Chiral Plasmonics and Their Potential for Point-of-Care Biosensing Applications
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Jorge Ricardo Mejía-Salazar | Osvaldo Novais de Oliveira Junior | Faustino Reyes Gómez | Willian A. Paiva-Marques | J. Mejía-Salazar | F. Gómez | O. N. O. Junior | Willian A Paiva-Marques | F. R. Gómez
[1] Xiaodong Yang,et al. Spin-controlled wavefront shaping with plasmonic chiral geometric metasurfaces , 2018, Light: Science & Applications.
[2] Locally Enhanced and Tunable Optical Chirality in Helical Metamaterials , 2016, 1611.07748.
[3] E. Hendry,et al. Ultrasensitive detection and characterization of biomolecules using superchiral fields. , 2010, Nature nanotechnology.
[4] Zhiming Wang,et al. Photothermal Circular Dichroism Induced by Plasmon Resonances in Chiral Metamaterial Absorbers and Bolometers. , 2018, Nano letters.
[5] S. Singh,et al. STEREOCHEMISTRY AND ITS ROLE IN DRUG DESIGN , 2014 .
[6] Liuyang Sun,et al. Chirality detection of enantiomers using twisted optical metamaterials , 2017, Nature Communications.
[7] Peer Fischer,et al. Hybrid nanocolloids with programmed three-dimensional shape and material composition. , 2013, Nature materials.
[8] Hong Wei,et al. Chiral surface plasmon polaritons on metallic nanowires. , 2011, Physical review letters.
[9] V. Bochenkov,et al. Chiral Plasmonic Biosensors , 2018, Biosensors.
[10] G. Leuchs,et al. Chiroptical response of a single plasmonic nanohelix. , 2018, Optics express.
[11] D. Czaplewski,et al. Realizing structural color generation with aluminum plasmonic V-groove metasurfaces. , 2017, Optics express.
[12] J. Moatti,et al. Economic evaluation of point-of-care diagnostic technologies for infectious diseases. , 2010, Clinical microbiology and infection : the official publication of the European Society of Clinical Microbiology and Infectious Diseases.
[13] Mohammad Zarei,et al. Portable biosensing devices for point-of-care diagnostics: Recent developments and applications , 2017 .
[14] S. Zu,et al. Planar plasmonic chiral nanostructures. , 2016, Nanoscale.
[15] L. Barron,et al. Roles of Superchirality and Interference in Chiral Plasmonic Biodetection , 2019, The Journal of Physical Chemistry C.
[16] Samiksha Nayak,et al. Microfluidics-based point-of-care test for serodiagnosis of Lyme Disease , 2016, Scientific Reports.
[17] Yiqiao Tang,et al. Optical chirality and its interaction with matter. , 2010, Physical review letters.
[18] Xijun Wu,et al. Tunable circular dichroism of bilayer b-type chiral nanostructures , 2019, Optics Communications.
[19] W. Lu,et al. Hybrid Helix Metamaterials for Giant and Ultrawide Circular Dichroism , 2016 .
[20] Zhiyuan Fan,et al. Helical Metal Nanoparticle Assemblies with Defects: Plasmonic Chirality and Circular Dichroism , 2011 .
[21] F. Simmel,et al. DNA-based self-assembly of chiral plasmonic nanostructures with tailored optical response , 2011, Nature.
[22] D. Xiao,et al. Intrinsically or extrinsically reconfigurable chirality in plasmonic chiral metasurfaces , 2019, Optics Communications.
[23] Yongmin Liu,et al. Deep-Learning-Enabled On-Demand Design of Chiral Metamaterials. , 2018, ACS nano.
[24] Katsuo Kurabayashi,et al. Integrated Nanoplasmonic Sensing for Cellular Functional Immunoanalysis Using Human Blood , 2014, ACS nano.
[25] Richard Bruch,et al. Multiplexed Point-of-Care Testing – xPOCT , 2017, Trends in biotechnology.
[26] Sook Mei Khor,et al. Point-of-care tests: A review of advances in the emerging diagnostic tools for dengue virus infection , 2018 .
