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Team proposes microprinting a fiber-tip polymer clamped-beam probe for high-sensitivity nanoforce measurements


a Optical microscopy photos of clamped-beam probe with totally different heights and their corresponding reflection spectra. b, c, and d are the bending deformation simulation outcomes of the sensor below the identical micro drive (1 μN) performing on the probe with totally different diameters (10, 5, and three μm). e Relationship between the probe diameter and flexure deformation below the identical micro drive (1 μN). Credit: Mengqiang Zou, Changrui Liao, Shen Liu, Cong Xiong, Cong Zhao, Jinlai Zhao, Zongsong Gan, Yanping Chen, Kaiming Yang, Dan Liu, Ying Wang and Yiping Wang

The management and measurement of asserted forces on small objects are regularly seen in micromanipulation, materials science, and organic and medical functions. Researchers in China have proposed for the primary time the microprinting of a novel fiber-tip-polymer clamped-beam probe micro-force sensor for the examination of organic samples. This strategy opens new avenues in direction of the conclusion of small-footprint AFMs, and the proposed sensor has nice software prospects for analyzing organic samples and the mechanical properties of supplies.


Due to the development of miniaturization of units, micromanipulation has been a scorching subject within the final twenty years. Unlike the macro world, a micro object can simply be broken if the contact force just isn’t precisely detected and managed. For occasion, in medical cardiac catheterization, if physicians do not know the precise contact drive between the catheters and blood vessel partitions throughout an interventional process, the fragile blood vessel networks might be broken, inflicting extreme penalties. However, it stays difficult to scale down the dimensions of the nanomechanical sensor and enhance drive decision due to mechanical suggestions mechanisms and energetic elements. Developing a compact all-fiber, micro-force sensor can open up numerous capabilities, together with real-time intracellular monitoring, minimally invasive probing, and high-resolution detection.

In a brand new paper revealed in Light Science & Applications, Professor Yiping Wang from Shenzhen University and his analysis workforce have proposed the microprinting of a novel fiber-tip-polymer clamped-beam probe micro-force sensor for the examination of organic samples. The proposed sensor consists of two bases, a clamped beam, and a force-sensing probe, which had been developed utilizing a femtosecond-laser-induced two-photon polymerization approach. A miniature all-fiber micro-force sensor of this sort exhibited an ultrahigh drive sensitivity of 1.51 nm/μN, a detection restrict of 54.9 nN, and an unambiguous sensor measurement vary of two.9 mN. The Young’s modulus of polydimethylsiloxane, a butterfly feeler, and human hair had been efficiently measured with the proposed sensor. This strategy opens new avenues in direction of the conclusion of small-footprint AFMs that might be simply tailored to be used in outdoors specialised laboratories. This gadget shall be useful for high-precision biomedical and material science examination, and the proposed fabrication methodology supplies a brand new route for the subsequent era of analysis on complicated fiber-integrated polymer units.

Fiber-tip polymer clamped-beam probe for high-sensitivity nanoforce measurements
a Evolution of reflection spectra of the sensor because the drive elevated from 0 to 2700 nN, as indicated by the arrows. b Dip wavelength versus drive. The line is the linear becoming of measured knowledge factors and the error bar is obtained by critically repeating the experiment of drive measurement thrice. c Simulation outcomes of deformation distribution primarily based on FEM. Credit: Mengqiang Zou, Changrui Liao, Shen Liu, Cong Xiong, Cong Zhao, Jinlai Zhao, Zongsong Gan, Yanping Chen, Kaiming Yang, Dan Liu, Ying Wang and Yiping Wang

Using the structure-correlated mechanics, the workforce developed a compact all-fiber micro-force sensor for the examination of organic samples. In this sensor, the clamped beam, the help bases, and the force-sensing probe had been printed on the optical fiber finish floor utilizing TPP 3D microprinting methodology. The construction of the sensor was optimized utilizing the finite ingredient methodology (FEM), and its static attribute was analyzed. The lead-in fiber-end floor and the clamped beam outline a Fabry–Perot interferometer (FPI). When an exterior drive is exerted on the probe, the probe deflects the clamped beam, which modulates the size of the FPI. This methodology makes use of the low stiffness and excessive resilience of the construction of the clamped beam, permits it to deform sufficient when a small drive is utilized, and thus tremendously improves each drive decision and detection vary of the sensor.

The workforce then carried out microforce sensing measurements earlier than any sensing functions. When drive was progressively utilized to clamped-beam probe, the reflection spectrum of the micro-force sensor was monitored in actual time. Results confirmed a blue shift within the dip wavelength, and the drive sensitivity of the sensor was calculated to be -1.51 nm/μN through the use of a linear match of the dip wavelength change, that are two orders of magnitude greater than that of the beforehand reported fiber-optic drive sensor primarily based on a balloon-like interferometer. Thus, the connection between the utilized drive and the output of the sensor was quantified. In addition, the micro-force sensor has a detection restrict of 54.9 nN, and an unambiguous sensor measurement vary of two.9 mN.

Fiber-tip polymer clamped-beam probe for high-sensitivity nanoforce measurements
a Young’s modulus mechanical diagram on logarithmic scale. b CCD picture of pushing in opposition to butterfly feeler of the proposed sensor. c Evolution of reflection spectrum of the sensor as PDMS deflects from 0 to twenty μm. d Evolution of reflection spectrum of the sensor with deflection of butterfly feeler from 0 to 150 μm. Credit: Mengqiang Zou, Changrui Liao, Shen Liu, Cong Xiong, Cong Zhao, Jinlai Zhao, Zongsong Gan, Yanping Chen, Kaiming Yang, Dan Liu, Ying Wang and Yiping Wang

At the final stage, after the system was totally calibrated, the proposed sensor efficiently measured PDMS, a butterfly feeler and human hair. Results had been verified utilizing an AFM. It is believed that this fiber sensor has the smallest force-detection restrict in direct contact mode reported up to now. With its excessive drive sensitivity, ultra-small detection restrict, micrometer-scale measurement, straightforward packaging, all-dielectric design, biocompatibility, and all-fiber operation, the proposed sensor has nice software prospects for analyzing organic samples and the mechanical properties of supplies.


Researchers make tiny, yet complex fiber optic force sensor


More data:
Mengqiang Zou et al, Fiber-tip polymer clamped-beam probe for high-sensitivity nanoforce measurements, Light: Science & Applications (2021). DOI: 10.1038/s41377-021-00611-9

Citation:
Team proposes microprinting a fiber-tip polymer clamped-beam probe for high-sensitivity nanoforce measurements (2021, September 23)
retrieved 23 September 2021
from https://phys.org/news/2021-09-team-microprinting-fiber-tip-polymer-clamped-beam.html

This doc is topic to copyright. Apart from any honest dealing for the aim of personal examine or analysis, no
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