Novel applications of Photonic Force Microscopy

dc.contributor
Universitat Politècnica de Catalunya. Departament de Física i Enginyeria Nuclear
dc.contributor.author
Volpe, Giovanni
dc.date.accessioned
2011-04-12T15:19:31Z
dc.date.available
2008-11-21
dc.date.issued
2008-10-23
dc.date.submitted
2008-11-21
dc.identifier.isbn
9788469188279
dc.identifier.uri
http://www.tdx.cat/TDX-1121108-115435
dc.identifier.uri
http://hdl.handle.net/10803/6616
dc.description.abstract
The ability of detecting farces and torques at the micro-and nano-scale is fundamental. When this Thesis started, various scanning probe techniques had already been developed to probe the mechanical properties of microsystems. In 1993 Ghislain and coworkers devised a new scanning force microscopy using an optically trapped microsphere as a probe. This technique was later called Photonic Force Microscope (PFM).<br/><br/>A typical PFM comprises an optical trap that holds a probe - a dielectric or metallic particle of micrometer size, which randomly moves due to Brownian motion In the potential well formed by the optical trap - and a position sensing system. The analysis of the thermal motion provides information about the local forces acting on the particle. The three-dimensional probe position can be recorded through different devices, which detect the forward or backward scattered light from the particle.<br/><br/>The PFM had been applied to measure forces in the range of femto- to pico-Newton - well below the limits of what can be achieved with techniques based an micro-fabricated mechanical cantilevers, such as AFM - in many different fields with exciting applications, for example, in biophysics, equilibrium and nonequilibrium thermodynamics of small systems, and colloidal physics.<br/><br/>We defined various problems that deserved our attention. All of them concerned the enhancement of the possibilities of the PFM, either by applying the PFM to new fields or by making it more powerful.<br/><br/>These are the main results:<br/>1. Brownian motion in an nonhomegeneous force field and Photonic Torque Microscope<br/>We reported how to expand the PFM technique to deal with force fields varying on the scale of the Brownian motion. We also proposed a concrete analysis workflow to reconstruct the force field from the experimental time series of the probe position. In particular, we analyzed the PFM probe movement in the presence of a torque. The value of the torque is found from the auto- and cross-correlation functions of the particles coordinates. We experimentally detected the torque exerted onto an optically trapped particle by an optical beam with orbital angular momentum.<br/><br/>2. Backscattering position detection<br/>We studied theoretically the probe displacement sensitivity in back-scattering and forward-scattering geometry. To achieve this aim an original calculation procedure based on Mie scattering theory was developed and realized on MatLab platform. The calculation results were compared with known experimental data.<br/><br/>3. Surface Plasmon (SP) Radiation Farces<br/>We reported the first experimental observation of the momentum transfer from a SP to a single dielectric sphere. We showed that the force at resonance conditions resulted enhanced 40 times compared to nonresonant illumination. We also reported a quantitative analysis of 20 surface-plasmon-based optical tweezers at a patterned metal surface.<br/><br/>4. Characterization of microscopic flows<br/>We suggested an approach to microrheology based on optical traps capable of measuring fluid fluxes around singular points. The concept was to monitor the position of an optically trapped probe in order to locally characterize the drag torte field as a generic function of the space coordinates up to the first order in its Taylor expansion around the probe position. We experimentally demonstrated this technique, applying it to the charactedeation of controlled flows.<br/><br/>5. Cell dynamics in an optical trap<br/>We reported the analysis of the forward scattered light from a single optically trapped cell during its growth. We showed that the cell continued adjusting itself to the applied optical force because of the growth processes, and hence it kept changing its orientation in the trap. We pointed out the relevance of these findings for single optically trapped cell spectroscopic measurements. We also demonstrated the possibility of monitoring the cytoskeleton structural transformations in optically trapped yeast cells (S. cerevisiae ) using this technique.
cat
dc.format.mimetype
application/pdf
dc.language.iso
eng
dc.publisher
Universitat Politècnica de Catalunya
dc.rights.license
ADVERTIMENT. L'accés als continguts d'aquesta tesi doctoral i la seva utilització ha de respectar els drets de la persona autora. Pot ser utilitzada per a consulta o estudi personal, així com en activitats o materials d'investigació i docència en els termes establerts a l'art. 32 del Text Refós de la Llei de Propietat Intel·lectual (RDL 1/1996). Per altres utilitzacions es requereix l'autorització prèvia i expressa de la persona autora. En qualsevol cas, en la utilització dels seus continguts caldrà indicar de forma clara el nom i cognoms de la persona autora i el títol de la tesi doctoral. No s'autoritza la seva reproducció o altres formes d'explotació efectuades amb finalitats de lucre ni la seva comunicació pública des d'un lloc aliè al servei TDX. Tampoc s'autoritza la presentació del seu contingut en una finestra o marc aliè a TDX (framing). Aquesta reserva de drets afecta tant als continguts de la tesi com als seus resums i índexs.
dc.source
TDX (Tesis Doctorals en Xarxa)
dc.subject
fuerzas
dc.subject
sistemas microscópicos
dc.subject
movimiento browniano
dc.subject
microscopio de fuerza fotònica
dc.subject
momentos de torsión
dc.title
Novel applications of Photonic Force Microscopy
dc.type
info:eu-repo/semantics/doctoralThesis
dc.type
info:eu-repo/semantics/publishedVersion
dc.subject.udc
53
cat
dc.subject.udc
537
cat
dc.contributor.director
Petrov, Dimitri
dc.contributor.tutor
Boronat Medico, Jordi
dc.rights.accessLevel
info:eu-repo/semantics/openAccess
dc.identifier.dl
B.6333-2009


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