Qin Tingting, Zhao Xiaolong, Sui Yiming, Wang Dong, Chen Weicheng, Zhang Yingguang, Luo Shijing, Pan Wending, Guo Zhenbin, Leung Dennis Y C
Department of Mechanical Engineering, The University of Hong Kong, Hong Kong, 999077, China.
Department of Chemistry, Oregon State University, Corvallis, OR, 97331-4003, USA.
Adv Mater. 2024 Aug;36(32):e2402644. doi: 10.1002/adma.202402644. Epub 2024 Jun 11.
Heterogeneous electrode materials possess abundant heterointerfaces with a localized "space charge effect", which enhances capacity output and accelerates mass/charge transfer dynamics in energy storage devices (ESDs). These promising features open new possibilities for demanding applications such as electric vehicles, grid energy storage, and portable electronics. However, the fundamental principles and working mechanisms that govern heterointerfaces are not yet fully understood, impeding the rational design of electrode materials. In this study, the heterointerface evolution during charging and discharging process as well as the intricate interaction between heterointerfaces and charge/mass transport phenomena, is systematically discussed. Guidelines along with feasible strategies for engineering structural heterointerfaces to address specific challenges encountered in various application scenarios, are also provided. This review offers innovative solutions for the development of heterogeneous electrode materials, enabling more efficient energy storage beyond conventional electrochemistry. Furthermore, it provides fresh insights into the advancement of clean energy conversion and storage technologies. This review contributes to the knowledge and understanding of heterointerfaces, paving the way for the design and optimization of next-generation energy storage materials for a sustainable future.
异质电极材料拥有丰富的异质界面,具有局部“空间电荷效应”,这增强了储能器件(ESD)的容量输出并加速了质量/电荷转移动力学。这些有前景的特性为电动汽车、电网储能和便携式电子产品等苛刻应用开辟了新的可能性。然而,支配异质界面的基本原理和工作机制尚未完全理解,这阻碍了电极材料的合理设计。在本研究中,系统地讨论了充放电过程中的异质界面演变以及异质界面与电荷/质量传输现象之间的复杂相互作用。还提供了指导方针以及工程化结构异质界面以应对各种应用场景中遇到的特定挑战的可行策略。这篇综述为异质电极材料的开发提供了创新解决方案,实现了超越传统电化学的更高效储能。此外,它为清洁能源转换和存储技术的进步提供了新的见解。这篇综述有助于对异质界面的认识和理解,为可持续未来的下一代储能材料的设计和优化铺平道路。