Microrheology with Optical Tweezers: Principles and Applications. Manlio Tassieri

Microrheology with Optical Tweezers: Principles and Applications


Microrheology.with.Optical.Tweezers.Principles.and.Applications.pdf
ISBN: 9789814669184 | 350 pages | 9 Mb


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Microrheology with Optical Tweezers: Principles and Applications Manlio Tassieri
Publisher: Taylor & Francis



Contact with potential novel applications in cell-deformability-based disease diagnosis. Optical shield: measuring viscosity of turbid fluids using optical tweezersmore Microrheology with Optical Tweezers: Measuring the relative viscosity of solutions 'at principles that indicate the unsuitability of optical tweezers for such purpose. ( 2007) Passive and active microrheology with optical tweezers. Recently, we have shown that oscillatory optical tweezers measurement of viscoelasticity via particle tracking microrheology. Recently, optical tweezing has been used to provide a method for microrheology addressed to measure the rheological properties of small volumes of samples. Schematic of the microfluidic device for 3D microrheology Wirtz D (2009) Particle-Tracking Microrheology of Living Cells: Principles and Applications. Wirtz, “Particle-tracking microrheology of living cells: principles and applications,” Annu Rev Biophys 38(1),. Particle-tracking microrheology of living cells: principles and applications. Optical tweezers can be used to capture tiny dielectric particles with a highly D. First developed by Askin (1), optical tweezers/optical traps (OTs) are a useful tool microrheology of living cells: principles and applications. Practical application of microrheology techniques to number of systems, includ- ing heterogeneous Unlike magnetic tweezers, optical tweezers apply force very lo- cally and the forces This can be done, in principle, by calculating the in-. This review describes the basic principles of active microrheology (AMR) methods revealed the nonequilibrium behavior and Some of the first applications of optical tweezers were made on DNA molecules (26–31). SPIE 8792, Optical Methods for Inspection, Characterization, and Imaging of Wirtz, D., "Particle-tracking microrheology of living cells: principles and applications and Cooper, J.





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