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1
Holding forces of single-particle dielectrophoretic traps.
Biophys J. 2001 Jan;80(1):531-41. doi: 10.1016/S0006-3495(01)76035-3.
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Quantitative modeling of dielectrophoretic traps.
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3
Quantitative measurements of force and displacement using an optical trap.
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4
Massively parallel manipulation of single cells and microparticles using optical images.
Nature. 2005 Jul 21;436(7049):370-2. doi: 10.1038/nature03831.
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Dielectrophoresis of nanoparticles.
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Negative DEP traps for single cell immobilisation.
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Electrode surface ratio optimization for thermal performance in 3-D dielectrophoretic single-cell traps.
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Quantitative measurements of absolute dielectrophoretic forces using optical tweezers.
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Lipid coated liquid crystal droplets for the on-chip detection of antimicrobial peptides.
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Measurement of bacterial flagellar thrust by negative dielectrophoresis.
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Dose optimization of proton and heavy ion therapy using generalized sampled pattern matching.
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Higher-order dielectrophoretic effects: levitation at a field null.
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Biological applications of optical forces.
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Separation of viable and non-viable yeast using dielectrophoresis.
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Dielectrophoretic spectra of single cells determined by feedback-controlled levitation.
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Levitation, holding, and rotation of cells within traps made by high-frequency fields.
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Linear and nonlinear electrode polarization and biological materials.
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