[27] Bing Xu,et al. Chirality Controls Reaction-Diffusion of Nanoparticles for Inhibiting Cancer Cells. , 2017, ChemNanoMat : chemistry of nanomaterials for energy, biology and more.
[28] M. Kaniewska,et al. Chiral Biosensors and Immunosensors , 2011 .
[29] M. Rudner,et al. Chiral plasmons without magnetic field , 2015, Proceedings of the National Academy of Sciences.
[30] Joel J. P. C. Rodrigues,et al. Performance evaluation of a Fog-assisted IoT solution for e-Health applications , 2019, Future Gener. Comput. Syst..
[31] N. C. Price,et al. How to study proteins by circular dichroism. , 2005, Biochimica et biophysica acta.
[32] Alan S Campbell,et al. Wearable non-invasive epidermal glucose sensors: A review. , 2018, Talanta.
[33] Shun Hashiyada,et al. Active Control of Chiral Optical near Fields on a Single Metal Nanorod , 2019, ACS Photonics.
[34] S. Scott,et al. Clinical Pharmacogenomics: Opportunities and Challenges at Point of Care , 2013, Clinical pharmacology and therapeutics.
[35] Tim Liedl,et al. Plasmonic DNA-origami nanoantennas for surface-enhanced Raman spectroscopy. , 2014, Nano letters.
[36] Lisa V. Poulikakos,et al. Chiral Light Design and Detection Inspired by Optical Antenna Theory , 2018, Nano letters.
[37] Harald Giessen,et al. Tailoring enhanced optical chirality : design principles for chiral plasmonic nanostructures , 2012 .
[38] Björn Eskofier,et al. An Emerging Era in the Management of Parkinson's Disease: Wearable Technologies and the Internet of Things , 2015, IEEE Journal of Biomedical and Health Informatics.
[39] Hari Singh Nalwa,et al. Medical applications of nanoparticles in biological imaging, cell labeling, antimicrobial agents, and anticancer nanodrugs. , 2011, Journal of biomedical nanotechnology.
[40] D. Czaplewski,et al. Near-infrared chiral plasmonic metasurface absorbers. , 2018, Optics express.
[41] R. Bachelot,et al. Local optical chirality induced by near-field mode interference in achiral plasmonic metamolecules. , 2019, Nano letters.
[42] Filippo Capolino,et al. Giant Circular Dichroism at Visible Frequencies Enabled by Plasmonic Ramp-Shaped Nanostructures , 2019, ACS Photonics.
[43] W. J. Salcedo,et al. Optical enantioseparation of chiral molecules using asymmetric plasmonic nanoapertures , 2019, Optical Materials Express.
[44] C. Pham-Huy,et al. Chiral Drugs: An Overview , 2006, International journal of biomedical science : IJBS.
[45] Jensen Li,et al. Measuring circular phase-dichroism of chiral metasurface , 2019, Nanophotonics.
[46] Carlotta Guiducci,et al. Label-free detection of tobramycin in serum by transmission-localized surface plasmon resonance. , 2015, Analytical chemistry.
[47] J. Shaw,et al. Practical challenges related to point of care testing , 2015, Practical laboratory medicine.
[48] Xinyu Liu,et al. A portable paper-based microfluidic platform for multiplexed electrochemical detection of human immunodeficiency virus and hepatitis C virus antibodies in serum. , 2016, Biomicrofluidics.
[49] R. Peeling,et al. Point-of-care diagnostic tests for low-resource settings. , 2015, The Lancet. Global health.
[50] Andrew St John,et al. Existing and Emerging Technologies for Point-of-Care Testing. , 2014, The Clinical biochemist. Reviews.
[51] Jianhua Zhou,et al. Construction of Plasmonic Nano-Biosensor-Based Devices for Point-of-Care Testing , 2017 .
[52] Matthew Horton,et al. Planar chiral metamaterials for biosensing applications , 2013, Photonics West - Biomedical Optics.
[53] Hao Yan,et al. DNA-origami-directed self-assembly of discrete silver-nanoparticle architectures. , 2010, Angewandte Chemie.
