Correlated Materials Characterization via Multimodal Chemical and Functional Imaging.
暂无分享,去创建一个
Sergei V. Kalinin | Matthias Lorenz | Alex Belianinov | Sergei V Kalinin | Benjamin Doughty | Nikolay Borodinov | Anton V Ievlev | F. Fernández | N. Borodinov | A. Ievlev | A. Belianinov | O. Ovchinnikova | Benjamin Doughty | M. Lorenz | Olga S Ovchinnikova | Facundo M Fernández
[1] Erik M. Grumstrup,et al. Pump–probe microscopy: Visualization and spectroscopy of ultrafast dynamics at the nanoscale , 2015, CP 2015.
[2] Michael T. Postek,et al. Helium ion microscopy and its application to nanotechnology and nanometrology , 2008 .
[3] Sergei V. Kalinin,et al. Subtractive fabrication of ferroelectric thin films with precisely controlled thickness , 2018, Nanotechnology.
[4] Hugh Spikes,et al. In-Contact IR Spectroscopy of Hydrocarbon Lubricants , 2005 .
[5] K. Svoboda,et al. Principles of Two-Photon Excitation Microscopy and Its Applications to Neuroscience , 2006, Neuron.
[6] Loïc Quinton,et al. MALDI-in source decay applied to mass spectrometry imaging: a new tool for protein identification. , 2010, Analytical chemistry.
[7] K. Kelly,et al. Compressive Broad-Band Hyperspectral Sum Frequency Generation Microscopy to Study Functionalized Surfaces. , 2016, The journal of physical chemistry letters.
[8] Xiaojun Cai,et al. Sum frequency generation-compressive sensing microscope. , 2011, The Journal of chemical physics.
[9] I. Fournier,et al. On-tissue protein identification and imaging by MALDI-Ion mobility mass spectrometry , 2010, Journal of the American Society for Mass Spectrometry.
[10] Stephen Jesse,et al. Co-registered Topographical, Band Excitation Nanomechanical, and Mass Spectral Imaging Using a Combined Atomic Force Microscopy/Mass Spectrometry Platform. , 2015, ACS nano.
[11] Bin Yang,et al. Separation of Distinct Photoexcitation Species in Femtosecond Transient Absorption Microscopy , 2016 .
[12] M. Raschke,et al. Plasmonic nanofocused four-wave mixing for femtosecond near-field imaging. , 2016, Nature nanotechnology.
[13] Mingzhou Jin,et al. High-sensitivity infrared vibrational nanospectroscopy in water , 2017, Light: Science & Applications.
[14] G. V. Van Berkel,et al. Atomic Force Microscopy Thermally-Assisted Microsampling with Atmospheric Pressure Temperature Ramped Thermal Desorption/Ionization-Mass Spectrometry Analysis. , 2017, Analytical chemistry.
[15] J. Michler,et al. High Spatial Resolution Time-of-Flight Secondary Ion Mass Spectrometry for the Masses: A Novel Orthogonal ToF FIB-SIMS Instrument with In Situ AFM , 2012 .
[16] François Lambert,et al. Detection of an estrogen derivative in two breast cancer cell lines using a single core multimodal probe for imaging (SCoMPI) imaged by a panel of luminescent and vibrational techniques. , 2013, The Analyst.
[17] R. Miller,et al. Ultrafast electron diffraction optimized for studying structural dynamics in thin films and monolayers , 2016, Structural dynamics.
[18] Curtis Marcott,et al. AFM–IR: Combining Atomic Force Microscopy and Infrared Spectroscopy for Nanoscale Chemical Characterization , 2012, Applied spectroscopy.
[19] Wei Min,et al. Imaging chromophores with undetectable fluorescence by stimulated emission microscopy , 2009, Nature.
[20] D. Talaga,et al. Imaging of single GaN nanowires by tip-enhanced Raman spectroscopy , 2009 .
[21] Zachary J Smith,et al. Subnanometer-resolved chemical imaging via multivariate analysis of tip-enhanced Raman maps , 2017, Light: Science & Applications.
