Photonic nanojet-enhanced microcone-shaped fiber-optic tweezers for broad-range microscopic viscosity sensing; Journal of Applied Physics; Vol. 139, iss. 7

Bibliografske podrobnosti
Parent link:Journal of Applied Physics.— .— New York: AIP Publishing.— 0021-8979
Vol. 139, iss. 7.— 2026.— Article number 074501, 11 p.
Drugi avtorji: Min-Chieh Hsieh, Wei-Yu Chen, Quoc-Thinh Dinh, Srishti Sen, Thi-Thu-Hien Pham, Minin O. V. Oleg Vladilenovich, Minin I. V. Igor Vladilenovich, Cheng-Yang Liu
Izvleček:Title screen
The viscosity coefficient is a fundamental parameter in fluid dynamics and soft matter physics; however, conventional measurement techniques, including falling-ball, capillary flow, and vibrational methods, generally require large, homogeneous samples and are incompatible with microscale or optically scattering systems. Here, we report a single-fiber optical tweezers platform that utilizes a microcone-shaped fiber probe for stable, non-contact manipulation of microscale particles and quantitative viscosity probing. The tapered fiber tip, fabricated via controlled chemical etching and optimized through numerical simulations, promotes photonic nanojet formation at the fiber output, resulting in enhanced optical gradient forces and robust single-beam trapping. Experimental measurements demonstrate efficient trapping of 6 μm polystyrene microspheres, achieving a maximum trapping force of 24.9 pN and a trapping efficiency of 46.7%, in excellent agreement with theoretical predictions, thereby validating the underlying optical force model. In addition, the same platform was employed for in situ viscosity extraction from glycerol–water mixtures and whole blood. The measured values deviate by less than 4% from commercial viscometers across a broad dynamic range extending to 6.12 mPa s. These results demonstrate that nanojet-enhanced optical forces provide a compact, energy-efficient route for probing fundamental fluid properties at the microscale, while offering insight into light–matter interactions in complex fluidic environments
Текстовый файл
AM_Agreement
Jezik:angleščina
Izdano: 2026
Teme:
Online dostop:https://doi.org/10.1063/5.0315692
Format: Elektronski Book Chapter
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=685119

MARC

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330 |a The viscosity coefficient is a fundamental parameter in fluid dynamics and soft matter physics; however, conventional measurement techniques, including falling-ball, capillary flow, and vibrational methods, generally require large, homogeneous samples and are incompatible with microscale or optically scattering systems. Here, we report a single-fiber optical tweezers platform that utilizes a microcone-shaped fiber probe for stable, non-contact manipulation of microscale particles and quantitative viscosity probing. The tapered fiber tip, fabricated via controlled chemical etching and optimized through numerical simulations, promotes photonic nanojet formation at the fiber output, resulting in enhanced optical gradient forces and robust single-beam trapping. Experimental measurements demonstrate efficient trapping of 6 μm polystyrene microspheres, achieving a maximum trapping force of 24.9 pN and a trapping efficiency of 46.7%, in excellent agreement with theoretical predictions, thereby validating the underlying optical force model. In addition, the same platform was employed for in situ viscosity extraction from glycerol–water mixtures and whole blood. The measured values deviate by less than 4% from commercial viscometers across a broad dynamic range extending to 6.12 mPa s. These results demonstrate that nanojet-enhanced optical forces provide a compact, energy-efficient route for probing fundamental fluid properties at the microscale, while offering insight into light–matter interactions in complex fluidic environments 
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461 1 |0 379655  |9 379655  |t Journal of Applied Physics  |c New York  |n AIP Publishing  |x 0021-8979 
463 1 |t Vol. 139, iss. 7  |v Article number 074501, 11 p.  |d 2026 
610 1 |a электронный ресурс 
610 1 |a труды учёных ТПУ 
610 1 |a Fiber optics 
610 1 |a Optical tweezers 
610 1 |a Optical trapping 
610 1 |a Fluid dynamics 
610 1 |a Viscosity 
701 0 |a Min-Chieh Hsieh 
701 0 |a Wei-Yu Chen 
701 0 |a Quoc-Thinh Dinh 
701 0 |a Srishti Sen 
701 0 |a Thi-Thu-Hien Pham 
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701 1 |a Minin  |b I. V.  |c physicist  |c Professor of Tomsk Polytechnic University, Doctor of technical sciences  |f 1960-  |g Igor Vladilenovich  |9 20427 
701 0 |a Cheng-Yang Liu 
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