Fast Magnetic Micropropellers with Random Shapes
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[1] A. Leshansky,et al. Optimal Length of Low Reynolds Number Nanopropellers. , 2015, Nano letters.
[2] M. J. Kim,et al. Self-assembly of robotic micro- and nanoswimmers using magnetic nanoparticles , 2015, Journal of Nanoparticle Research.
[3] Henry Chien Fu,et al. Modeling rigid magnetically rotated microswimmers: rotation axes, bistability, and controllability. , 2014, Physical review. E, Statistical, nonlinear, and soft matter physics.
[4] Min Jun Kim,et al. Minimal geometric requirements for micropropulsion via magnetic rotation. , 2014, Physical review. E, Statistical, nonlinear, and soft matter physics.
[5] C. Hierold,et al. Superparamagnetic Twist‐Type Actuators with Shape‐Independent Magnetic Properties and Surface Functionalization for Advanced Biomedical Applications , 2014 .
[6] Xiaomiao Feng,et al. Template electrosynthesis of tailored-made helical nanoswimmers. , 2014, Nanoscale.
[7] John G. Gibbs,et al. Nanopropellers and their actuation in complex viscoelastic media. , 2014, ACS nano.
[8] Li Zhang,et al. Artificial bacterial flagella functionalized with temperature-sensitive liposomes for controlled release , 2014 .
[9] Li Zhang,et al. Artificial bacterial flagella for remote-controlled targeted single-cell drug delivery. , 2014, Small.
[10] Jake J. Abbott,et al. Behavior of rotating magnetic microrobots above the step-out frequency with application to control of multi-microrobot systems , 2014 .
[11] Salvador Pané,et al. Hybrid helical magnetic microrobots obtained by 3D template-assisted electrodeposition. , 2014, Small.
[12] Ambarish Ghosh,et al. Conformal cytocompatible ferrite coatings facilitate the realization of a nanovoyager in human blood. , 2014, Nano letters.
[13] Wei Wang,et al. Acoustic propulsion of nanorod motors inside living cells. , 2014, Angewandte Chemie.
[14] Wei Gao,et al. The environmental impact of micro/nanomachines: a review. , 2014, ACS nano.
[15] Hongsoo Choi,et al. Noncytotoxic artificial bacterial flagella fabricated from biocompatible ORMOCOMP and iron coating. , 2014, Journal of materials chemistry. B.
[16] M. Sitti,et al. Untethered micro-robotic coding of three-dimensional material composition , 2014, Nature Communications.
[17] Xiaomiao Feng,et al. Bioinspired helical microswimmers based on vascular plants. , 2014, Nano letters.
[18] G. Rangarajan,et al. Velocity Fluctuations in Helical Propulsion: How Small Can a Propeller Be. , 2014, The journal of physical chemistry letters.
[19] Ambarish Ghosh,et al. Observation of enhanced diffusivity in magnetically powered reciprocal swimmers. , 2013, Physical review letters.
[20] Soichiro Tottori,et al. Artificial helical microswimmers with mastigoneme-inspired appendages. , 2013, Biomicrofluidics.
[21] P. Fratzl,et al. Selecting for Function: Solution Synthesis of Magnetic Nanopropellers , 2013, Nano letters.
[22] A. Leshansky,et al. The chiral magnetic nanomotors. , 2013, Nanoscale.
[23] John G. Gibbs,et al. Chiral Colloidal Molecules And Observation of The Propeller Effect , 2013, Journal of the American Chemical Society.
[24] Li Zhang,et al. Bio-inspired magnetic swimming microrobots for biomedical applications. , 2013, Nanoscale.
[25] Shawn W. Walker,et al. Optimization of chiral structures for microscale propulsion. , 2013, Nano letters.
[26] Ambarish Ghosh,et al. Dynamical configurations and bistability of helical nanostructures under external torque. , 2012, Physical review. E, Statistical, nonlinear, and soft matter physics.
[27] Salvador Pané,et al. Helical and tubular lipid microstructures that are electroless-coated with CoNiReP for wireless magnetic manipulation. , 2012, Small.
[28] H. H. Yiu,et al. Enzyme–magnetic nanoparticle hybrids: new effective catalysts for the production of high value chemicals , 2012 .
[29] Shawn M. Douglas,et al. A Logic-Gated Nanorobot for Targeted Transport of Molecular Payloads , 2012, Science.
[30] Krzysztof K. Krawczyk,et al. Magnetic Helical Micromachines: Fabrication, Controlled Swimming, and Cargo Transport , 2012, Advanced materials.
[31] Li Zhang,et al. Localized non-contact manipulation using artificial bacterial flagella , 2011 .
[32] Joseph Wang,et al. High-speed propulsion of flexible nanowire motors: Theory and experiments , 2011, 1109.1631.
[33] Mamoru Mitsuishi,et al. Selective control method for multiple magnetic helical microrobots , 2011 .
[34] P. Fischer,et al. Magnetically actuated propulsion at low Reynolds numbers: towards nanoscale control. , 2011, Nanoscale.
[35] C. Cardona,et al. Analysis of a reactive extraction process for biodiesel production using a lipase immobilized on magnetic nanostructures. , 2010, Bioresource technology.
[36] Li Zhang,et al. Artificial bacterial flagella for micromanipulation. , 2010, Lab on a chip.
[37] Ioannis K. Kaliakatsos,et al. Microrobots for minimally invasive medicine. , 2010, Annual review of biomedical engineering.
[38] Christos Bergeles,et al. Characterizing the swimming properties of artificial bacterial flagella. , 2009, Nano letters.
[39] P. Fischer,et al. Controlled propulsion of artificial magnetic nanostructured propellers. , 2009, Nano letters.
[40] Metin Sitti,et al. Miniature devices: Voyage of the microrobots , 2009, Nature.
[41] Lixin Dong,et al. Artificial bacterial flagella: Fabrication and magnetic control , 2009 .
[42] E. Purcell. Life at Low Reynolds Number , 2008 .
[43] A. Lu,et al. Magnetic nanoparticles: synthesis, protection, functionalization, and application. , 2007, Angewandte Chemie.
[44] A. Gast,et al. Micromixing with linked chains of paramagnetic particles. , 2004, Analytical chemistry.
[45] Michel Petitjean,et al. Chirality and Symmetry Measures: A Transdisciplinary Review , 2003, Entropy.
[46] E. Purcell. The efficiency of propulsion by a rotating flagellum. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[47] H. Berg,et al. Bacteria Swim by Rotating their Flagellar Filaments , 1973, Nature.
[48] J. Happel,et al. Low Reynolds number hydrodynamics: with special applications to particulate media , 1973 .
[49] J. Rothstein. Slip on Superhydrophobic Surfaces , 2010 .