Plasmon-resonant nanorods as multimodal agents for two-photon luminescent imaging and photothermal therapy
暂无分享,去创建一个
Alexander Wei | Ling Tong | Yan Zhao | Ji-Xin Cheng | Daniel A. Zweifel | Terry B. Huff | Haifeng Wang | Matthew N. Hansen | Ji‐Xin Cheng | A. Wei | Haifeng Wang | Yan Zhao | T. B. Huff | L. Tong | M. Hansen | Ling Tong | D. Zweifel
[1] Philip S Low,et al. In vitro and in vivo two-photon luminescence imaging of single gold nanorods. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[2] W. Webb,et al. Two-Photon Fluorescence Excitation Cross Sections of Biomolecular Probes from 690 to 960 nm. , 1998, Applied optics.
[3] G. Whitesides,et al. Self-assembled monolayers of thiolates on metals as a form of nanotechnology. , 2005, Chemical reviews.
[4] H. L. Hartley,et al. Manuscript Preparation , 2022 .
[5] Catherine J. Murphy,et al. Seed‐Mediated Growth Approach for Shape‐Controlled Synthesis of Spheroidal and Rod‐like Gold Nanoparticles Using a Surfactant Template , 2001 .
[6] R. Murray,et al. Monolayer-protected cluster molecules. , 2000, Accounts of chemical research.
[7] Sangeeta N. Bhatia,et al. Intracellular Delivery of Quantum Dots for Live Cell Labeling and Organelle Tracking , 2004 .
[8] Xiaohua Huang,et al. Surface plasmon resonance scattering and absorption of anti-EGFR antibody conjugated gold nanoparticles in cancer diagnostics: applications in oral cancer. , 2005, Nano letters.
[9] Ji-Xin Cheng,et al. Controlling the cellular uptake of gold nanorods. , 2007, Langmuir : the ACS journal of surfaces and colloids.
[10] Ji-Xin Cheng,et al. Hyperthermic effects of gold nanorods on tumor cells. , 2007, Nanomedicine.
[11] R. Stafford,et al. Nanoshell-mediated near-infrared thermal therapy of tumors under magnetic resonance guidance , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[12] Feldmann,et al. Drastic reduction of plasmon damping in gold nanorods. , 2002, Physical review letters.
[13] A. Wei,et al. Nanoprobe implantation into mammalian cells by cationic transfection. , 2004, Chemical communications.
[14] Lihong V. Wang,et al. Photoacoustic tomography of a nanoshell contrast agent in the in vivo rat brain , 2004 .
[15] Daniel A. Zweifel,et al. Sulfide-Arrested Growth of Gold Nanorods. , 2005, Chemistry of materials : a publication of the American Chemical Society.
[16] A. Wei,et al. Dithiocarbamate assembly on gold. , 2005, Journal of the American Chemical Society.
[17] W. Denk,et al. Deep tissue two-photon microscopy , 2005, Nature Methods.
[18] Thomas Kelly,et al. Synergistic enhancement of selective nanophotothermolysis with gold nanoclusters: Potential for cancer therapy , 2005, Lasers in surgery and medicine.
[19] Cheng-Dah Chen,et al. Highly efficient, wavelength-tunable, gold nanoparticle based optothermal nanoconvertors. , 2005, The journal of physical chemistry. B.
[20] Shen,et al. Photoinduced luminescence from the noble metals and its enhancement on roughened surfaces. , 1986, Physical review. B, Condensed matter.
[21] Robert Langer,et al. Long-Term Stability of Self-Assembled Monolayers in Biological Media , 2003 .
[22] Hui Zhang,et al. Gold nanocages: bioconjugation and their potential use as optical imaging contrast agents. , 2005, Nano letters.
[23] Hiep Ly,et al. Stability and Self-Exchange in Alkanethiol Monolayers , 1995 .
[24] G. Wiederrecht,et al. Surface plasmon characteristics of tunable photoluminescence in single gold nanorods. , 2005, Physical review letters.
[25] K. Jacobson,et al. Single-particle tracking: applications to membrane dynamics. , 1997, Annual review of biophysics and biomolecular structure.
[26] M. Carignano,et al. Cluster size analysis of two-dimensional order in colloidal gold nanoparticle arrays. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[27] Arezou A Ghazani,et al. Determining the size and shape dependence of gold nanoparticle uptake into mammalian cells. , 2006, Nano letters.
[28] C. Mirkin,et al. A fluorescence-based method for determining the surface coverage and hybridization efficiency of thiol-capped oligonucleotides bound to gold thin films and nanoparticles. , 2000, Analytical chemistry.
[29] Vladimir P Zharov,et al. Photothermal nanotherapeutics and nanodiagnostics for selective killing of bacteria targeted with gold nanoparticles. , 2006, Biophysical journal.
[30] J. West,et al. Immunotargeted nanoshells for integrated cancer imaging and therapy. , 2005, Nano letters.
[31] Daniel Day,et al. Cancer cell imaging and photothermal therapy using gold nanorods , 2008 .
[32] Xunbin Wei,et al. Selective cell targeting with light-absorbing microparticles and nanoparticles. , 2003, Biophysical journal.
[33] Catherine J Murphy,et al. Seeded high yield synthesis of short Au nanorods in aqueous solution. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[34] A. Majumdar,et al. Characterization of grafting density and binding efficiency of DNA and proteins on gold surfaces. , 2005, Langmuir : the ACS journal of surfaces and colloids.
[35] T. Niidome,et al. Gold Nanorod-sensitized Cell Death: Microscopic Observation of Single Living Cells Irradiated by Pulsed Near-infrared Laser Light in the Presence of Gold Nanorods , 2006 .
[36] Mostafa A. El-Sayed,et al. Preparation and Growth Mechanism of Gold Nanorods (NRs) Using Seed-Mediated Growth Method , 2003 .
[37] P. Wust,et al. Hyperthermia in combined treatment of cancer. , 2002, The Lancet Oncology.
[38] M. Lieberman,et al. DISPERSION AND STABILITY STUDIES OF RESORCINARENE-ENCAPSULATED GOLD NANOPARTICLES , 2002 .
[39] A. Mooradian,et al. Photoluminescence of Metals , 1969 .