[22] J. Audinot,et al. High-resolution high-sensitivity elemental imaging by secondary ion mass spectrometry: from traditional 2D and 3D imaging to correlative microscopy , 2015, Nanotechnology.
[23] Sarah Baiz,et al. Radiation-induced reduction-polymerization route for the synthesis of PEDOT conducting polymers , 2016 .
[24] Rachel Masyuko,et al. Correlated imaging--a grand challenge in chemical analysis. , 2013, The Analyst.
[25] Andrew J. Musser,et al. Evidence for conical intersection dynamics mediating ultrafast singlet exciton fission , 2015, Nature Physics.
[26] Libai Huang,et al. Imaging nano-objects by linear and nonlinear optical absorption microscopies , 2015, Nanotechnology.
[27] A. Belianinov,et al. Noble gas ion beams in materials science for future applications and devices , 2017 .
[28] A. Zewail,et al. Ultrafast Molecular Reaction Dynamics in Real-Time: Progress Over a Decade , 1990 .
[29] N. Gierlinger,et al. Tip in–light on: Advantages, challenges, and applications of combining AFM and Raman microscopy on biological samples , 2016, Microscopy research and technique.
[30] Alexandre Dazzi,et al. AFM-IR: Technology and Applications in Nanoscale Infrared Spectroscopy and Chemical Imaging. , 2017, Chemical reviews.
[31] John Shalf,et al. The International Exascale Software Project roadmap , 2011, Int. J. High Perform. Comput. Appl..
[32] Rafael Yuste,et al. Imaging Voltage in Neurons , 2011, Neuron.
[33] Lingjun Li,et al. Mass Spectrometry Imaging: A Review of Emerging Advancements and Future Insights. , 2018, Analytical chemistry.
[34] R. Parr,et al. Local density functional theory of atoms and molecules. , 1979, Proceedings of the National Academy of Sciences of the United States of America.
[35] Sergei V. Kalinin,et al. Big Data Analytics for Scanning Transmission Electron Microscopy Ptychography , 2016, Scientific Reports.
[36] S. Oda,et al. Tip-enhanced Raman mapping of a single Ge nanowire , 2011 .
[37] Sergei V. Kalinin,et al. Quantitative Analysis of the Local Phase Transitions Induced by Laser Heating. , 2015, ACS nano.
[38] A. Franquet,et al. Nanoscale electrochemical response of lithium-ion cathodes: a combined study using C-AFM and SIMS , 2018, Beilstein journal of nanotechnology.
[39] Richard M Caprioli,et al. Molecular profiling of experimental Parkinson's disease: direct analysis of peptides and proteins on brain tissue sections by MALDI mass spectrometry. , 2004, Journal of proteome research.
[40] Matthew D Sonntag,et al. Tip-enhanced Raman imaging: an emergent tool for probing biology at the nanoscale. , 2013, ACS nano.
[41] Z. Su,et al. Analysis of Nanodomain Composition in High-Impact Polypropylene by Atomic Force Microscopy-Infrared. , 2016, Analytical chemistry.
[42] Stephen Jesse,et al. Automated Interpretation and Extraction of Topographic Information from Time of Flight Secondary Ion Mass Spectrometry Data , 2017, Scientific Reports.
[43] K. Kwak,et al. Ultrafast 2D IR vibrational echo spectroscopy. , 2007, Accounts of chemical research.
[44] Renato Zenobi,et al. Nanoscale chemical imaging of single-layer graphene. , 2011, ACS nano.
[45] Sergei V. Kalinin,et al. Big-deep-smart data in imaging for guiding materials design. , 2015, Nature materials.
[46] Stephen Jesse,et al. Identification of phases, symmetries and defects through local crystallography , 2015, Nature Communications.
[47] James A. Harrington,et al. A Review of IR Transmitting, Hollow Waveguides , 2000 .
[48] Gunay Yurtsever,et al. Two-color, two-photon, and excited-state absorption microscopy. , 2007, Journal of biomedical optics.
[49] Florence Sanchez,et al. Nanotechnology in concrete – A review , 2010 .
[50] V. A. Apkarian,et al. Ultrafast pump-probe force microscopy with nanoscale resolution , 2015 .
