The Cathode–Electrolyte Interface Constructed with Antioxidant Ascorbic Acid Guides LNMO to Achieve Stable Cycling Under High Voltage Conditions DOI
Shen Yang, Jianhua Huang,

Yang Mao

и другие.

ACS Applied Materials & Interfaces, Год журнала: 2024, Номер 16(50), С. 70057 - 70067

Опубликована: Дек. 10, 2024

LiNi0.5Mn1.5O4 (LNMO) is considered one of the most promising cathode materials for high-energy-density lithium-ion batteries (LIBs). However, free-radical-induced carbonate electrolyte decomposition a key factor hindering improvement battery stability. Inspired by antioxidative properties ascorbic acid (AA) in scavenging free radicals, addition AA during electrode fabrication process can effectively terminate radical chain reactions within cycling LNMO. This action prevents severe decomposition, thus stabilizing cathode–electrolyte interface (CEI) and ultimately enhancing The results demonstrate that LNMO||Li half-cell with show significantly improved performance after 1000 cycles at 1 C, high capacity retention rate 87.4%, surpassing 43.6% achieved using PVDF alone as binder. work introduces an efficient straightforward strategy designing functional additives to stabilize phase interfaces, offering economically choice enhance electrochemical

Язык: Английский

Subtractive transformation of cathode materials in spent Li-ion batteries to a low-cobalt 5 V-class cathode material DOI Creative Commons
Jun Ma, Junxiong Wang, Kai Jia

и другие.

Nature Communications, Год журнала: 2024, Номер 15(1)

Опубликована: Фев. 5, 2024

Abstract Adding extra raw materials for direct recycling or upcycling is prospective battery recycling, but overlooks subtracting specific components beforehand can facilitate the to a self-sufficient mode of sustainable production. Here, subtractive transformation strategy degraded LiNi 0.5 Co 0.2 Mn 0.3 O 2 and LiMn 4 5 V-class disordered spinel 1.5 -like cathode material proposed. Equal amounts Ni from are selectively extracted, remaining transition metals directly converted into 0.4 0.1 (CO 3 ) precursor preparing with in-situ doping. The improved conductivity bond strength delivers high-rate (10 C 20 C) high-temperature (60 °C) cycling stability. This no input be generalized practical black mass reduces dependence current production on rare elements, showing potential spent next-generation Li-ion industry.

Язык: Английский

Процитировано

44

Electrolyte additives for Li-ion batteries: classification by elements DOI
Satish Bolloju, Vangapally Naresh,

Yuval Elias

и другие.

Progress in Materials Science, Год журнала: 2024, Номер 147, С. 101349 - 101349

Опубликована: Авг. 3, 2024

Язык: Английский

Процитировано

17

Boosting ultralong lifespan of Fe-based Prussian blue analogs cathode via element doping and crystal water capture DOI
Xuan Wang, Mengran Zhao,

Wenjing Du

и другие.

Chemical Engineering Journal, Год журнала: 2025, Номер unknown, С. 160997 - 160997

Опубликована: Фев. 1, 2025

Язык: Английский

Процитировано

2

Additive Strategy Enhancing In Situ Polymerization Uniformity for High‐Voltage Sodium Metal Batteries DOI Open Access
Jian Ma, Mengyue Yu, Minghao Huang

и другие.

Small, Год журнала: 2023, Номер 20(5)

Опубликована: Сен. 26, 2023

Abstract In situ polymerization to prepare quasi‐solid electrolyte has attracted wide attentions for its advantage in achieving intimate electrode–electrolyte contact and the high process compatibility with current liquid batteries; however, gases can be generated during remained final electrolyte, severely impairing uniformity electrochemical performance. this work, an polymerized poly(vinylene carbonate)‐based high‐voltage sodium metal batteries (SMBs) is demonstrated, which contains a novel multifunctional additive N ‐methyl‐ ‐(trimethylsilyl)trifluoroacetamide (MSTFA). MSTFA as high‐efficient plasticizer diminishes residual after polymerization; softer homogeneous enables much faster ionic conduction. The HF/H 2 O scavenge effect of mitigates corrosion free acid cathode interfacial passivating layers, enhancing cycle stability under voltage. As result, 4.4 V Na||Na 3 (PO 4 ) F cell employing optimized possesses initial discharge capacity 112.0 mAh g −1 retention 91.3% 100 cycles at 0.5C, obviously better than those counterparts without addition. This work gives pioneering study on gas residue phenomenon electrolytes, introduces silane that effectively enhances performance SMBs, showing practical application significance.

