Huang Qian, Lee Joon, Arce Fernando Teran, Yoon Ilsun, Angsantikul Pavimol, Liu Justin, Shi Yuesong, Villanueva Josh, Thamphiwatana Soracha, Ma Xuanyi, Zhang Liangfang, Chen Shaochen, Lal Ratnesh, Sirbuly Donald J
Department of NanoEngineering, University of California, San Diego, La Jolla, California 92093, USA.
Materials Science and Engineering, University of California, San Diego, La Jolla, California 92093, USA.
Nat Photonics. 2017;11:352-355. doi: 10.1038/nphoton.2017.74. Epub 2017 May 15.
Ultrasensitive nanomechanical instruments, including the atomic force microscope (AFM) and optical and magnetic tweezers, have helped shed new light on the complex mechanical environments of biological processes. However, it is difficult to scale down the size of these instruments due to their feedback mechanisms, which, if overcome, would enable high-density nanomechanical probing inside materials. A variety of molecular force probes including mechanophores, quantum dots, fluorescent pairs and molecular rotors have been designed to measure intracellular stresses; however, fluorescence-based techniques can have short operating times due to photo-instability and it is still challenging to quantify the forces with high spatial and mechanical resolution. Here, we develop a compact nanofibre optic force transducer (NOFT) that utilizes strong near-field plasmon-dielectric interactions to measure local forces with a sensitivity of <200 fN. The NOFT system is tested by monitoring bacterial motion and heart-cell beating as well as detecting infrasound power in solution.
超灵敏纳米机械仪器,包括原子力显微镜(AFM)以及光学镊子和磁性镊子,有助于为生物过程的复杂机械环境带来新的认识。然而,由于其反馈机制,这些仪器难以缩小尺寸,而如果克服这一问题,将能够在材料内部进行高密度纳米机械探测。已经设计了多种分子力探针,包括机械荧光团、量子点、荧光对和分子转子,用于测量细胞内应力;然而,基于荧光的技术由于光不稳定性可能具有较短的操作时间,并且以高空间和机械分辨率对力进行量化仍然具有挑战性。在此,我们开发了一种紧凑的纳米光纤力传感器(NOFT),它利用强近场等离子体 - 介电相互作用来测量局部力,灵敏度小于200飞牛。通过监测细菌运动和心脏细胞跳动以及检测溶液中的次声功率对NOFT系统进行了测试。