[51] Tana Elizabeth Villafana,et al. Femtosecond pump-probe microscopy generates virtual cross-sections in historic artwork , 2014, Proceedings of the National Academy of Sciences.
[52] B. Heijs,et al. Multimodal Mass Spectrometry Imaging of N-Glycans and Proteins from the Same Tissue Section. , 2016, Analytical chemistry.
[53] De‐Yin Wu,et al. Nanostructure-based plasmon-enhanced Raman spectroscopy for surface analysis of materials , 2016 .
[54] Libai Huang,et al. Direct Imaging of Frenkel Exciton Transport by Ultrafast Microscopy. , 2017, Accounts of chemical research.
[55] J. Sweedler,et al. SIMS and MALDI MS imaging of the spinal cord , 2008, Proteomics.
[56] Elizabeth M. Tennyson,et al. Mesoscale Functional Imaging of Materials for Photovoltaics , 2017 .
[57] J. Barthélémy,et al. A Proof of Concept to Bridge the Gap between Mass Spectrometry Imaging, Protein Identification and Relative Quantitation: MSI~LC-MS/MS-LF , 2016, Proteomes.
[58] N. B. Anuar,et al. The rise of "big data" on cloud computing: Review and open research issues , 2015, Inf. Syst..
[59] Sangmin An,et al. Nanophotonic Atomic Force Microscope Transducers Enable Chemical Composition and Thermal Conductivity Measurements at the Nanoscale. , 2017, Nano letters.
[60] Bin Yang,et al. Elucidation of perovskite film micro-orientations using two-photon total internal reflectance fluorescence microscopy , 2015 .
[61] Andrew H. Hill,et al. Super-Resolution Structured Pump–Probe Microscopy , 2016 .
[62] Francisco E. Robles,et al. Invited Review Article: Pump-probe microscopy. , 2016, The Review of scientific instruments.
[63] Curtis Marcott,et al. Studying Variations in Bone Composition at Nano-Scale Resolution: A Preliminary Report , 2014, Calcified Tissue International.
[64] E. Meyer,et al. Combined SIMS‐SPM instrument for high sensitivity and high‐resolution elemental 3D analysis , 2013 .
[65] R. Livengood,et al. The prospects of a subnanometer focused neon ion beam. , 2012, Scanning.
[66] Peter Bajcsy,et al. Web Microanalysis of Big Image Data , 2018 .
[67] Powders Analysis by Second Harmonic Generation Microscopy. , 2016, Analytical chemistry.
[68] Daniel J. Ryan,et al. Protein identification in imaging mass spectrometry through spatially targeted liquid micro-extractions. , 2018, Rapid communications in mass spectrometry : RCM.
[69] R. Nitschke,et al. Quantum dots versus organic dyes as fluorescent labels , 2008, Nature Methods.
[70] Arnald Alonso,et al. Analytical Methods in Untargeted Metabolomics: State of the Art in 2015 , 2015, Front. Bioeng. Biotechnol..
[71] R. Zenobi,et al. Nanoscale Chemical Imaging of Interfacial Monolayers by Tip-Enhanced Raman Spectroscopy. , 2017, Angewandte Chemie.
[72] Stephen R. Leone,et al. Femtosecond x-ray spectroscopy of an electrocyclic ring-opening reaction , 2017, Science.
[73] Sergei V. Kalinin,et al. CuInP₂S₆ Room Temperature Layered Ferroelectric. , 2015, Nano letters.
[74] Edward S. Allgeyer,et al. Combining total internal reflection sum frequency spectroscopy spectral imaging and confocal fluorescence microscopy. , 2015, Langmuir.
[75] N. Piergies,et al. Differentiation of protein secondary structure in clear and opaque human lenses: AFM ‐ IR studies , 2017, Journal of pharmaceutical and biomedical analysis.
[76] The neon gas field ion source—a first characterization of neon nanomachining properties , 2011 .
[77] Yongbo Yuan,et al. Photovoltaic Switching Mechanism in Lateral Structure Hybrid Perovskite Solar Cells , 2015 .
