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一种采用双光子聚合技术在光纤尖端制造的整体式力敏3D微夹钳。

A Monolithic Force-Sensitive 3D Microgripper Fabricated on the Tip of an Optical Fiber Using 2-Photon Polymerization.

作者信息

Power Maura, Thompson Alex J, Anastasova Salzitsa, Yang Guang-Zhong

机构信息

Hamlyn Centre for Robotic Surgery, Bessemer Building, Imperial College London, South Kensington, London, SW7 2AZ, UK.

Surgical Innovation Centre, Paterson Building, Department of Medicine, St. Mary's Hospital, Imperial College London, South Wharf Road, London, W2 1NY, UK.

出版信息

Small. 2018 Apr;14(16):e1703964. doi: 10.1002/smll.201703964. Epub 2018 Feb 26.

Abstract

Microscale robotic devices have myriad potential applications including drug delivery, biosensing, cell manipulation, and microsurgery. In this work, a tethered, 3D, compliant grasper with an integrated force sensor is presented, the entirety of which is fabricated on the tip of an optical fiber in a single-step process using 2-photon polymerization. This gripper can prove useful for the interrogation of biological microstructures such as alveoli, villi, or even individual cells. The position of the passively actuated grasper is controlled via micromanipulation of the optical fiber, and the microrobotic device measures approximately 100 µm in length and breadth. The force estimation is achieved using optical interferometry: high-dimensional spectral readings are used to train artificial neural networks to predict the axial force exerted on/by the gripper. The design, characterization, and testing of the grasper are described and its real-time force-sensing capability with an accuracy below 2.7% of the maximum calibrated force is demonstrated.

摘要

微型机器人设备有无数潜在应用,包括药物递送、生物传感、细胞操作和显微手术。在这项工作中,展示了一种带有集成力传感器的 tethered、3D、柔顺抓取器,其整体通过双光子聚合在单步过程中制造在光纤尖端上。这种抓取器可证明对诸如肺泡、绒毛甚至单个细胞等生物微观结构的询问有用。被动驱动抓取器的位置通过对光纤的显微操作来控制,并且该微型机器人设备的长度和宽度约为100微米。力的估计通过光学干涉测量法实现:使用高维光谱读数训练人工神经网络来预测施加在抓取器上/由抓取器施加的轴向力。描述了抓取器的设计、表征和测试,并展示了其最大校准力精度低于2.7%的实时力传感能力。

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