Nanomanipulation Using Silicon Photonic Crystal Resonators release_2dttg4vbrzapnmgepv4goiikyy

by Sudeep Mandal, Xavier Serey, David Erickson

References

NOTE: currently batch computed and may include additional references sources, or be missing recent changes, compared to entity reference list.
Fuzzy reference matching is a work in progress!
Read more about quality, completeness, and caveats in the fatcat guide.
Showing 1 - 30 of 32 references (in 196ms)
[ref1/cit1]

via crossref
A revolution in optical manipulation
David G. Grier
2003   Nature
doi:10.1038/nature01935  pmid:12917694 
web.archive.org [PDF]
[ref2/cit2]

via crossref
Microfluidic sorting in an optical lattice
M. P. MacDonald, G. C. Spalding, K. Dholakia
2003   Nature
doi:10.1038/nature02144  pmid:14647376 
web.archive.org [PDF]
[ref3/cit3]

via crossref
Microfluidic sorting of mammalian cells by optical force switching
Mark M Wang, Eugene Tu, Daniel E Raymond, Joon Mo Yang, Haichuan Zhang, Norbert Hagen, Bob Dees, Elinore M Mercer (+ more)
2004   Nature Biotechnology
doi:10.1038/nbt1050  pmid:15608628 
web.archive.org [PDF]
[ref4/cit4]

via crossref
Dynamic manipulation and separation of individual semiconducting and metallic nanowires
Arash Jamshidi, Peter J. Pauzauskie, P. James Schuck, Aaron T. Ohta, Pei-Yu Chiou, Jeffrey Chou, Peidong Yang, Ming C. Wu
2008   Nature Photonics
doi:10.1038/nphoton.2007.277  pmcid:PMC2752982  pmid:19789729 
web.archive.org [PDF]
[ref5/cit5]

via crossref
Manipulation and assembly of nanowires with holographic optical traps
Ritesh Agarwal, Kosta Ladavac, Yael Roichman, Guihua Yu, Charles M. Lieber, David G. Grier
2005   Optics Express
doi:10.1364/opex.13.008906  pmid:19498924 
web.archive.org [PDF]
[ref6/cit6]

via crossref
Enhanced optical chromatography in a PDMS microfluidic system
A. Terray, J. Arnold, S. J. Hart
2005   Optics Express
doi:10.1364/opex.13.010406  pmid:19503255 
[ref7/cit7]

via crossref
Optical chromatography. A new tool for separation of particles
T. Imasaka
1998   Analusis
doi:10.1051/analusis:199826050053 
web.archive.org [PDF]
[ref8/cit8]

via crossref
Nanometric optical tweezers based on nanostructured substrates
A. N. Grigorenko, N. W. Roberts, M. R. Dickinson, Y. Zhang
2008   Nature Photonics
doi:10.1038/nphoton.2008.78 
web.archive.org [PDF]
[ref9/cit9]

via crossref
Optical manipulation of nanoparticles and biomolecules in sub-wavelength slot waveguides
Allen H. J. Yang, Sean D. Moore, Bradley S. Schmidt, Matthew Klug, Michal Lipson, David Erickson
2009   Nature
doi:10.1038/nature07593  pmid:19122638 
web.archive.org [PDF]
[ref10/cit10]

via crossref
Reece P. J.
2006   Appl. Phys. Lett.
[ref11/cit11]

via crossref
Optical manipulation of microparticles and cells on silicon nitride waveguides
S. Gaugiran, S. Gétin, J. M. Fedeli, G. Colas, A. Fuchs, F. Chatelain, J. Dérouard
2005   Optics Express
doi:10.1364/opex.13.006956  pmid:19498716 
[ref12/cit12]

via crossref
Acceleration and Trapping of Particles by Radiation Pressure
A. Ashkin
1970   Physical Review Letters
doi:10.1103/physrevlett.24.156 
[ref13/cit13]

via crossref
Intersubunit coordination in a homomeric ring ATPase
Jeffrey R. Moffitt, Yann R. Chemla, K. Aathavan, Shelley Grimes, Paul J. Jardine, Dwight L. Anderson, Carlos Bustamante
2009   Nature
doi:10.1038/nature07637  pmcid:PMC2716090  pmid:19129763 
web.archive.org [PDF]
[ref14/cit14]

via crossref
Measuring molecular rupture forces between single actin filaments and actin-binding proteins
J. M. Ferrer, H. Lee, J. Chen, B. Pelz, F. Nakamura, R. D. Kamm, M. J. Lang
2008   Proceedings of the National Academy of Sciences of the United States of America
doi:10.1073/pnas.0706124105  pmcid:PMC2453742  pmid:18591676 
web.archive.org [PDF]
[ref15/cit15]