[78] Michał Nowakowski,et al. Revealing Chemical Heterogeneity of CNT Fiber Nanocomposites via Nanoscale Chemical Imaging , 2018 .
[79] Rafael Yuste,et al. Imaging membrane potential in dendritic spines. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[80] A. Welle,et al. Site-selective growth of surface-anchored metal-organic frameworks on self-assembled monolayer patterns prepared by AFM nanografting , 2013, Beilstein journal of nanotechnology.
[81] Andreas Zumbusch,et al. Coherent anti-Stokes Raman scattering microscopy , 1999 .
[82] T. Shaykhutdinov,et al. Polarization-Dependent Atomic Force Microscopy–Infrared Spectroscopy (AFM-IR): Infrared Nanopolarimetric Analysis of Structure and Anisotropy of Thin Films and Surfaces , 2018, Applied spectroscopy.
[83] Euan A. Ashley,et al. Deep Learning Automates the Quantitative Analysis of Individual Cells in Live-Cell Imaging Experiments , 2016, PLoS Comput. Biol..
[84] Chaomei Chen,et al. Big, Deep, and Smart Data in Scanning Probe Microscopy. , 2016, ACS nano.
[85] T. Mančal,et al. Evidence for wavelike energy transfer through quantum coherence in photosynthetic systems , 2007, Nature.
[86] D. Castner,et al. ToF-SIMS depth profiling of cells: z-correction, 3D imaging, and sputter rate of individual NIH/3T3 fibroblasts. , 2012, Analytical chemistry.
[87] Sage J. B. Dunham,et al. Biomolecular Imaging with a C60-SIMS/MALDI Dual Ion Source Hybrid Mass Spectrometer: Instrumentation, Matrix Enhancement, and Single Cell Analysis , 2014, Journal of The American Society for Mass Spectrometry.
[88] H. Hutter,et al. ToF-SIMS measurements with topographic information in combined images , 2013, Analytical and Bioanalytical Chemistry.
[89] F. Giessibl,et al. Atomic Resolution of the Silicon (111)-(7x7) Surface by Atomic Force Microscopy , 1995, Science.
[90] N. Browning,et al. Atomic-resolution chemical analysis using a scanning transmission electron microscope , 2006, Nature.
[91] Ian W. Fletcher,et al. Multivariate analysis of extremely large ToFSIMS imaging datasets by a rapid PCA method , 2015 .
[92] P. Chaurand,et al. Profiling and imaging proteins in tissue sections by MS. , 2004, Analytical chemistry.
[93] Bin Yang,et al. Spatial Localization of Excitons and Charge Carriers in Hybrid Perovskite Thin Films. , 2015, The journal of physical chemistry letters.
[94] Kamila Kochan,et al. Single cell assessment of yeast metabolic engineering for enhanced lipid production using Raman and AFM-IR imaging , 2018, Biotechnology for Biofuels.
[95] D. W. Noid,et al. On the Design, Analysis, and Characterization of Materials Using Computational Neural Networks , 1996 .
[96] Michael Becker,et al. Use of advantageous, volatile matrices enabled by next-generation high-speed matrix-assisted laser desorption/ionization time-of-flight imaging employing a scanning laser beam. , 2015, Rapid communications in mass spectrometry : RCM.
[97] X. Xie,et al. Video-Rate Molecular Imaging in Vivo with Stimulated Raman Scattering , 2010, Science.
[98] P. Hamm,et al. Surface-Sensitive and Surface-Specific Ultrafast Two-Dimensional Vibrational Spectroscopy. , 2017, Chemical reviews.
[99] Jun Feng Xiao,et al. Metabolite identification and quantitation in LC-MS/MS-based metabolomics. , 2012, Trends in analytical chemistry : TRAC.
[100] Stefanie Sandlöbes,et al. In‐Situ Measurement of CO‐ and CO2‐Concentrations in BOF Off‐Gas , 2011 .
[101] Libai Huang,et al. Long-range hot-carrier transport in hybrid perovskites visualized by ultrafast microscopy , 2017, Science.