Язык: Английский

Процитировано

17

High performance of 5 V LiNi0.5Mn1.5O4 cathode materials synthesized from recycled Li2CO3 for sustainable Lithium-Ion batteries DOI
Yi-De Tsai, Ching‐Hsiang Hsu, Jiahao Hu

и другие.

Journal of Colloid and Interface Science, Год журнала: 2025, Номер 689, С. 137221 - 137221

Опубликована: Март 8, 2025

Язык: Английский

Процитировано

0

Game changers: scavenging materials for nonaqueous rechargeable battery applications DOI Creative Commons
Xing Chen, Huanrui Zhang,

Cizhen Luo

и другие.

eScience, Год журнала: 2025, Номер unknown, С. 100411 - 100411

Опубликована: Апрель 1, 2025

Язык: Английский

Процитировано

0

Dual Additives to Stabilize the Electrode–Electrolyte Interface of Lithium-Rich Layered Cathodes for High-Energy Batteries DOI
Boyang Zhang, Xiaola Li, Zhongwei Liang

и другие.

ACS Applied Energy Materials, Год журнала: 2025, Номер unknown

Опубликована: Апрель 30, 2025

Язык: Английский

Процитировано

0

Exploring oxide cathodes for Li-ion batteries: From mineral mining to active material production DOI Creative Commons
Muskan Srivastava,

Anil Kumar M R,

Sabbir Ahmed

и другие.

Journal of Power Sources, Год журнала: 2025, Номер 645, С. 236968 - 236968

Опубликована: Май 5, 2025

Язык: Английский

Процитировано

0

Application of Electrochemical Impedance Spectroscopy for Diagnostics in Fuel Cells, Electrolyzers, and Batteries DOI Creative Commons
Chanho Kim, Inyoung Jang

ChemElectroChem, Год журнала: 2025, Номер unknown

Опубликована: Май 8, 2025

With global energy demand increasing alongside population growth, the importance of efficient, clean conversion systems like fuel cells and batteries intensifies. Fuel are recognized for their ability to generate electricity from hydrogen oxygen, with water as only byproduct, can also function in reverse storage by producing hydrogen. Batteries chemically store enable zero‐carbon emissions through closed‐loop functionality. As grows, electrochemical impedance spectroscopy (EIS) is more actively used investigating various physicochemical properties within systems. Furthermore, EIS serve an situ analysis method during operation, making it even impactful near future. This article reviews studies applications EIS, advanced technique that provides insights into reaction at interfaces charge transfer processes these In addition, overview principles governing technologies, a focus on distinct roles mechanisms components. The review offers deeper understanding studying performance while covering advancements state‐of‐the‐art technologies cells, electrolyzers, batteries.

Язык: Английский

Процитировано

0

Enhanced Electrochemical Stability of Solid‐State Electrolyte‐Coated High‐Voltage LiNi0.5Mn1.5O4 Cathodes in Li‐Ion Batteries DOI Creative Commons
Jong‐Won Lim, Jihwan Kim, Deok‐Hye Park

и другие.

Energy & environment materials, Год журнала: 2025, Номер unknown

Опубликована: Апрель 17, 2025

Spinel‐structured LiNi 0.5 Mn 1.5 O 4 cathodes in lithium‐ion batteries have gained attention for their high operating voltage, which provides energy density, and cost advantages due to the absence of cobalt. However, issues such as low cycle thermal stabilities been identified, with side reactions occurring at electrode/electrolyte interface during continuous charge/discharge cycles that degrade electrode performance. Herein, we first optimized using Pechini sol–gel method achieve uniform particles controlled calcination temperatures. We then employed density functional theory electrochemical testing identify optimal conditions. Uniform coating surface oxide solid electrolyte Li 6.28 Al 0.24 La 3 Zr 2 12 (LALZO) was confirmed, aiming improve conductivity enhance stability. As a result, formation layer on suppressed blocked contact, leading an increase ion conductivity. This improvement resulted enhanced rate capability significant retention over 100 0.2 C. Additionally, resistance significantly improved layer, demonstrating reduced voltage decay overvoltage Finally, stability enhanced, improving after

Язык: Английский

Процитировано

0