[54] G. Si,et al. Maskless fabrication of slanted annular aperture arrays , 2017, Nanotechnology.
[55] 3D Janus plasmonic helical nanoapertures for polarization-encrypted data storage , 2019, Light, science & applications.
[56] Jinhong Guo,et al. Automatic smartphone-based microfluidic biosensor system at the point of care. , 2018, Biosensors & bioelectronics.
[57] S. Ng,,et al. Chiroptical Activity from an Achiral Biological Metal-Organic Framework. , 2018, Journal of the American Chemical Society.
[58] Ming Lun Tseng,et al. Stress‐Induced 3D Chiral Fractal Metasurface for Enhanced and Stabilized Broadband Near‐Field Optical Chirality , 2019, Advanced Optical Materials.
[59] Qiuping Qian,et al. Reversible modulation of plasmonic chiral signals of achiral gold nanorods using a chiral supramolecular template. , 2019, Chemical communications.
[60] O. N. Oliveira,et al. Plasmonic Biosensing. , 2018, Chemical reviews.
[61] Tae Jung Park,et al. Recent progress on surface chemistry of plasmonic metal nanoparticles for colorimetric assay of drugs in pharmaceutical and biological samples , 2018, TrAC Trends in Analytical Chemistry.
[62] Simon G. Patching,et al. Surface plasmon resonance spectroscopy for characterisation of membrane protein-ligand interactions and its potential for drug discovery. , 2014, Biochimica et biophysica acta.
[63] Liguang Xu,et al. Chirality‐Based Biosensors , 2018, Advanced Functional Materials.
[64] Ambarish Ghosh,et al. Plasmonic Interactions at Close Proximity in Chiral Geometries: Route toward Broadband Chiroptical Response and Giant Enantiomeric Sensitivity , 2014 .
[65] Harald Giessen,et al. Large-area 3D chiral plasmonic structures. , 2013, ACS nano.
[66] C. Dobson. Protein folding and misfolding , 2003, Nature.
[67] Xinlong Xu,et al. Coupling Tai Chi Chiral Metamaterials with Strong Optical Activity in Terahertz Region , 2015, Plasmonics.
[68] Rongyao Wang,et al. Competition of Chiroptical Effect Caused by Nanostructure and Chiral Molecules , 2014 .
[69] Zhongyue Zhang,et al. Giant circular dichroism induced by tunable resonance in twisted Z-shaped nanostructure. , 2017, Optics express.
[70] D. Sanvitto,et al. Nanoscale 3D Chiral Plasmonic Helices with Circular Dichroism at Visible Frequencies , 2015 .
[71] A. Miroshnichenko,et al. Hybrid Metasurface Based Tunable Near-Perfect Absorber and Plasmonic Sensor , 2018, Materials.
[72] Yingzhou Huang,et al. Analyzing intrinsic plasmonic chirality by tracking the interplay of electric and magnetic dipole modes , 2017, Scientific Reports.
[73] F. Höök,et al. High throughput fabrication of plasmonic nanostructures in nanofluidic pores for biosensing applications , 2012, Nanotechnology.
[74] D. Czaplewski,et al. All-metal structural color printing based on aluminum plasmonic metasurfaces. , 2016, Optics express.
[75] Amir Avan,et al. Colorimetric detection based on gold nano particles (GNPs): An easy, fast, inexpensive, low-cost and short time method in detection of analytes (protein, DNA, and ion) , 2018, Sensing and Bio-Sensing Research.
[76] Minh-Kha Nguyen,et al. A DNA Origami-Based Chiral Plasmonic Sensing Device. , 2018, ACS applied materials & interfaces.
[77] Gang Wang,et al. Plasmonic chirality of L-shaped nanostructure composed of two slices with different thickness. , 2016, Optics express.
[78] J. Teng,et al. A Novel Chiral Metasurface with Controllable Circular Dichroism Induced by Coupling Localized and Propagating Modes , 2016 .
[79] Abdoulaye Ndao,et al. Slanted annular aperture arrays as enhanced-transmission metamaterials: Excitation of the plasmonic transverse electromagnetic guided mode , 2013 .