[102] H. Petek,et al. Ultrafast Plasmon-Enhanced Hot Electron Generation at Ag Nanocluster/Graphite Heterojunctions. , 2017, Journal of the American Chemical Society.
[103] M. Raschke,et al. Correlative infrared nanospectroscopic and nanomechanical imaging of block copolymer microdomains , 2016, Beilstein journal of nanotechnology.
[104] Viju Raghupathi,et al. Big data analytics in healthcare: promise and potential , 2014, Health Information Science and Systems.
[105] Sheng-Lin Lee,et al. Probing Multiscale Collagenous Tissue by Nonlinear Microscopy. , 2017, ACS biomaterials science & engineering.
[106] Jürgen Popp,et al. Biochemical imaging below the diffraction limit – probing cellular membrane related structures by tip‐enhanced Raman spectroscopy (TERS) , 2010, Journal of biophotonics.
[107] T. Wirtz,et al. Study and optimisation of SIMS performed with He+ and Ne+ bombardment , 2013 .
[108] Stephen Jesse,et al. Mapping internal structure of coal by confocal micro-Raman spectroscopy and scanning microwave microscopy , 2014 .
[109] R. Heller,et al. Nanometer scale elemental analysis in the helium ion microscope using time of flight spectrometry. , 2015, Ultramicroscopy.
[110] J. Maguire,et al. High contrast scanning nano‐Raman spectroscopy of silicon , 2007 .
[111] O. Stegle,et al. Deep learning for computational biology , 2016, Molecular systems biology.
[112] K. Eisenthal,et al. Liquid Interfaces Probed by Second-Harmonic and Sum-Frequency Spectroscopy. , 1996, Chemical reviews.
[113] Marleen de Bruijne. Machine learning approaches in medical image analysis: From detection to diagnosis. , 2016, Medical image analysis.
[114] Hong-Fei Wang,et al. Sum frequency generation vibrational spectroscopy (SFG-VS) for complex molecular surfaces and interfaces: Spectral lineshape measurement and analysis plus some controversial issues , 2016 .
[115] N. Winograd,et al. Temperature effects of sputtering of Langmuir–Blodgett multilayers , 2013, Surface and interface analysis : SIA.
[116] W. Denk,et al. Deep tissue two-photon microscopy , 2005, Nature Methods.
[117] O. Ovchinnikova,et al. Thin-layer chromatography and mass spectrometry coupled using proximal probe thermal desorption with electrospray or atmospheric pressure chemical ionization. , 2010, Rapid communications in mass spectrometry : RCM.
[118] C. Gerber,et al. A versatile instrument for in situ combination of scanning probe microscopy and time-of-flight mass spectrometry , 2005 .
[119] F. Halgand,et al. Changes in Phospholipid Composition within the Dystrophic Muscle by Matrix-Assisted Laser Desorption/Ionization Mass Spectrometry and Mass Spectrometry Imaging , 2004, European journal of mass spectrometry.
[120] D. Joy. Helium Ion Microscopy: Principles and Applications , 2013 .
[121] D. Ginger,et al. Functional Scanning Probe Imaging of Nanostructured Solar Energy Materials. , 2016, Accounts of chemical research.
[122] G. Hurst,et al. Atomic force microscope controlled topographical imaging and proximal probe thermal desorption/ionization mass spectrometry imaging. , 2014, Analytical chemistry.
[123] V. A. Apkarian,et al. Seeing a single molecule vibrate through time-resolved coherent anti-Stokes Raman scattering , 2014, Nature Photonics.
[124] A. Taguchi. Plasmonic tip for nano Raman microcopy: structures, materials, and enhancement , 2017 .
[125] Bin Yang,et al. Simplification of femtosecond transient absorption microscopy data from CH3NH3PbI3 perovskite thin films into decay associated amplitude maps , 2016, Nanotechnology.
[126] Stephen Jesse,et al. Deep data analysis of conductive phenomena on complex oxide interfaces: physics from data mining. , 2014, ACS nano.
[127] O. Ovchinnikova,et al. Combined atomic force microscope-based topographical imaging and nanometer-scale resolved proximal probe thermal desorption/electrospray ionization-mass spectrometry. , 2011, ACS nano.
