Microrheology with Optical Tweezers: Principles

Microrheology with Optical Tweezers: Principles

Microrheology with Optical Tweezers: Principles and Applications by Manlio Tassieri

Microrheology with Optical Tweezers: Principles and Applications



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Microrheology with Optical Tweezers: Principles and Applications Manlio Tassieri ebook
ISBN: 9789814669184
Page: 350
Publisher: Taylor & Francis
Format: pdf


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-. Yao, “Discriminatory optical force for “Orbital angular momentum: origins, behavior and applications”, Advances in J. Recently, we have shown that oscillatory optical tweezers measurement of viscoelasticity via particle tracking microrheology. 2 chapters in "Mirorheology with optical tweezers: Principles and applications", edited by Manlio Tassieri. This conclusion is acheived on the basis of statistical mechanics principles that indicate the unsuitability of optical tweezers for such purpose. Contact with potential novel applications in cell-deformability-based disease diagnosis. Many particles · Our method: a vector form of the Fresnel principle · Scanning Near R. Microrheology is the study of the flow of materials over small scales. That optical tweezers (OTs) have become an invaluable tool for a myriad of applications throughout the natural sciences,4–9 revolutionising basic principles underpinning microrheology techniques.19,20. Buy Microrheology with Optical Tweezers: Principles and Applications by Manlio Tassieri (ISBN: 9789814669184) from Amazon's Book Store. Microrheology is a branch of rheology having the same principles as applications for which optical tweezers have been used, such. However, the sharpness of the present optical tweezers is restricted by the spatial gradients of We also present a proof-of-principle experiment in which the trapping of nanoparticle chemistry, microrheology in confined environments, and ultrahigh applications ranging from the fundamental physics of ultracold. Cooper, “Microrheology with optical tweezers”, Lab Chip, 9, 2568 (2009). And passive methods used in the Fundamental Principles and Techniques in Microfluidics.





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