Liu Yanlei, Yang Lei, Chen Qian, Wang Zeyi, Yang Zhiwei, Cao Jiacheng, Wang Xiaoshan, Li Hai, Huang Xiao
Institute of Advanced Materials (IAM), Nanjing Tech University (NanjingTech), 30 South Puzhu Road, Nanjing, 211816, P. R. China.
Frontiers Science Center for Flexible Electronics, Xi'an Institute of Flexible Electronics (IFE) and, Xi'an Institute of Biomedical Materials & Engineering, Northwestern Polytechnical University, 127 West Youyi Road, Xi'an, 710072, P. R. China.
Chemistry. 2022 Jun 1;28(31):e202200298. doi: 10.1002/chem.202200298. Epub 2022 Apr 22.
Liquid metals, which possess both good electrical conductivity and liquid-like processability, have drawn much attention recently. They are also capable of acting as synthesis templates to guide the deposition of other functional materials. Herein, through an in-situ galvanic replacement reaction assisted by ultrasonication, core-shell EGaIn/Ag particles composed of EGaIn cores and vertically aligned Ag nanoflakes as shells were prepared; they were further sulfurized to yield ternary EGaIn/Ag/Ag S core-shell composite particles. A humidity sensor based on EGaIn/Ag/Ag S particles showed much higher sensing response than EGaIn and EGaIn/Ag. Such superior performance could be attributed to the n-type semiconducting character of Ag S allowing it to receive electrons from water molecules at low humidity, and its highly hydrophilic surface allowing it to absorb more water molecules at higher humidity so as to enable the formation of ion-conductive paths.
液态金属兼具良好的导电性和类似液体的可加工性,近年来备受关注。它们还能够作为合成模板来引导其他功能材料的沉积。在此,通过超声辅助的原位电置换反应,制备了由铟镓合金(EGaIn)核和垂直排列的银纳米片作为壳层组成的核壳结构EGaIn/Ag颗粒;进一步对其进行硫化处理,得到三元EGaIn/Ag/Ag₂S核壳复合颗粒。基于EGaIn/Ag/Ag₂S颗粒的湿度传感器表现出比EGaIn和EGaIn/Ag更高的传感响应。这种优异的性能可归因于Ag₂S的n型半导体特性,使其能够在低湿度下从水分子接收电子,以及其高度亲水的表面使其能够在较高湿度下吸收更多水分子,从而形成离子传导路径。