[128] Michael J Rust,et al. Sub-diffraction-limit imaging by stochastic optical reconstruction microscopy (STORM) , 2006, Nature Methods.
[129] Livia S. Eberlin,et al. Mass spectrometry imaging under ambient conditions. , 2013, Mass spectrometry reviews.
[130] Brian P. Mehl,et al. Direct imaging of free carrier and trap carrier motion in silicon nanowires by spatially-separated femtosecond pump-probe microscopy. , 2013, Nano letters.
[131] S. Lyon,et al. Controlling the nanostructure of epoxy resins: Reaction selectivity and stoichiometry , 2018 .
[132] Jérémie Mathurin,et al. Highly active poly(3-hexylthiophene) nanostructures for photocatalysis under solar light , 2017 .
[133] C. Gerber,et al. Switchable cantilever for a time-of-flight scanning force microscope , 2004 .
[134] A. Ewing,et al. Multimodal Imaging of Chemically Fixed Cells in Preparation for NanoSIMS. , 2016, Analytical chemistry.
[135] B R Masters,et al. Two-photon excitation fluorescence microscopy. , 2000, Annual review of biomedical engineering.
[136] Eirik Endeve,et al. BEAM: A Computational Workflow System for Managing and Modeling Material Characterization Data in HPC Environments , 2016, ICCS.
[137] M. Karas,et al. Matrix-assisted ultraviolet laser desorption of non-volatile compounds , 1987 .
[138] A. Ewing,et al. Phosphatidylethanolamine-induced cholesterol domains chemically identified with mass spectrometric imaging. , 2004, Journal of the American Chemical Society.
[139] H. Zetterberg,et al. Novel Trimodal MALDI Imaging Mass Spectrometry (IMS3) at 10 μm Reveals Spatial Lipid and Peptide Correlates Implicated in Aβ Plaque Pathology in Alzheimer's Disease. , 2017, ACS chemical neuroscience.
[140] W. Gan,et al. Quantitative sum-frequency generation vibrational spectroscopy of molecular surfaces and interfaces: lineshape, polarization, and orientation. , 2015, Annual review of physical chemistry.
[141] R. Hill,et al. Advances in helium ion microscopy , 2011 .
[142] Sergei V. Kalinin,et al. Polarization Control via He-Ion Beam Induced Nanofabrication in Layered Ferroelectric Semiconductors. , 2016, ACS applied materials & interfaces.
[143] S. Baldelli,et al. Chemical Microscopy of Surfaces by Sum Frequency Generation Imaging , 2009 .
[144] H. K. Wickramasinghe,et al. Linear and Nonlinear Optical Spectroscopy at the Nanoscale with Photoinduced Force Microscopy. , 2015, Accounts of chemical research.
[145] A. Duarte,et al. Nanoscale materials and their use in water contaminants removal—a review , 2013, Environmental Science and Pollution Research.
[146] Graham R Fleming,et al. Femtosecond photon echo spectroscopy of semiconducting single-walled carbon nanotubes. , 2008, Nano letters.
[147] F. Keilmann,et al. Nano-FTIR absorption spectroscopy of molecular fingerprints at 20 nm spatial resolution. , 2012, Nano letters.
[148] Jungmin Lee,et al. Methodological development of topographic correction in 2D/3D ToF-SIMS images using AFM images , 2018 .
[149] G. V. Van Berkel,et al. Polymeric spatial resolution test patterns for mass spectrometry imaging using nano-thermal analysis with atomic force microscopy. , 2017, Rapid communications in mass spectrometry : RCM.
[150] Z. Su,et al. In-situ spectroscopic and thermal analyses of phase domains in high-impact polypropylene , 2018 .
[151] Nicholas E. Manicke,et al. Latent Fingerprint Chemical Imaging by Mass Spectrometry , 2008, Science.
[152] A. Rao,et al. Sub-10 fs Time-Resolved Vibronic Optical Microscopy , 2016, The journal of physical chemistry letters.
[153] Bharat Bhushan,et al. Durable, superoleophobic polymer–nanoparticle composite surfaces with re-entrant geometry via solvent-induced phase transformation , 2016, Scientific Reports.
