Tan Enpu, Liu Yu, Hu Chunyan, Zhu Zhijia, Liu Baojiang
College of Chemistry and Chemical Engineering, Donghua University, No. 2999 North Renmin Road, Shanghai 201620, China.
ACS Appl Mater Interfaces. 2025 Aug 27;17(34):48375-48386. doi: 10.1021/acsami.5c11850. Epub 2025 Aug 18.
Moisture-enabled electricity generator (MEG) technology converts energy from the environment into green electricity by exploiting the interaction between atmospheric moisture and hydrophilic materials and has the advantages of a simple device structure, small geographical and temporal constraints, and environmental friendliness; therefore, it has great application value in serving as a power source for portable electronic devices. However, the high output performance of most MEG devices is dependent on high ambient relative humidity (RH), and current MEG technologies tend to be poorly flexible and lack wearability, which severely pose a barrier to their practical utilization. Here, we have developed a high-performance bilayer MEG with exceptional environmental adaptability and stretchability. By rationally combining TiCT MXene-loaded cotton knitted fabrics (MC) and a stretchable double-network ionic hydrogel (IH) to form the MXene/cotton-ionic hydrogel MEG (MCIH-MEG), the MCIH-MEG with 230% stretchable capacity can continuously provide an open-circuit voltage () of 0.5 V and a short-circuit current () of 50 μA, which stem from the continuous water evaporation within the device and fast capillary water flow on MXene nanosheets, as well as redox reactions at the electrodes, which can achieve good electrical performance across a wide range of temperatures (0-80 °C) and RH levels (20-95%). Due to its flexibility, stable electrical output, and sensitivity to external stimuli, MCIH-MEG can be employed in the fabrication of self-powered sensors to detect simple weight changes or even complex gesture changes and in the construction of self-powered smart masks for respiratory monitoring.
基于湿度的发电机(MEG)技术通过利用大气湿度与亲水性材料之间的相互作用将环境中的能量转化为绿色电力,具有装置结构简单、地理和时间限制小以及环境友好等优点;因此,在作为便携式电子设备的电源方面具有很大的应用价值。然而,大多数MEG设备的高输出性能依赖于高环境相对湿度(RH),并且当前的MEG技术往往柔韧性差且缺乏可穿戴性,这严重阻碍了它们的实际应用。在此,我们开发了一种具有卓越环境适应性和可拉伸性的高性能双层MEG。通过合理地将负载TiCT MXene的棉针织面料(MC)与可拉伸的双网络离子水凝胶(IH)结合形成MXene/棉-离子水凝胶MEG(MCIH-MEG),具有230%拉伸能力的MCIH-MEG能够持续提供0.5 V的开路电压()和50 μA的短路电流(),这源于设备内部持续的水分蒸发、MXene纳米片上快速的毛细水流以及电极处的氧化还原反应,其在很宽的温度范围(0 - 80°C)和RH水平(20 - 95%)内都能实现良好的电性能。由于其柔韧性、稳定的电输出以及对外部刺激的敏感性,MCIH-MEG可用于制造自供电传感器以检测简单的重量变化甚至复杂的手势变化,以及用于构建用于呼吸监测的自供电智能口罩。