Advances in Materials for High Energy Density Lithium-Sulfur Batteries DOI
Avinash Raulo, Amit Gupta, Bhanu Nandan

и другие.

ACS symposium series, Год журнала: 2024, Номер unknown, С. 165 - 194

Опубликована: Ноя. 4, 2024

Lithium-sulfur battery (LSB) has been considered as a potential alternative to the current lithium-ion owing its high theoretical specific capacity (1675 mAh g-1) and energy density (2600 Wh kg-1), cost-effectiveness. However, several key scientific challenges such "shuttle effect", low conversion kinetics, Li dendrite growth, etc. severely affect electrochemical performance therefore limit practical application. In this chapter, working mechanism, associated of LSBs are systematically introduced at first. Then, advancements in materials develop well-engineered cathodes, interlayers, separators, electrolytes, anodes for practically applicable comprehensively discussed. Further, important shifts from traditional focus on cathode modification recent developments solid-electrolytes, anode protection, adoption also This chapter is useful graduate students researchers science, nanoscience, material professionals automobile industries.

Язык: Английский

Recent advances and strategies of metal phosphides for accelerating polysulfide redox and regulating Li plating DOI

Yi Yang,

Bowen Sun, Zhiqiang Sun

и другие.

Coordination Chemistry Reviews, Год журнала: 2024, Номер 510, С. 215836 - 215836

Опубликована: Апрель 12, 2024

Язык: Английский

Процитировано

44

Iron-cobalt-nickel medium-entropy alloy promotes fast polysulfide conversion reaction kinetics for advanced lithium sulfur batteries DOI
Long Yuan, Xiaoli Peng, Xinyun Liu

и другие.

Journal of Energy Storage, Год журнала: 2025, Номер 110, С. 115370 - 115370

Опубликована: Янв. 11, 2025

Язык: Английский

Процитировано

9

Advanced Cathodes for Practical Lithium–Sulfur Batteries DOI Creative Commons
Jang‐Yeon Hwang, Hyeona Park, Hun Kim

и другие.

Accounts of Materials Research, Год журнала: 2025, Номер unknown

Опубликована: Янв. 7, 2025

ConspectusSulfur, being lightweight, cost-effective, and offering a remarkably high lithium-ion storage capacity, has positioned lithium–sulfur (Li–S) batteries as promising candidates for applications that demand energy density. These range from electric vehicles (EVs) to urban air mobility (UAM) systems. Despite this potential, Li–S still face significant performance challenges, limiting their practical application. Chief among these challenges are the limited lifespan low charge–discharge efficiency, predominantly caused by dissolution of lithium polysulfide intermediate products formed during battery cycling in ether-based electrolytes. Moreover, sulfur sulfide, which constitute active material cathode, intrinsically insulating, complicating efforts increase content cathode fabricate thick cathodes with conductivity. issues have long stood way achieving commercial viability. Overcoming obstacles requires multifaceted approach focuses on modifications at level materials such material, conductive agents, binders, additives. This Account delves into key presents comprehensive overview research strategies aimed enhancing particular focus cathode. First, addresses batteries, complex composition utilization suboptimal electrolyte-to-sulfur ratios, nonuniform conversion reactions. Strategies overcome barriers include design advanced architectures promote an improved Modifications components adjoining materials, incorporation additives, help mitigate insulating nature sulfur.Additionally, places emphasis innovative use pelletizing techniques fabrication, demonstrated notable improvements performance. One Account's highlights is discussion low-temperature operation critical area real-world application, especially aerospace cold-environment operations. There differences when transitioning lab-scale coin cells larger pouch cells, underscoring importance considering cell geometries impact scalability Finally, explores development all-solid-state could fundamentally address issue eliminating liquid electrolytes altogether. The inherent drawbacks loading, can be strategically addressed pave commercialization. In doing so, offer clear pathway beyond limitations conventional making them highly attractive option requiring gravimetric volumetric densities.

Язык: Английский

Процитировано

3

Overview of Fiber-shaped Energy Storage Devices: from Fabrication to Application DOI
Qing Zhang,

Yinuo Jin,

Siyao Qi

и другие.

Nano Energy, Год журнала: 2024, Номер 128, С. 109896 - 109896

Опубликована: Июнь 17, 2024

Язык: Английский

Процитировано

9

Chitosan-derived N-doped porous carbon with fiber network structure for advanced lithium‑sulfur batteries DOI
Dong Wang,

Xianrui Bai,

Hua Yang

и другие.

Journal of Energy Storage, Год журнала: 2024, Номер 99, С. 113302 - 113302

Опубликована: Авг. 14, 2024

Язык: Английский

Процитировано

6

From one-dimensional to three-dimensional, the criss-crossed fiber materials forge high-performance lithium-sulfur batteries DOI
Jin He, Lei Chen, Danqing Song

и другие.

Chemical Engineering Journal, Год журнала: 2024, Номер 495, С. 153126 - 153126

Опубликована: Июнь 20, 2024

Язык: Английский

Процитировано

3

Advanced Fabrication Techniques for Polymer-Metal Nanocomposite Films: State-of-the-Art Innovations in Energy and Electronic Applications DOI Creative Commons
Muhammad Tayyab,

Liu Zizhe,

Sajid Rauf

и другие.

