES КАТОДНЫЕ МАТЕРИАЛЫ ДЛЯ НАТРИЙ-ИОННЫХ ВТОРИЧНЫХ ИСТОЧНИКОВ ТОКА СО СТРУКТУРАМИ, ПРОИЗВОДНЫМИ ОТ СТРУКТУРЫ КАМЕННОЙ СОЛИ КАТОДНІ МАТЕРІАЛИ ДЛЯ НАТРІЙ-ЙОННИХ ВТОРИННИХ ДЖЕРЕЛ СТРУМУ ЗІ СТРУКТУРАМИ, ПОХІДНИМИ ВІД СТРУКТУРИ КАМ’ЯНОЇ СОЛІ Malovanyy, Sergiy sodium-ion batteries, sodium intercalation, layered oxide structures, cathode materials. The rechargeable lithium-ion batteries have been dominating the portable electronic market for the past two decades with high energy density and long cycle-life. However, applications of lithium-ion batteries in large-scale stationary energy storage are likely to be limited by the high cost and availability of lithium resources. The room temperature Na-ion secondary battery have received extensive investigations for large-scale energy storage systems (EESs) and smart grids lately due to similar chemistry of “rocking-chair” sodium storage mechanism, lower price and huge abundance. They are considered as an alternative to lithium-ion batteries for large-scale applications, bringing an increasing research interests in materials for sodium-ion batteries. Although there are many obstacles to overcome before the Na-ion battery becomes commercially available, recent research discoveries corroborate that some of the cathode materials for the Na-ion battery have indeed advantages over its Li-ion competitors. Layered oxides are promising cathode materials for sodium ion batteries because of their high theoretical capacities. In this publication, a review of layered oxides (NaxMO2, M = V, Cr, Mn, Fe, Co, Ni, and a mixture of 2 or 3 elements) as a Na-ion battery cathode is presented. O3 and P2 layered sodium transition metal oxides  NaxMO2 are a promising class of cathode materials for Na secondary battery applications. These materials, however, all suffer from capacity decline when the extraction of Na exceeds certain capacity limits. Understanding the causes of this capacity decay is critical to unlocking the potential of these materials for battery applications.  Single layered oxide systems are well characterized not only for their electrochemical performance, but also for their structural transitions during the cycle. Binary oxides systems are investigated in order to address issues regarding low reversible capacity, capacity retention, operating voltage, and structural stability. Some materials already have reached high energy density, which is comparable to that of LiFePO4. On the other hand, the carefully chosen elements in the electrodes also largely determine the cost of SIBs. Therefore, earth abundant-based compounds are ideal candidates for reducing the cost of electrodes. Among all low-cost metal elements, cathodes containing iron, chromium and manganese are the most representative ones. The aim of the article is to present the development of Na layered oxide materials in the past as well as the state of the art today. V.I.Vernadsky Institute of General and Inorganic Chemistry 2019-10-16 Article Article Physical chemistry Физическая xимия Фізична xімія application/pdf https://ucj.org.ua/index.php/journal/article/view/84 10.33609/0041-6045.85.9.2019.44-57 Ukrainian Chemistry Journal; Vol 85 No 9 (2019): Ukrainian Chemistry Journal; 44-57 Украинский химический журнал; Том 85 № 9 (2019): Украинский химический журнал; 44-57 Український хімічний журнал; Том 85 № 9 (2019): Український хімічний журнал; 44-57 2708-129X 2708-1281 en https://ucj.org.ua/index.php/journal/article/view/84/56
institution Ukrainian Chemistry Journal
baseUrl_str
datestamp_date 2019-11-04T11:08:03Z
collection OJS
language English
topic_facet sodium-ion batteries
sodium intercalation
layered oxide structures
cathode materials.
