Computational modeling of red blood cells trapping using Optical Fiber Tweezers

dc.contributor.author Joana Isabel Paiva en
dc.contributor.author Ana Rita Ribeiro en
dc.contributor.author Pedro Jorge en
dc.contributor.author Carla Carmelo Rosa en
dc.contributor.author João Paulo Cunha en
dc.date.accessioned 2018-01-15T14:45:17Z
dc.date.available 2018-01-15T14:45:17Z
dc.date.issued 2017 en
dc.description.abstract Optical Tweezers (OT) are able to trap/manipulate dielectric particles with few microns in a contactless manner due to forces exerted on them by a strongly focused optical beam. OT are being applied in Biology/Medicine, especially Optical Fiber Tweezers (OFT), for being simpler and more flexible than the conventional setups. Despite of the trapping phenomena of symmetrical particles by OFTs being already modeled, effects regarding complex bodies remain poorly understood. Here we provide a 2D characterization of the trapping forces exerted by a laser OFT on a geometric form of a Red Blood Cell (RBC), occupying different positions in a grid, using the method proposed by Barnett&Loudon. Comparisons were made between the forces exerted on a RBC having the mean normal size; a RBC with 80% of the normal size and an 1.5µm circular particle, due to the size and shape variability of biological-derived structures. The influence of RBCs inclination angles regarding its major axis on trapping performance was also evaluated for angles of p/4 and p/2. Simulation results showed that trapping phenomena are possible for all the conditions evaluated, as well as calculated trapping forces range was according with the literature (pN). We observed that, despite of modeled particles having the same optical characteristics, features such as particle geometry, size, position and inclination degree influence trapping. Trapping forces magnitude was higher for RBC relatively to the circular symmetrical particle; for large RBCs than RBCs with smaller dimensions; and for inclined RBCs than erythrocytes horizontally aligned. Those results reinforce the importance of modeling optical experiments to determine relevant parameters which affect trapping performance. © 2017 IEEE. en
dc.identifier.uri http://repositorio.inesctec.pt/handle/123456789/6159
dc.identifier.uri http://dx.doi.org/10.1109/enbeng.2017.7889447 en
dc.language eng en
dc.relation 6260 en
dc.relation 4318 en
dc.relation 3565 en
dc.relation 5864 en
dc.relation 5063 en
dc.rights info:eu-repo/semantics/embargoedAccess en
dc.title Computational modeling of red blood cells trapping using Optical Fiber Tweezers en
dc.type conferenceObject en
dc.type Publication en
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