via crossref
Massively parallel manipulation of single cells and microparticles using optical images
Pei Yu Chiou, Aaron T. Ohta, Ming C. Wu
2005   Nature
doi:10.1038/nature03831  pmid:16034413 
web.archive.org [PDF]
[ref16/cit16]

via crossref
Microfabricated water immersion zone plate optical tweezer
Ethan Schonbrun, Charles Rinzler, Kenneth B. Crozier
2008   Applied Physics Letters
doi:10.1063/1.2837538 
web.archive.org [PDF]
[ref17/cit17]

via crossref
Sub-Diffraction-Limited Optical Imaging with a Silver Superlens
N. Fang
2005   Science
doi:10.1126/science.1108759  pmid:15845849 
web.archive.org [PDF]
[ref18/cit18]

via crossref
Surface Plasmon Radiation Forces
Giovanni Volpe, Romain Quidant, Gonçal Badenes, Dmitri Petrov
2006   Physical Review Letters
doi:10.1103/physrevlett.96.238101  pmid:16803408 
web.archive.org [PDF]
[ref19/cit19]

via crossref
Guiding and confining light in void nanostructure
Vilson R. Almeida, Qianfan Xu, Carlos A. Barrios, Michal Lipson
2004   Optics Letters
doi:10.1364/ol.29.001209  pmid:15209249 
web.archive.org [PDF]
[ref20/cit20]

via crossref
Whispering gallery mode carousel – a photonic mechanism for enhanced nanoparticle detection in biosensing
S. Arnold, D. Keng, S. I. Shopova, S. Holler, W. Zurawsky, F. Vollmer
2009   Optics Express
doi:10.1364/oe.17.006230  pmid:19365447 
web.archive.org [PDF]
[ref21/cit21]

via crossref
Optofluidic trapping and transport on solid core waveguides within a microfluidic device
Bradley S. Schmidt, Allen H. J. Yang, David Erickson, Michal Lipson
2007   Optics Express
doi:10.1364/oe.15.014322  pmid:19550709 
web.archive.org [PDF]
[ref22/cit22]

via crossref
Movement of micrometer-sized particles in the evanescent field of a laser beam
Satoshi Kawata, Tadao Sugiura
1992   Optics Letters
doi:10.1364/ol.17.000772  pmid:19794626 
[ref23/cit23]

via crossref
Optical trapping
Keir C. Neuman, Steven M. Block
2004   Review of Scientific Instruments
doi:10.1063/1.1785844  pmcid:PMC1523313  pmid:16878180 
web.archive.org [PDF]
[ref24/cit24]

via crossref
Manipulation of dielectric particles using photonic crystal cavities
Michael Barth, Oliver Benson
2006   Applied Physics Letters
doi:10.1063/1.2420771 
[ref25/cit25]

via crossref
Single virus detection from the reactive shift of a whispering-gallery mode
F. Vollmer, S. Arnold, D. Keng
2008   Proceedings of the National Academy of Sciences of the United States of America
doi:10.1073/pnas.0808988106  pmcid:PMC2603258  pmid:19075225 
web.archive.org [PDF]
[ref26/cit26]

via crossref
A multiplexed optofluidic biomolecular sensor for low mass detection
Sudeep Mandal, Julie M. Goddard, David Erickson
2009   Lab on a Chip
doi:10.1039/b907826f  pmid:19789745 
web.archive.org [PDF]
[ref27/cit27]

via crossref
Design of nanoslotted photonic crystal waveguide cavities for single nanoparticle trapping and detection
Shiyun Lin, Juejun Hu, Lionel Kimerling, Kenneth Crozier
2009   Optics Letters
doi:10.1364/ol.34.003451  pmid:19881624 
web.archive.org [PDF]
[ref28/cit28]

via crossref
Ultracompact silicon-on-insulator ridge-waveguide mirrors with high reflectance
P. Velha, J. C. Rodier, P. Lalanne, J. P. Hugonin, D. Peyrade, E. Picard, T. Charvolin, E. Hadji
2006   Applied Physics Letters
doi:10.1063/1.2372581 
web.archive.org [PDF]
[ref29/cit29]

via crossref
Ultrahigh-Q Nanocavity with 1D Photonic Gap
M. Notomi, E. Kuramochi, H. Taniyama
2008   Optics Express
doi:10.1364/oe.16.011095  pmid:18648423 
[ref30/cit30]

via crossref
High quality factor photonic crystal nanobeam cavities
Parag B. Deotare, Murray W. McCutcheon, Ian W. Frank, Mughees Khan, Marko Lončar
2009   Applied Physics Letters
doi:10.1063/1.3107263 
Showing 1 - 30 of 32 references  next »