Zhou Andrew F, Flores Soraya Y, Pacheco Elluz, Peng Xiaoyan, Zhang Susannah G, Feng Peter X
Department of Chemistry, Biochemistry, and Physics, Indiana University of Pennsylvania, Indiana, PA, 15705, USA.
Department of Physics, University of Puerto Rico, San Juan, Puerto Rico, 00936, USA.
Discov Nano. 2024 Sep 27;19(1):157. doi: 10.1186/s11671-024-04112-7.
Novel sensing applications benefit from multifunctional nanomaterials responsive to various external stimuli such as mechanics, electricity, light, humidity, or pollution. While few such materials occur naturally, the careful design of synergized nanomaterials unifies the cross-coupled properties which are weak or absent in single-phase materials. In this study, 2D MoS integrated with ultrathin dielectric oxide layers forms hetero-nanostructures with significant impacts on carrier transport. The ternary TiO/MoS/ZnO hetero-nanostructures, along with their individual properties, improve the performance of multifunctional sensing devices. The synthesized hetero-nanostructure exhibits a responsivity of up to 16 mA/W to 700 nm light and responds to 5 ppm ammonia gas at room temperature. These enhancements are attributed to interface charge transfer and photogating effects. The ternary TiO/MoS/ZnO hetero-nanostructure is compatible with existing semiconductor fabrication technologies, making it feasible to integrate into flexible, lightweight semiconductor devices and circuits. These results may inspire new photodetectors and sensing devices based on two-dimensional (2D) layered materials for IoT applications.
新型传感应用受益于对各种外部刺激(如力学、电学、光、湿度或污染)有响应的多功能纳米材料。虽然这类材料很少天然存在,但协同纳米材料的精心设计将单相材料中微弱或不存在的交叉耦合特性统一起来。在本研究中,二维MoS₂与超薄介电氧化物层集成形成对载流子输运有显著影响的异质纳米结构。三元TiO₂/MoS₂/ZnO异质纳米结构及其各自的特性提高了多功能传感装置的性能。合成的异质纳米结构对700nm光的响应率高达16 mA/W,并在室温下对5 ppm的氨气有响应。这些增强归因于界面电荷转移和光门效应。三元TiO₂/MoS₂/ZnO异质纳米结构与现有的半导体制造技术兼容,使其能够集成到柔性、轻质的半导体器件和电路中。这些结果可能会激发基于二维(2D)层状材料的新型光电探测器和传感装置用于物联网应用。