TY - JOUR
T1 - Bioinspired materials for batteries
T2 - Structural design, challenges and future perspective
AU - Rehman, Wasif ur
AU - Ma, Yanan
AU - khan, Zahoor
AU - Ait Laaskri, Fatima Zahra
AU - Xu, Jiawei
AU - Xu, Youlong
AU - Rehman, Hamid
AU - Farooq, Umar
AU - Altalbe, Ali
AU - Li, Jian
N1 - Publisher Copyright:
© 2024 The Authors
PY - 2025/1
Y1 - 2025/1
N2 - Bioinspired materials (BIMs) have significantly impacted our daily lives by serving as essential energy sources. The main challenge for bio-inspired materials is to balance high energy storage, long-lasting performance, being environmentally friendly, and low cost, making them easy to produce at large scales. There has been considerable interest in mimicking electrode materials at the nanoscale, whether in structure or function, due to their unique benefits and enhanced performance in rechargeable batteries. In this review, we explore bioinspired structures that offer abundant active sites for ion storage and transport channels that facilitate rapid ion diffusion, thereby significantly improving electrochemical storage. This study also explored modifications to the surface and interface of smart functionalities, such as self-healing and light-responsiveness, which are essential for integrated energy storage systems. We also emphasized the promise of these BIMs in addressing existing challenges in energy storage technologies, providing valuable insights for future research and practical applications.
AB - Bioinspired materials (BIMs) have significantly impacted our daily lives by serving as essential energy sources. The main challenge for bio-inspired materials is to balance high energy storage, long-lasting performance, being environmentally friendly, and low cost, making them easy to produce at large scales. There has been considerable interest in mimicking electrode materials at the nanoscale, whether in structure or function, due to their unique benefits and enhanced performance in rechargeable batteries. In this review, we explore bioinspired structures that offer abundant active sites for ion storage and transport channels that facilitate rapid ion diffusion, thereby significantly improving electrochemical storage. This study also explored modifications to the surface and interface of smart functionalities, such as self-healing and light-responsiveness, which are essential for integrated energy storage systems. We also emphasized the promise of these BIMs in addressing existing challenges in energy storage technologies, providing valuable insights for future research and practical applications.
KW - And electrochemical performance
KW - Bioinspired materials
KW - Energy storage materials
KW - Mimicking structures
KW - Synthesis process
UR - https://www.scopus.com/pages/publications/85213966101
U2 - 10.1016/j.rechem.2024.101997
DO - 10.1016/j.rechem.2024.101997
M3 - Review article
AN - SCOPUS:85213966101
SN - 2211-7156
VL - 13
JO - Results in Chemistry
JF - Results in Chemistry
M1 - 101997
ER -