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1.
Nat Commun ; 3: 1276, 2012.
Article in English | MEDLINE | ID: mdl-23232406

ABSTRACT

Diffractive imaging with free-electron lasers allows structure determination from ensembles of weakly scattering identical nanoparticles. The ultra-short, ultra-bright X-ray pulses provide snapshots of the randomly oriented particles frozen in time, and terminate before the onset of structural damage. As signal strength diminishes for small particles, the synthesis of a three-dimensional diffraction volume requires simultaneous involvement of all data. Here we report the first application of a three-dimensional spatial frequency correlation analysis to carry out this synthesis from noisy single-particle femtosecond X-ray diffraction patterns of nearly identical samples in random and unknown orientations, collected at the Linac Coherent Light Source. Our demonstration uses unsupported test particles created via aerosol self-assembly, and composed of two polystyrene spheres of equal diameter. The correlation analysis avoids the need for orientation determination entirely. This method may be applied to the structural determination of biological macromolecules in solution.

2.
Nature ; 486(7404): 513-7, 2012 Jun 27.
Article in English | MEDLINE | ID: mdl-22739316

ABSTRACT

The morphology of micrometre-size particulate matter is of critical importance in fields ranging from toxicology to climate science, yet these properties are surprisingly difficult to measure in the particles' native environment. Electron microscopy requires collection of particles on a substrate; visible light scattering provides insufficient resolution; and X-ray synchrotron studies have been limited to ensembles of particles. Here we demonstrate an in situ method for imaging individual sub-micrometre particles to nanometre resolution in their native environment, using intense, coherent X-ray pulses from the Linac Coherent Light Source free-electron laser. We introduced individual aerosol particles into the pulsed X-ray beam, which is sufficiently intense that diffraction from individual particles can be measured for morphological analysis. At the same time, ion fragments ejected from the beam were analysed using mass spectrometry, to determine the composition of single aerosol particles. Our results show the extent of internal dilation symmetry of individual soot particles subject to non-equilibrium aggregation, and the surprisingly large variability in their fractal dimensions. More broadly, our methods can be extended to resolve both static and dynamic morphology of general ensembles of disordered particles. Such general morphology has implications in topics such as solvent accessibilities in proteins, vibrational energy transfer by the hydrodynamic interaction of amino acids, and large-scale production of nanoscale structures by flame synthesis.


Subject(s)
Aerosols/analysis , Aerosols/chemistry , Fractals , Mass Spectrometry , Motion , Soot/analysis , Soot/chemistry , Amino Acids/chemistry , Electrons , Lasers , Nanoparticles , Particle Size , Proteins/chemistry , Solvents/chemistry , Vibration , X-Ray Diffraction
3.
Opt Express ; 20(12): 13501-12, 2012 Jun 04.
Article in English | MEDLINE | ID: mdl-22714377

ABSTRACT

The emergence of femtosecond diffractive imaging with X-ray lasers has enabled pioneering structural studies of isolated particles, such as viruses, at nanometer length scales. However, the issue of missing low frequency data significantly limits the potential of X-ray lasers to reveal sub-nanometer details of micrometer-sized samples. We have developed a new technique of dark-field coherent diffractive imaging to simultaneously overcome the missing data issue and enable us to harness the unique contrast mechanisms available in dark-field microscopy. Images of airborne particulate matter (soot) up to two microns in length were obtained using single-shot diffraction patterns obtained at the Linac Coherent Light Source, four times the size of objects previously imaged in similar experiments. This technique opens the door to femtosecond diffractive imaging of a wide range of micrometer-sized materials that exhibit irreproducible complexity down to the nanoscale, including airborne particulate matter, small cells, bacteria and gold-labeled biological samples.


Subject(s)
Electrons , Imaging, Three-Dimensional/methods , Lasers , Computer Simulation , Microscopy, Electron, Transmission , Soot/analysis , Time Factors , X-Rays
4.
Phys Rev Lett ; 104(22): 225501, 2010 Jun 04.
Article in English | MEDLINE | ID: mdl-20867179

ABSTRACT

We reconstructed the 3D Fourier intensity distribution of monodisperse prolate nanoparticles using single-shot 2D coherent diffraction patterns collected at DESY's FLASH facility when a bright, coherent, ultrafast x-ray pulse intercepted individual particles of random, unmeasured orientations. This first experimental demonstration of cryptotomography extended the expansion-maximization-compression framework to accommodate unmeasured fluctuations in photon fluence and loss of data due to saturation or background scatter. This work is an important step towards realizing single-shot diffraction imaging of single biomolecules.


Subject(s)
Fourier Analysis , Imaging, Three-Dimensional/methods , Scattering, Radiation , Tomography/methods , Feasibility Studies , Ferric Compounds/chemistry , Nanoparticles/chemistry
5.
Lasers Med Sci ; 24(5): 787-92, 2009 Sep.
Article in English | MEDLINE | ID: mdl-19224333

ABSTRACT

We describe a novel scanning laser ophthalmoscope (SLO)-based on a video-rate second harmonic generation imaging microscope. A titanium:sapphire femtosecond laser was coupled to a modified SLO. The laser beam was scanned over the sample, and the light produced by second harmonic generation (SHG) was collected for imaging at video-speed. The device was used for imaging the lamina cribrosa (LC) of enucleated pig eyes. A resolution comparable to that of commercial multiphoton microscopes was reached. The SHG images were used for determining the average pore size of the LC determined from the images; the pressure dependence of the pore size was studied by the artificial increasing of the hydrostatic pressure in the eye. A pressure increase of 44.3 mmHg enlarged the average pore size of 62 analyzed pores by a statistically significant amount. The relative pore growth was measured at four different pressure levels in 25 pores. The pressure was increased in 15 mmHg steps. A general tendency for monothonic growth was observed, although single pores grew by no means linearly.


Subject(s)
Ophthalmoscopy/methods , Optic Disk/anatomy & histology , Sus scrofa/anatomy & histology , Animals , Image Processing, Computer-Assisted , Intraocular Pressure , Microscopy, Confocal/instrumentation , Microscopy, Confocal/methods , Models, Animal , Ophthalmoscopes , Optic Disk/physiology
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