format Article
author Malovanyy, Sergiy
spellingShingle Malovanyy, Sergiy
КАТОДНІ МАТЕРІАЛИ ДЛЯ НАТРІЙ-ЙОННИХ ВТОРИННИХ ДЖЕРЕЛ СТРУМУ ЗІ СТРУКТУРАМИ, ПОХІДНИМИ ВІД СТРУКТУРИ КАМ’ЯНОЇ СОЛІ
author_facet Malovanyy, Sergiy
author_sort Malovanyy, Sergiy
title КАТОДНІ МАТЕРІАЛИ ДЛЯ НАТРІЙ-ЙОННИХ ВТОРИННИХ ДЖЕРЕЛ СТРУМУ ЗІ СТРУКТУРАМИ, ПОХІДНИМИ ВІД СТРУКТУРИ КАМ’ЯНОЇ СОЛІ
title_short КАТОДНІ МАТЕРІАЛИ ДЛЯ НАТРІЙ-ЙОННИХ ВТОРИННИХ ДЖЕРЕЛ СТРУМУ ЗІ СТРУКТУРАМИ, ПОХІДНИМИ ВІД СТРУКТУРИ КАМ’ЯНОЇ СОЛІ
title_full КАТОДНІ МАТЕРІАЛИ ДЛЯ НАТРІЙ-ЙОННИХ ВТОРИННИХ ДЖЕРЕЛ СТРУМУ ЗІ СТРУКТУРАМИ, ПОХІДНИМИ ВІД СТРУКТУРИ КАМ’ЯНОЇ СОЛІ
title_fullStr КАТОДНІ МАТЕРІАЛИ ДЛЯ НАТРІЙ-ЙОННИХ ВТОРИННИХ ДЖЕРЕЛ СТРУМУ ЗІ СТРУКТУРАМИ, ПОХІДНИМИ ВІД СТРУКТУРИ КАМ’ЯНОЇ СОЛІ
title_full_unstemmed КАТОДНІ МАТЕРІАЛИ ДЛЯ НАТРІЙ-ЙОННИХ ВТОРИННИХ ДЖЕРЕЛ СТРУМУ ЗІ СТРУКТУРАМИ, ПОХІДНИМИ ВІД СТРУКТУРИ КАМ’ЯНОЇ СОЛІ
title_sort катодні матеріали для натрій-йонних вторинних джерел струму зі структурами, похідними від структури кам’яної солі
title_alt CATHODE MATERIALS OF ROCK SALT DERIVATIVE STRUCTURES FOR SODIUM-ION SECONDARY POWER SOURCES
КАТОДНЫЕ МАТЕРИАЛЫ ДЛЯ НАТРИЙ-ИОННЫХ ВТОРИЧНЫХ ИСТОЧНИКОВ ТОКА СО СТРУКТУРАМИ, ПРОИЗВОДНЫМИ ОТ СТРУКТУРЫ КАМЕННОЙ СОЛИ
description The rechargeable lithium-ion batteries have been dominating the portable electronic market for the past two decades with high energy density and long cycle-life. However, applications of lithium-ion batteries in large-scale stationary energy storage are likely to be limited by the high cost and availability of lithium resources. The room temperature Na-ion secondary battery have received extensive investigations for large-scale energy storage systems (EESs) and smart grids lately due to similar chemistry of “rocking-chair” sodium storage mechanism, lower price and huge abundance. They are considered as an alternative to lithium-ion batteries for large-scale applications, bringing an increasing research interests in materials for sodium-ion batteries. Although there are many obstacles to overcome before the Na-ion battery becomes commercially available, recent research discoveries corroborate that some of the cathode materials for the Na-ion battery have indeed advantages over its Li-ion competitors. Layered oxides are promising cathode materials for sodium ion batteries because of their high theoretical capacities. In this publication, a review of layered oxides (NaxMO2, M = V, Cr, Mn, Fe, Co, Ni, and a mixture of 2 or 3 elements) as a Na-ion battery cathode is presented. O3 and P2 layered sodium transition metal oxides  NaxMO2 are a promising class of cathode materials for Na secondary battery applications. These materials, however, all suffer from capacity decline when the extraction of Na exceeds certain capacity limits. Understanding the causes of this capacity decay is critical to unlocking the potential of these materials for battery applications.  Single layered oxide systems are well characterized not only for their electrochemical performance, but also for their structural transitions during the cycle. Binary oxides systems are investigated in order to address issues regarding low reversible capacity, capacity retention, operating voltage, and structural stability. Some materials already have reached high energy density, which is comparable to that of LiFePO4. On the other hand, the carefully chosen elements in the electrodes also largely determine the cost of SIBs. Therefore, earth abundant-based compounds are ideal candidates for reducing the cost of electrodes. Among all low-cost metal elements, cathodes containing iron, chromium and manganese are the most representative ones. The aim of the article is to present the development of Na layered oxide materials in the past as well as the state of the art today.
publisher V.I.Vernadsky Institute of General and Inorganic Chemistry
publishDate 2019
url https://ucj.org.ua/index.php/journal/article/view/84
work_keys_str_mv AT malovanyysergiy cathodematerialsofrocksaltderivativestructuresforsodiumionsecondarypowersources
AT malovanyysergiy katodnyematerialydlânatrijionnyhvtoričnyhistočnikovtokasostrukturamiproizvodnymiotstrukturykamennojsoli
AT malovanyysergiy katodnímateríalidlânatríjjonnihvtorinnihdžerelstrumuzístrukturamipohídnimivídstrukturikamânoísolí
first_indexed 2025-09-24T17:43:32Z
last_indexed 2025-09-24T17:43:32Z
_version_ 1844168163646767104