[154] L. Fitting Kourkoutis,et al. Atomic-Scale Chemical Imaging of Composition and Bonding by Aberration-Corrected Microscopy , 2008, Science.
[155] Prabhat Verma,et al. Tip-Enhanced Raman Spectroscopy: Technique and Recent Advances. , 2017, Chemical reviews.
[156] Richard M. Caprioli,et al. Fusion of mass spectrometry and microscopy: a multi-modality paradigm for molecular tissue mapping , 2015, Nature Methods.
[157] Sergei V. Kalinin,et al. Big data and deep data in scanning and electron microscopies: deriving functionality from multidimensional data sets , 2015, Advanced Structural and Chemical Imaging.
[158] T. Wirtz,et al. In-situ Isotopic Analysis at Nanoscale using Parallel Ion Electron Spectrometry: A Powerful New Paradigm for Correlative Microscopy , 2016, Scientific Reports.
[159] Sergey Plotnikov,et al. Second harmonic generation microscopy for quantitative analysis of collagen fibrillar structure , 2012, Nature Protocols.
[160] M. Zanni,et al. Watching Proteins Wiggle: Mapping Structures with Two-Dimensional Infrared Spectroscopy. , 2017, Chemical reviews.
[161] D. Benoit,et al. TOF-SIMS 3D imaging of native and non-native species within HeLa cells. , 2013, Analytical chemistry.
[162] J. Loos,et al. High-Resolution Chemical Identification of Polymer Blend Thin Films Using Tip-Enhanced Raman Mapping , 2011 .
[163] Liam A McDonnell,et al. Imaging mass spectrometry. , 2007, Mass spectrometry reviews.
[164] Paul Campagnola,et al. Second harmonic generation imaging microscopy: applications to diseases diagnostics. , 2011, Analytical chemistry.
[165] G. Fleming,et al. Quantum coherence enabled determination of the energy landscape in light-harvesting complex II. , 2009, The journal of physical chemistry. B.
[166] Bobby G. Sumpter,et al. Theory and Applications of Neural Computing in Chemical Science , 1994 .
[167] Daniel J. Graham,et al. Multivariate Analysis of ToF-SIMS Data from Multicomponent Systems: The Why, When, and How , 2012, Biointerphases.
[168] Francisco E. Robles,et al. Dual-wavelength pump-probe microscopy analysis of melanin composition , 2016, Scientific Reports.
[169] Peerasak Sanguansri,et al. Nanoscale materials development - a food industry perspective , 2006 .
[170] X. Xie,et al. Coherent Anti-Stokes Raman Scattering Microscopy: Instrumentation, Theory, and Applications , 2004 .
[171] Olivier J. F. Martin,et al. Scanning near-field optical microscopy with aperture probes: Fundamentals and applications , 2000 .
[172] J. Conboy,et al. Imaging chirality with surface second harmonic generation microscopy. , 2005, Journal of the American Chemical Society.
[173] Jody C. May,et al. Advanced Multidimensional Separations in Mass Spectrometry: Navigating the Big Data Deluge. , 2016, Annual review of analytical chemistry.
[174] Thomas Jay Webster,et al. Nanomedicine for implants: a review of studies and necessary experimental tools. , 2007, Biomaterials.
[175] A. Belianinov,et al. Chemical Changes in Layered Ferroelectric Semiconductors Induced by Helium Ion Beam , 2017, Scientific Reports.
[176] Bin Yang,et al. Imaging Electronic Trap States in Perovskite Thin Films with Combined Fluorescence and Femtosecond Transient Absorption Microscopy. , 2016, The journal of physical chemistry letters.
[177] Sergei V. Kalinin,et al. Chemical State Evolution in Ferroelectric Films during Tip-Induced Polarization and Electroresistive Switching. , 2016, ACS applied materials & interfaces.
[178] Rama Vasudevan,et al. Deep Learning of Atomically Resolved Scanning Transmission Electron Microscopy Images: Chemical Identification and Tracking Local Transformations. , 2017, ACS nano.
