Wen Dan-Liang, Deng Hai-Tao, Liu Xin, Li Guo-Ke, Zhang Xin-Ran, Zhang Xiao-Sheng
School of Electronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu, 611731 China.
Microsyst Nanoeng. 2020 Sep 7;6:68. doi: 10.1038/s41378-020-0179-6. eCollection 2020.
Wearable electronics play a crucial role in advancing the rapid development of artificial intelligence, and as an attractive future vision, all-in-one wearable microsystems integrating powering, sensing, actuating and other functional components on a single chip have become an appealing tendency. Herein, we propose a wearable thermoelectric generator (ThEG) with a novel double-chain configuration to simultaneously realize sustainable energy harvesting and multi-functional sensing. In contrast to traditional single-chain ThEGs with the sole function of thermal energy harvesting, each individual chain of the developed double-chain thermoelectric generator (DC-ThEG) can be utilized to scavenge heat energy, and moreover, the combination of the two chains can be employed as functional sensing electrodes at the same time. The mature mass-fabrication technology of screen printing was successfully introduced to print n-type and p-type thermoelectric inks atop a polymeric substrate to form thermocouples to construct two independent chains, which makes this DC-ThEG flexible, high-performance and cost-efficient. The emerging material of silk fibroin was employed to cover the gap of the fabricated two chains to serve as a functional layer for sensing the existence of liquid water molecules in the air and the temperature. The powering and sensing functions of the developed DC-ThEG and their interactions were systematically studied via experimental measurements, which proved the DC-ThEG to be a robust multi-functional power source with a 151 mV open-circuit voltage. In addition, it was successfully demonstrated that this DC-ThEG can convert heat energy to achieve a 3.3 V output, matching common power demands of wearable electronics, and harvest biothermal energy to drive commercial electronics (i.e., a calculator). The integration approach of powering and multi-functional sensing based on this new double-chain configuration might open a new chapter in advanced thermoelectric generators, especially in the applications of all-in-one self-powered microsystems.
可穿戴电子设备在推动人工智能的快速发展中发挥着关键作用,作为一个具有吸引力的未来愿景,将供电、传感、驱动等功能组件集成在单个芯片上的一体化可穿戴微系统已成为一种引人注目的趋势。在此,我们提出了一种具有新型双链结构的可穿戴热电发电机(ThEG),以同时实现可持续的能量收集和多功能传感。与传统的仅具有热能收集单一功能的单链ThEG不同,所开发的双链热电发电机(DC-ThEG)的每条单独链都可用于收集热能,此外,两条链的组合还可同时用作功能传感电极。成功引入了成熟的丝网印刷大规模制造技术,在聚合物基板上印刷n型和p型热电油墨以形成热电偶,从而构建两条独立的链,这使得这种DC-ThEG具有柔性、高性能且成本效益高。采用新兴材料丝素蛋白覆盖所制造的两条链之间的间隙,用作检测空气中液态水分子的存在和温度的功能层。通过实验测量系统地研究了所开发的DC-ThEG的供电和传感功能及其相互作用,结果证明该DC-ThEG是一种强大的多功能电源,开路电压为151 mV。此外,成功证明了这种DC-ThEG可以将热能转化为3.3 V的输出,匹配可穿戴电子设备的常见功率需求,并收集生物热能来驱动商业电子设备(即计算器)。基于这种新的双链结构的供电和多功能传感集成方法可能会为先进的热电发电机,特别是在一体化自供电微系统的应用中开启新的篇章。