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Chemistry Aspects and Designing Strategies of Flexible Materials for High-Performance Flexible Lithium-Ion Batteries
Authors:Muhammad Khurram Tufail  Adeel Ahmed  Muhammad Rafiq  Muhammad Asif Nawaz  Syed Shoaib Ahmad Shah  Manzar Sohail  Muhammad Sufyan Javed  Tayyaba Najam  Raed H. Althomali  Mohammed M. Rahman
Affiliation:1. College of Materials Science and Engineering, College of Physics, Qingdao University, Qingdao, 266071 P. R. China;2. Department of Physics, University of Sahiwal, Sahiwal, 57000 Pakistan;3. Department of Chemistry, School of Natural Sciences, National University of Sciences and Technology, Islamabad, 44000 Pakistan;4. School of Physical Sciences, Lanzhou University, 730000 Lanzhou, China;5. Institute of Chemistry, The Islamia University of Bahawalpur, 63100 Bahawalpur, Pakistan;6. Department of Chemistry, College of Art and Science, Prince Sattam bin Abdulaziz University, Wadi Al-Dawasir, 11991 Saudi Arabia;7. Center of Excellence for Advanced Materials Research (CEAMR) & Department of Chemistry, Faculty of Science, King Abdulaziz University, Jeddah, 21589 Saudi Arabia
Abstract:In recent years, flexible and wearable electronics such as smart cards, smart fabrics, bio-sensors, soft robotics, and internet-linked electronics have impacted our lives. In order to meet the requirements of more flexible and adaptable paradigm shifts, wearable products may need to be seamlessly integrated. A great deal of effort has been made in the last two decades to develop flexible lithium-ion batteries (FLIBs). The selection of suitable flexible materials is important for the development of flexible electrolytes self-supported and supported electrodes. This review is focused on the critical discussion of the factors that evaluate the flexibility of the materials and their potential path toward achieving the FLIBs. Following this analysis, we present how to evaluate the flexibility of the battery materials and FLIBs. We describe the chemistry of carbon-based materials, covalent-organic frameworks (COFs), metal-organic frameworks (MOFs), and MXene-based materials and their flexible cell design that represented excellent electrochemical performances during bending. Furthermore, the application of state-of-the-art solid polymer and solid electrolytes to accelerate the development of FLIBs is introduced. Analyzing the contributions and developments of different countries has also been highlighted in the past decade. In addition, the prospects and potential of flexible materials and their engineering are also discussed, providing the roadmap for further developments in this fast-evolving field of FLIB research.
Keywords:Flexible Li-ion Batteries  Self-supported Electrode  Solid Electrolytes  Graphene  Carbon Nanotubes (CNTs)  MXene
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