Yan Xiantong, Xu Wanghuai, Deng Yajun, Zhang Chao, Zheng Huanxi, Yang Siyan, Song Yuxin, Li Pengyu, Xu Xiaote, Hu Yue, Zhang Luwen, Yang Zhengbao, Wang Steven, Wang Zuankai
Department of Mechanical Engineering, City University of Hong Kong, Hong Kong 999077, China.
Research Center for Nature-inspired Engineering, City University of Hong Kong, Hong Kong, China.
Sci Adv. 2022 Jun 24;8(25):eabo7698. doi: 10.1126/sciadv.abo7698.
Bubbles have been extensively explored as energy carriers ranging from boiling heat transfer and targeted cancer diagnosis. Yet, despite notable progress, the kinetic energy inherent in small bubbles remains difficult to harvest. Here, we develop a transistor-inspired bubble energy generator for directly and efficiently harvesting energy from small bubbles. The key points lie in designing dielectric surface with high-density electric charges and tailored surface wettability as well as transistor-inspired electrode configuration. The synergy between these features facilitates fast bubble spreading and subsequent departure, transforms the initial liquid/solid interface into gas/solid interface under the gating of bubble, and yields an output at least one order of magnitude higher than existing studies. We also show that the output can be further enhanced through rapid bubble collapse at the air/liquid interface and multiple bubbles synchronization. We envision that our design will pave the way for small bubble-based energy harvesting in liquid media.
气泡作为能量载体已被广泛研究,其应用范围涵盖沸腾传热和靶向癌症诊断等领域。然而,尽管取得了显著进展,但小气泡所固有的动能仍难以收集。在此,我们开发了一种受晶体管启发的气泡能量发生器,用于直接且高效地从小气泡中收集能量。关键在于设计具有高密度电荷的介电表面、定制的表面润湿性以及受晶体管启发的电极配置。这些特性之间的协同作用有助于气泡快速铺展并随后脱离,在气泡的门控作用下将初始的液/固界面转变为气/固界面,并产生比现有研究至少高一个数量级的输出。我们还表明,通过在气/液界面处快速气泡坍塌和多个气泡同步,可以进一步提高输出。我们设想,我们的设计将为液体介质中基于小气泡的能量收集铺平道路。