[80] T. Shim,et al. Gold-copper nanoshell dot-blot immunoassay for naked-eye sensitive detection of tuberculosis specific CFP-10 antigen. , 2018, Biosensors & bioelectronics.
[81] Gabriel Shemer,et al. Plasmon-resonance-enhanced absorption and circular dichroism. , 2008, Angewandte Chemie.
[82] R. Harris. On the Optical Rotary Dispersion of Polymers , 1965 .
[83] N. Gadegaard,et al. Controlling Metamaterial Transparency with Superchiral Fields , 2017 .
[84] M. Melendez,et al. Disposable Microfluidic Immunoarray Device for Sensitive Breast Cancer Biomarker Detection. , 2017, ACS applied materials & interfaces.
[85] Robert Puers,et al. Focused ion beam induced deposition: fabrication of three-dimensional microstructures and Young's modulus of the deposited material , 2000 .
[86] Etsuko Tokunaga,et al. Understanding the Thalidomide Chirality in Biological Processes by the Self-disproportionation of Enantiomers , 2018, Scientific Reports.
[87] Dynamic manipulation of optical chirality for gammadion nanostructures , 2019, Applied Physics Express.
[88] Alexandre G. Brolo,et al. Plasmonics for future biosensors , 2012, Nature Photonics.
[89] M. Sezen. Focused Ion Beams (FIB) — Novel Methodologies and Recent Applications for Multidisciplinary Sciences , 2016 .
[90] Sanket Goel,et al. From waste to watts in micro-devices: Review on development of Membraned and Membraneless Microfluidic Microbial Fuel Cell , 2018, Applied Materials Today.
[91] M. Huth,et al. Focused electron beam induced deposition meets materials science , 2017, 1709.05835.
[92] M. Owens,et al. Stereochemistry in Drug Action. , 2003, Primary care companion to the Journal of clinical psychiatry.
[93] Xiaodong Yang,et al. Chiral Grayscale Imaging with Plasmonic Metasurfaces of Stepped Nanoapertures , 2019, Advanced Optical Materials.
[94] Xiaodong Yang,et al. Chiral Metamaterials of Plasmonic Slanted Nanoapertures with Symmetry Breaking. , 2018, Nano letters.
[95] Zhaopeng Chen,et al. Highly sensitive on-site detection of glucose in human urine with naked eye based on enzymatic-like reaction mediated etching of gold nanorods. , 2017, Biosensors & bioelectronics.
[96] Anna J Simon,et al. Chiral electronic transitions in fluorescent silver clusters stabilized by DNA. , 2014, ACS nano.
[97] Peter Zijlstra,et al. Single-Molecule Plasmon Sensing: Current Status and Future Prospects , 2017, ACS sensors.
[98] Blanka Klímová,et al. Internet of things in the assessment, diagnostics and treatment of Parkinson’s disease , 2018, Health and Technology.
[99] N. Engheta,et al. Reducing the Complexity: Enantioselective Chiral Near-Fields by Diagonal Slit and Mirror Configuration , 2016 .
[100] P. Dehkhoda,et al. Nanophotonic Platforms for Enhanced Chiral Sensing , 2018 .
[101] J. Teng,et al. Induced Optical Chirality and Circularly Polarized Emission from Achiral CdSe/ZnS Quantum Dots via Resonantly Coupling with Plasmonic Chiral Metasurfaces , 2019, Laser & Photonics Reviews.
[102] M F Burritt,et al. Point-of-care testing. , 1995, Mayo Clinic proceedings.
[103] Chiral response of a metasurface composed of nanoholes and tilted nanorods. , 2019, Applied optics.
[104] P Varona,et al. Artificial intelligence in nanotechnology , 2013, Nanotechnology.
[105] S. Tretyakov,et al. Metasurfaces: From microwaves to visible , 2016 .
[106] Lin Xiao,et al. Tunable atom-trapping based on a plasmonic chiral metamaterial , 2019, Nanophotonics.