[179] J. Bergquist,et al. Neonatal Exposure to the Cyanobacterial Toxin BMAA Induces Changes in Protein Expression and Neurodegeneration in Adult Hippocampus , 2012, Toxicological sciences : an official journal of the Society of Toxicology.
[180] Mark Bates,et al. Super-resolution fluorescence microscopy. , 2009, Annual review of biochemistry.
[181] Gregor Hlawacek,et al. Helium Ion Microscopy , 2016, Imaging Modalities for Biological and Preclinical Research: A Compendium, Volume 1: Part I: Ex vivo biological imaging.
[182] P. Chaurand,et al. Assessing protein patterns in disease using imaging mass spectrometry. , 2004, Journal of proteome research.
[183] P. Lasch,et al. Spatial resolution in infrared microspectroscopic imaging of tissues. , 2006, Biochimica et biophysica acta.
[184] Sergei V. Kalinin,et al. Band excitation in scanning probe microscopy: recognition and functional imaging. , 2014, Annual review of physical chemistry.
[185] Tom Wirtz,et al. Towards secondary ion mass spectrometry on the helium ion microscope: An experimental and simulation based feasibility study with He+ and Ne+ bombardment , 2012 .
[186] R. Tsien,et al. The Fluorescent Toolbox for Assessing Protein Location and Function , 2006, Science.
[187] P. Suder,et al. Imaging mass spectrometry: Instrumentation, applications, and combination with other visualization techniques. , 2016, Mass spectrometry reviews.
[188] V. Bocharova,et al. Topographical and Chemical Imaging of a Phase Separated Polymer Using a Combined Atomic Force Microscopy/Infrared Spectroscopy/Mass Spectrometry Platform. , 2016, Analytical chemistry.
[189] A. Zewail. Four-Dimensional Electron Microscopy , 2010, Science.
[190] Ruxandra Gref,et al. High‐Resolution Label‐Free Detection of Biocompatible Polymeric Nanoparticles in Cells , 2018 .
[191] Renato Zenobi,et al. Nanoscale chemical imaging using tip-enhanced Raman spectroscopy: a critical review. , 2013, Angewandte Chemie.
[192] F. Halgand,et al. Tissue molecular ion imaging by gold cluster ion bombardment. , 2004, Analytical chemistry.
[193] W. Becker. Fluorescence lifetime imaging – techniques and applications , 2012, Journal of microscopy.
[194] A. Ewing,et al. Intact lipid imaging of mouse brain samples: MALDI, nanoparticle-laser desorption ionization, and 40 keV argon cluster secondary ion mass spectrometry , 2016, Analytical and Bioanalytical Chemistry.
[195] N. Winograd,et al. Imaging with mass spectrometry. , 1999, Chemical reviews.
[196] Jae Hyung Park,et al. Ultrafast Nanoimaging of the Photoinduced Phase Transition Dynamics in VO2. , 2016, Nano letters.
[197] Y. Qi,et al. Scanning Probe Microscopy Applied to Organic–Inorganic Halide Perovskite Materials and Solar Cells , 2018 .
[198] A. Dazzi,et al. Resonance enhanced AFM-IR: a new powerful way to characterize blooming on polymers used in medical devices. , 2015, International journal of pharmaceutics.
[199] Chen Gong,et al. Imaging Energy Harvesting and Storage Systems at the Nanoscale , 2017 .
[200] Warren S Warren,et al. Pump-Probe Imaging Differentiates Melanoma from Melanocytic Nevi , 2011, Science Translational Medicine.
[201] Sage J. B. Dunham,et al. Correlated Imaging with C60-SIMS and Confocal Raman Microscopy: Visualization of Cell-Scale Molecular Distributions in Bacterial Biofilms , 2014, Analytical chemistry.
[202] W. Denk,et al. Two-photon laser scanning fluorescence microscopy. , 1990, Science.
[203] Benjamin Doughty,et al. Separating Bulk and Surface Contributions to Electronic Excited-State Processes in Hybrid Mixed Perovskite Thin Films via Multimodal All-Optical Imaging. , 2017, The journal of physical chemistry letters.