Modulating the p-band center of carbon nanofibers derived from Co spin state as anode for high-power sodium storage DOI
Zhijia Zhang, Yuwen Zhao,

Yanhao Wei

et al.

Chinese Chemical Letters, Journal Year: 2023, Volume and Issue: 35(1), P. 109106 - 109106

Published: Sept. 16, 2023

Language: Английский

Structural regulation of coal-derived hard carbon anode for sodium-ion batteries via pre-oxidation DOI

Meng‐Yuan Su,

Kai-Yang Zhang,

Edison Huixiang Ang

et al.

Rare Metals, Journal Year: 2024, Volume and Issue: 43(6), P. 2585 - 2596

Published: March 27, 2024

Language: Английский

Citations

50

Flaky N-doped hard carbon anode material for sodium-ion batteries DOI

Kai-Yang Zhang,

Y.-J. Fu,

Han‐Hao Liu

et al.

Physica Scripta, Journal Year: 2023, Volume and Issue: 98(12), P. 125977 - 125977

Published: Nov. 16, 2023

Abstract Hard carbon (HC), as a promising anode material for sodium ion batteries, its sluggish diffusion performance hinders further improvement of electrochemical performance. In the preparation process HC materials, screening and treatment precursors can optimize structure morphology products, affecting Here, we use peptone precursor prepare flaky N-doped (PFNC) through one-step annealing method. Benefitting from this structure, prepared PNFC delivers specific capacity 315.5 mAh g −1 at current density 20 mA with excellent rate cyclic stability. This work proves that is valuable precursor, opening new avenue application development HC.

Language: Английский

Citations

44

A review of direct recycling methods for spent lithium-ion batteries DOI
Yang Cao, Junfeng Li, Haocheng Ji

et al.

Energy storage materials, Journal Year: 2024, Volume and Issue: 70, P. 103475 - 103475

Published: May 17, 2024

Language: Английский

Citations

26

Research progresses on metal‐organic frameworks for sodium/potassium‐ion batteries DOI Creative Commons

Ben‐Jian Xin,

Xing‐Long Wu

Battery energy, Journal Year: 2024, Volume and Issue: 3(4)

Published: March 2, 2024

Abstract Metal‐organic frameworks (MOFs), as a new type of functional material, have received much attention in recent years. High ionic conductivity, large specific surface area, controllable pore structure and geometry make it possible to be used electrode materials. Meanwhile, different types MOF derivatives can prepared by adjusting the metal central element, which provides options for finding materials high‐performance batteries. This paper reviews research progress pristine MOFs sodium/potassium‐ion In addition, this describes working principle, advantages, challenges batteries, strategies improve electrochemical performance, well future prospects directions.

Language: Английский

Citations

19

Economical and Ecofriendly Lithium-Ion Battery Recycling: Material Flow and Energy Flow DOI
Qi Zhang,

Xuan‐Wen Gao,

Xiao Liu

et al.

ACS Sustainable Chemistry & Engineering, Journal Year: 2024, Volume and Issue: 12(7), P. 2511 - 2530

Published: Feb. 5, 2024

Since 1990, lithium-ion batteries (LIBs) have been booming in the last decades. Because they are ecofriendly and rechargeable, LIBs widely used portable devices, electric vehicles, even satellites aerospace. However, limited lifespan intensive growth of spent result serious accumulation depletion to hazardous waste. This review critically summarizes state-of-the-art scrapped on recycling benefits national policies. Also advantages disadvantages various technologies efficiency, electrochemical performance restored materials, economic environmental issues compared discussed. A green, feasible, sustainable strategy with high efficiency for (including cathodes, anodes, electrolytes, other metallic materials) is explored discussed detail. Finally, mode, challenges, developing tendency battery production, design, management system put forward speculated.

Language: Английский

Citations

18

Recycling technologies of spent lithium-ion batteries and future directions: A review DOI Open Access
Xuesong Gao, Meng Wu,

Guangjin Zhao

et al.

Transactions of Nonferrous Metals Society of China, Journal Year: 2025, Volume and Issue: 35(1), P. 271 - 295

Published: Jan. 1, 2025

Language: Английский

Citations

4

A systematic review of efficient recycling for the cathode materials of spent lithium-ion batteries: process intensification technologies beyond traditional methods DOI

Lijuan Men,

Shuyao Feng,

Jiafeng Zhang

et al.

Green Chemistry, Journal Year: 2023, Volume and Issue: 26(3), P. 1170 - 1193

Published: Dec. 12, 2023

With the consequent retirement of lithium-ion batteries (LIBs), there has been an upsurge in spent LIBs, posing significant challenges to energy, resources, and environment, which led necessity recycle LIBs.

Language: Английский

Citations

24

Turning waste tyres into carbon electrodes for batteries: Exploring conversion methods, material traits, and performance factors DOI Creative Commons
Ishioma Laurene Egun,

Zixuan Liu,

Yayun Zheng

et al.

Carbon Energy, Journal Year: 2024, Volume and Issue: unknown

Published: June 7, 2024

Abstract Waste tyres (WTs) are a major global issue that needs immediate attention to ensure sustainable environment. They often dumped in landfills or incinerated open environments, which leads environmental pollution. However, various thermochemical conversion methods have shown promising results as treatment routes tackle the WT problem while creating new materials for industries. One such material is char, has properties comparable those of carbon used an active electrode batteries. Therefore, systematic review approaches convert WTs into applications was conducted. The shows pretreatment processes, process routes, and operating parameters affect derived its respective electrochemical performance. WT‐derived potential yield high specific capacity greater than traditional graphite (372 mAh g −1 ) commonly lithium‐ion Finally, outlines challenges well opportunities future research directions from WTs.

Language: Английский

Citations

15

Solid-state synthesis of low-cost and high-energy-density sodium layered-tunnel oxide cathodes: Dynamic structural evolution, Na+/vacancy disordering, and prominent moisture stability DOI

Zhuang‐Chun Jian,

Yi‐Feng Liu,

Yan‐Fang Zhu

et al.

Nano Energy, Journal Year: 2024, Volume and Issue: 125, P. 109528 - 109528

Published: March 20, 2024

Language: Английский

Citations

14

Coupling Ferricyanide/Ferrocyanide Redox Mediated Recycling Spent LiFePO4 with Hydrogen Production DOI
Xin Jia, Hongjun Kang,

Guangyao Hou

et al.

Angewandte Chemie International Edition, Journal Year: 2024, Volume and Issue: 63(10)

Published: Jan. 16, 2024

Abstract Replacing the oxygen evolution reaction with thermodynamically more favorable alternative oxidation reactions offers a promising to reduce energy consumption of hydrogen production. However, questions remain regarding economic viability for industrial‐scale Here, we propose an innovative cost‐effective, environment‐friendly and energy‐efficient strategy simultaneous recycling spent LiFePO 4 (LFP) batteries production by coupling LFP‐assisted ferricyanide/ferrocyanide ([Fe(CN) 6 ] 4− /[Fe(CN) 3− ) redox reaction. The onset potential electrooxidation [Fe(CN) is low at 0.87 V. Operando Raman UV/Visible spectroscopy confirm that presence LFP in electrolyte allows rapid reduction , thereby completing cycle as well facilitating conversion into LiOH ⋅ H 2 O FePO . electrolyzer consumes 3.6 kWh electricity per cubic meter produced 300 mA cm −2 which 43 % less than conventional water electrolysis. Additionally, this pathway not only minimizes chemical prevents secondary pollution but also presents significant benefits.

Language: Английский

Citations

10