Chemical Science, Год журнала: 2024, Номер unknown

Опубликована: Дек. 18, 2024

Fabrication techniques for polymer–metal composite films in energy and electronic applications: a comprehensive review.

Язык: Английский

Процитировано

3

Covalent Organic Frameworks and Their Derivatives for Applications in High‐Performance Lithium–Sulfur Batteries DOI
Xiudong Chen,

Huixiong Jiang,

Jin‐Hang Liu

и другие.

Advanced Functional Materials, Год журнала: 2024, Номер unknown

Опубликована: Дек. 30, 2024

Abstract Lithium–Sulfur batteries (LSBs) are widely regarded as one of the most promising energy storage systems due to their ultra‐high theoretical density and environmental friendliness. However, practical applications LSBs face significant challenges, including shuttle effect soluble polysulfides formation lithium dendrites. Covalent organic frameworks (COFs) have emerged potential materials for inhibiting polysulfide buffering This review provides an overview latest advancements in use COF its derivative sulfur host materials, modified commercial separators, electrolytes LBSs, makes some brief conclusions predictions. Pure COFs, derivatives, composites discussed hosts, along with novel strategies intended enhance LSB cycling stability reversibility. Strategies enhancing performance summarized through modification separators using ultimate goal achieving high density. It also discusses designing COF‐based electrolytes, which include structural design, ionic introduction salt molecules or flexible oligo(ethylene oxide) chains into skeletons. Additionally, future prospects COFs derivatives LSBs.

Язык: Английский

Процитировано

3

Электрохимическое получение диоксида марганца из сернокислого электролита DOI Open Access

Г.Г. Хамкова,

А. А. Черник

Chemical bulletin., Год журнала: 2025, Номер 7(3), С. 64 - 77

Опубликована: Март 12, 2025

в данной работе исследован процесс электрохимического получения диоксида марганца из 10% сернокислого электролита выщелачивания активной массы отработанных марганцево-цинковых химических источников тока. Актуальность темы обусловлена широким применением MnO2 современной промышленности и необходимостью разработки эффективных методов его вторичного сырья. Цель исследования состояла изучении влияния температуры ультразвукового воздействия на свойства размеры частиц получаемого марганца. Методика эксперимента включала электролиз трехэлектродной ячейке при варьировании от 30°С до 90°С плотности тока 3-5 А/дм2. Ультразвуковая обработка осуществлялась частоте 20 кГц. Полученные образцы исследовались методами сканирующей электронной микроскопии рентгеновского энергодисперсионного анализа. Результаты показали, что повышение ведет к росту размеров 0.2 5-10 мкм. Введение ультразвука позволяет получать высокодисперсный с размерами кристаллитов менее 50 нм. Максимальный выход по току (92%) обеспечивается 60°С 5 Практическая значимость работы связана возможностью наноструктурированного улучшенными электрохимическими характеристиками отработанного Дальнейшие будут направлены оптимизацию параметров электролиза ультразвуковой обработки для управления морфологией свойствами MnO2. this paper investigates the process of electrochemical production manganese dioxide from a sulfuric acid electrolyte leaching active mass spent manganese-zinc chemical power sources. The relevance topic is due to wide application in modern industry and need develop efficient methods for obtaining it secondary raw materials. aim study was examine influence temperature ultrasonic treatment on properties sizes obtained particles. experimental methodology included electrolysis three-electrode cell with variation 30°C 90°C current density A/dm2. Ultrasonic carried out at frequency kHz. samples were studied using scanning electron microscopy X-ray energy-dispersive analysis. results showed that increasing leads an increase size particles microns. introduction ultrasound allows highly dispersed crystallite less than nm. maximum yield achieved 60°C practical significance work associated possibility nanostructured improved characteristics Further research will be aimed optimizing parameters control morphology

Язык: Русский

Процитировано

0

An Expansion-Mitigant Binder for Stable Cycling of High-Loading Lithium–Sulfur Batteries DOI
Avinash Raulo,

Saheed Adewale Lateef,

Golareh Jalilvand

и другие.

ACS Applied Materials & Interfaces, Год журнала: 2025, Номер unknown

Опубликована: Апрель 23, 2025

Lithium-sulfur batteries with high sulfur content and mass loading are promising energy storage technologies due to sulfur's exceptional theoretical density. However, in practice, their actual capacity drastically decays when the cathode is loaded commercially required levels of 4 mgsulfur cm-2 above, significantly reducing This reduction excessive formation polysulfides during lithiation, which not only deteriorates battery performance through detrimental shuttling but also results substantial stress buildup larger volume compared sulfur. To address these challenges, we have developed an approach suppress lithium polysulfide by limiting space for expansion while improving Li+ ion diffusion. was achieved a straightforward effective method cross-link organic binder used electrodes. Specifically, PVDF, one most common materials electrodes, studied. The chemical, mechanical, structural properties cross-linked PVDF were thoroughly investigated, standard correlated electrochemical As result, cathodes exhibited prolonged cycle life counterparts. Moreover, using this expansion-mitigant binder, areal mg showed stability more than 200 cycles Coulombic efficiency above 97%. offers avenue alleviate major roadblocks lithium-sulfur commercialization allowing utilization commonly accessible well-studied chemistries.

Язык: Английский

Процитировано

0