In situ Spectroscopy: Delineating the mechanistic understanding of electrochemical energy reactions DOI
Jayaraman Theerthagiri, K. Karuppasamy, C. Justin Raj

et al.

Progress in Materials Science, Journal Year: 2025, Volume and Issue: unknown, P. 101451 - 101451

Published: Feb. 1, 2025

Language: Английский

Electron and Ion Transport in Lithium and Lithium-Ion Battery Negative and Positive Composite Electrodes DOI
Calvin D. Quilty, Daren Wu, Wenzao Li

et al.

Chemical Reviews, Journal Year: 2023, Volume and Issue: 123(4), P. 1327 - 1363

Published: Feb. 9, 2023

Electrochemical energy storage systems, specifically lithium and lithium-ion batteries, are ubiquitous in contemporary society with the widespread deployment of portable electronic devices. Emerging applications such as integration renewable generation expanded adoption electric vehicles present an array functional demands. Critical to battery function electron ion transport they determine output under application conditions what portion total contained can be utilized. This review considers processes for active materials well positive negative composite electrodes. Length time scales over many orders magnitude relevant ranging from atomic arrangements short times conduction large format batteries years operation. Characterization this diversity demands multiple methods obtain a complete view involved. In addition, we offer perspective on strategies enabling rational design electrodes, role continuum modeling, fundamental science needed continued advancement electrochemical systems improved density, power, lifetime.

Language: Английский

Citations

218

Battery safety: Fault diagnosis from laboratory to real world DOI Creative Commons
Jingyuan Zhao,

Xuning Feng,

Manh‐Kien Tran

et al.

Journal of Power Sources, Journal Year: 2024, Volume and Issue: 598, P. 234111 - 234111

Published: Feb. 15, 2024

Battery failures, although rare, can significantly impact applications such as electric vehicles. Minor faults at cell level might lead to catastrophic failures and thermal runaway over time, underscoring the importance of early detection real-time diagnosis. This article offers a concise yet comprehensive review analysis mechanisms that cause battery failures. It emphasizes distinctions between controlled laboratory tests practical scenarios, where safety hazards occur during manufacturing operational Addressing urgent need transition technology from academic laboratories is key objective this review. The cloud-based, AI-enhanced hierarchical framework leverages emerging technologies predict behavior, enabling qualitative quantitative diagnostics throughout entire cycle. goal address concerns in large-scale real-world by applying observational, empirical, physical, mathematical understanding system. provides holistic tools for defective cells multiphysics (mechanical, electrical, behaviors) manufacturing, digital diagnostic solutions multiple scales (cell, pack, system), facilitates assessments second-life cells. Finally, we discuss trends, significant challenges, opportunities improving using big data machine learning.

Language: Английский

Citations

56

Near ambient N2 fixation on solid electrodes versus enzymes and homogeneous catalysts DOI
Olivia Westhead, Jesús Barrio, Alexander Bagger

et al.

Nature Reviews Chemistry, Journal Year: 2023, Volume and Issue: 7(3), P. 184 - 201

Published: Feb. 1, 2023

Language: Английский

Citations

53

Degradation Mechanisms of Electrodes Promotes Direct Regeneration of Spent Li‐Ion Batteries: A Review DOI
Kai Jia, Guorui Yang,

Yujia He

et al.

Advanced Materials, Journal Year: 2024, Volume and Issue: 36(23)

Published: March 27, 2024

Abstract The rapid growth of electric vehicle use is expected to cause a significant environmental problem in the next few years due large number spent lithium‐ion batteries (LIBs). Recycling LIBs will not only alleviate problems but also address challenge limited natural resources shortages. While several hydro‐ and pyrometallurgical processes are developed for recycling different components batteries, direct regeneration presents clear environmental, economic advantages. principle approach restoring electrochemical performance by healing defective structure materials. Thus, development technology largely depends on formation mechanism defects LIBs. This review systematically details degradation mechanisms types found diverse cathode materials, graphite anodes, current collectors during battery's lifecycle. Building this understanding, principles methodologies directly rejuvenating materials within outlined. Also main challenges solutions large‐scale proposed. Furthermore, aims pave way discarded offering theoretical foundation practical guidance.

Language: Английский

Citations

50

Ionic liquids: environmentally sustainable materials for energy conversion and storage applications DOI
Gaurav Choudhary, Jyoti Dhariwal, Moumita Saha

et al.

Environmental Science and Pollution Research, Journal Year: 2023, Volume and Issue: 31(7), P. 10296 - 10316

Published: Jan. 31, 2023

Language: Английский

Citations

48

Recent advances in interface engineering of silicon anodes for enhanced lithium-ion battery performance DOI
Liang Wang, Jie Yu, Shaoyuan Li

et al.

Energy storage materials, Journal Year: 2024, Volume and Issue: 66, P. 103243 - 103243

Published: Feb. 1, 2024

Language: Английский

Citations

47

Lithium-ion batteries: Recent progress in improving the cycling and rate performances of transition metal oxide anodes by incorporating graphene-based materials DOI
Edigar Muchuweni, Edwin T. Mombeshora, Cosmas M. Muiva

et al.

Journal of Energy Storage, Journal Year: 2023, Volume and Issue: 73, P. 109013 - 109013

Published: Sept. 16, 2023

Language: Английский

Citations

42

Lithium-ion battery cell formation: status and future directions towards a knowledge-based process design DOI Creative Commons
Felix Schomburg, Bastian Heidrich, Sarah Wennemar

et al.

Energy & Environmental Science, Journal Year: 2024, Volume and Issue: 17(8), P. 2686 - 2733

Published: Jan. 1, 2024

This review examines the key process of lithium-ion battery cell formation. Influencing factors, challenges, experimental and simulation tools required for knowledge-based design current emerging technologies are addressed.

Language: Английский

Citations

36

Achievements, challenges, and perspectives in the design of polymer binders for advanced lithium-ion batteries DOI
Qiang He, Jiaoyi Ning, Hongming Chen

et al.

Chemical Society Reviews, Journal Year: 2024, Volume and Issue: 53(13), P. 7091 - 7157

Published: Jan. 1, 2024

The design of binders for lithium-ion batteries is highlighted, with an emphasis on key parameters affecting device performance and failure mechanisms. These issues are discussed in detail using the example a silicon anode sulfur cathode.

Language: Английский

Citations

31

Understanding the transport mechanism of lithium ions in solid-electrolyte interphase in lithium metal batteries with liquid electrolytes DOI

Shu‐Yu Sun,

Xue‐Qiang Zhang,

Ya-Nan Wang

et al.

Materials Today, Journal Year: 2024, Volume and Issue: 77, P. 39 - 65

Published: Aug. 1, 2024

Language: Английский

Citations

22