[107] Houtong Chen,et al. A review of metasurfaces: physics and applications , 2016, Reports on progress in physics. Physical Society.
[108] Harald Giessen,et al. Chiral plasmonics , 2017, Science Advances.
[109] Nam Heon Cho,et al. Amino-acid- and peptide-directed synthesis of chiral plasmonic gold nanoparticles , 2018, Nature.
[110] C. Genet,et al. Optical chirality density and flux measured in the local density of states of spiral plasmonic structures , 2018, Physical Review A.
[111] Silas W Smith. Chiral toxicology: it's the same thing...only different. , 2009, Toxicological sciences : an official journal of the Society of Toxicology.
[112] G. Shvets,et al. Real-Space Mapping of the Chiral Near-Field Distributions in Spiral Antennas and Planar Metasurfaces. , 2016, Nano letters.
[113] L. Liz‐Marzán,et al. Detection of amyloid fibrils in Parkinson’s disease using plasmonic chirality , 2018, Proceedings of the National Academy of Sciences.
[114] Gil Markovich,et al. Chirality of silver nanoparticles synthesized on DNA. , 2006, Journal of the American Chemical Society.
[115] T. Tatsuma,et al. Chiral Plasmonic Nanostructures Fabricated by Circularly Polarized Light. , 2018, Nano letters.
[116] Yu-Chung Chang,et al. A multichannel smartphone optical biosensor for high-throughput point-of-care diagnostics. , 2017, Biosensors & bioelectronics.
[117] Julien Reboud,et al. Paper-based microfluidics for DNA diagnostics of malaria in low resource underserved rural communities , 2019, Proceedings of the National Academy of Sciences.
[118] Yingzhou Huang,et al. Electromagnetic Energy Redistribution in Coupled Chiral Particle Chain-Film System , 2018, Nanoscale Research Letters.
[119] Ralph Weissleder,et al. Point-of-Care Technologies for Precision Cardiovascular Care and Clinical Research , 2016, JACC. Basic to translational science.
[120] Mohammad Zarei,et al. Advances in point-of-care technologies for molecular diagnostics. , 2017, Biosensors & bioelectronics.
[121] Sandeep Kumar Vashist,et al. Point-of-Care Diagnostics: Recent Advances and Trends , 2017, Biosensors.
[122] Ruipeng Li,et al. Plasmonic Chiral Nanostructures: Chiroptical Effects and Applications , 2017 .
[123] Qingjun Liu,et al. Biosensors and bioelectronics on smartphone for portable biochemical detection. , 2016, Biosensors & bioelectronics.
[124] Frank A Gomez,et al. The future of microfluidic point-of-care diagnostic devices. , 2013, Bioanalysis.
[125] N. Engheta,et al. Helical Plasmonic Nanostructures as Prototypical Chiral Near-Field Sources , 2014 .
[126] Daniel M. Lipkin,et al. Existence of a New Conservation Law in Electromagnetic Theory , 1964 .
[127] Amr A. E. Saleh,et al. Enantioselective Optical Trapping of Chiral Nanoparticles with Plasmonic Tweezers , 2016 .
[128] Na Liu,et al. A plasmonic nanorod that walks on DNA origami , 2015, Nature Communications.
[129] Wenshan Cai,et al. Circular dichroism metamirrors with near-perfect extinction , 2016, 2016 Progress in Electromagnetic Research Symposium (PIERS).
[130] Tao Zhang,et al. Chiral plasmonic DNA nanostructures with switchable circular dichroism , 2013, Nature Communications.
[131] Hendrik Dietz,et al. The sequence of events during folding of a DNA origami , 2019, Science Advances.
[132] K. G. Thomas,et al. Chiral Plasmons: Au Nanoparticle Assemblies on Thermoresponsive Organic Templates. , 2019, ACS nano.
[133] Ziwei Li,et al. Tailoring MoS2 Valley‐Polarized Photoluminescence with Super Chiral Near‐Field , 2018, Advanced materials.
[134] P. Nordlander,et al. Hot Electron Generation and Cathodoluminescence Nanoscopy of Chiral Split Ring Resonators. , 2016, Nano letters.