Department of Physics and Materials Science, City University of Hong Kong, 83 Tat Chee Avenue, Hong Kong, S.A.R., China.
Shenzhen Research Institute, City University of Hong Kong, Shenzhen, 518000, China.
Adv Mater. 2016 Oct;28(38):8344-8364. doi: 10.1002/adma.201601928. Epub 2016 Jul 19.
Multifunctional energy storage and conversion devices that incorporate novel features and functions in intelligent and interactive modes, represent a radical advance in consumer products, such as wearable electronics, healthcare devices, artificial intelligence, electric vehicles, smart household, and space satellites, etc. Here, smart energy devices are defined to be energy devices that are responsive to changes in configurational integrity, voltage, mechanical deformation, light, and temperature, called self-healability, electrochromism, shape memory, photodetection, and thermal responsivity. Advisable materials, device designs, and performances are crucial for the development of energy electronics endowed with these smart functions. Integrating these smart functions in energy storage and conversion devices gives rise to great challenges from the viewpoint of both understanding the fundamental mechanisms and practical implementation. Current state-of-art examples of these smart multifunctional energy devices, pertinent to materials, fabrication strategies, and performances, are highlighted. In addition, current challenges and potential solutions from materials synthesis to device performances are discussed. Finally, some important directions in this fast developing field are considered to further expand their application.
多功能储能和转换设备,将新颖的功能和特性融入智能和互动模式中,代表了消费电子产品的重大进步,如可穿戴电子设备、医疗保健设备、人工智能、电动汽车、智能家居和卫星等。在这里,智能能源设备被定义为对结构完整性、电压、机械变形、光和温度变化做出响应的能源设备,称为自修复、电致变色、形状记忆、光探测和热敏性。对于开发具有这些智能功能的能源电子产品,合适的材料、器件设计和性能至关重要。将这些智能功能集成到储能和转换设备中,从理解基本机制和实际实施的角度来看,都带来了巨大的挑战。本文突出了与材料、制造策略和性能相关的这些智能多功能能源设备的最新实例。此外,还讨论了从材料合成到器件性能的当前挑战和潜在解决方案。最后,考虑了一些在这个快速发展的领域中的重要方向,以进一步扩大其应用。