Bagot Conrad Corbella, Tis Taleb Ba, Xu Bo, Sabo Cobi, Rappeport Eric, Park Wounjhang
Department of Electrical, Computer and Energy Engineering, University of Colorado, Boulder, CO 80309-0425, U.S.A.
Materials Science and Engineering Program, University of Colorado, Boulder, CO 80309-0425, U.S.A.
Adv Opt Mater. 2024 Jul 16;12(20). doi: 10.1002/adom.202400393. Epub 2024 May 25.
We report a novel force sensor exploiting the interaction between plasmonic nanostructures and upconversion nanoparticles (UCNPs). The nanosensor is composed of a gold nanodisk and UCNPs separated by a flexible polymer layer. The gold nanodisk is designed to exhibit a plasmon resonance that selectively enhances one of the emission bands of the UCNPs while leaving the other ones largely unaffected. As the nanosensor is compressed or stretched by an external force, the polymer layer thickness changes, modulating the plasmon-UCNP coupling. The resulting changes in the luminescence intensity provides the basis for sensing. Furthermore, the nanosensor employs ratiometric sensing which makes it highly robust against any environmental variations. Our nanosensors exhibit two orders of magnitude higher responsivity than previously reported UCNP-based force sensors. They can be prepared as an on-chip sensor array or in a colloidal solution, making them suitable for a variety of applications in biology and robotics.
我们报道了一种利用等离子体纳米结构与上转换纳米颗粒(UCNP)之间相互作用的新型力传感器。该纳米传感器由一个金纳米盘和通过柔性聚合物层隔开的UCNP组成。金纳米盘被设计成表现出等离子体共振,该共振选择性地增强UCNP的一个发射带,而使其他发射带基本不受影响。当纳米传感器受到外力压缩或拉伸时,聚合物层厚度发生变化,从而调制等离子体 - UCNP耦合。发光强度的由此产生的变化为传感提供了基础。此外,该纳米传感器采用比率传感,这使其对任何环境变化都具有高度的鲁棒性。我们的纳米传感器表现出比先前报道的基于UCNP的力传感器高两个数量级的响应度。它们可以制备成片上传感器阵列或胶体溶液,使其适用于生物学和机器人技术中的各种应用。