Sample Injection for Pulsed X-ray Sources

被引:2
|
作者
DePonte, Daniel P. [1 ]
Nass, Karol [2 ]
Stellato, Francesco [1 ]
Liang, Mengning [1 ]
Chapman, Henry N. [1 ,2 ]
机构
[1] DESY, Ctr Free Electron Laser Sci, Notkestr 85, D-22607 Hamburg, Germany
[2] Univ Hamburg, D-22761 Hamburg, Germany
关键词
free electron laser; sample injection; STREAMS;
D O I
10.1117/12.886780
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The high intensity of free-electron lasers now allows for the possibility of obtaining measurable diffraction from biological samples with a single X-ray pulse. An important consequence of diffract-before-destroy imaging is that the sample is destroyed and therefore must be replaced preferably at the repetition rate of the FEL. This presents an interesting challenge; the sample must be rapidly replaced within the X-ray focus at the proper particle density and degree of hydration without damaging or denaturing the sample. If particle number density is too high, for example due to clustering or evaporation, the diffraction pattern resulting from coherent illumination of multiple particles may be discarded when sorting for 3D reconstruction. If number density is too low the hit rate, percentage of pulses with measurable scattered intensity, may also be too low to collect a complete data set. Evaporation will also leave behind less volatile material and this change of concentration may be damaging to the sample. On the other hand the similarity in electron density for water and biological material provides poor contrast for fully hydrated material. It is often also necessary to consider sample consumption. While high, near unity, hit rate can be obtained using liquid jets, a liquid flow rate greater then 1 microliter per minute must be maintained. Several sample injection possibilities, drop on demand, aerosols, liquid jets, aerodymamic lenses, have been explored and a review of these results is presented.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] EXTRAGALACTIC X-RAY SOURCES AND X-RAY BACKGROUND
    ROWANROBINSON, M
    FABIAN, AC
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 1975, 170 (01) : 199 - 217
  • [22] X-ray observations of ultraluminous X-ray sources
    Roberts, Timothy P.
    ASTROPHYSICS AND SPACE SCIENCE, 2007, 311 (1-3) : 203 - 212
  • [23] X-ray observations of ultraluminous X-ray sources
    Timothy P. Roberts
    Astrophysics and Space Science, 2007, 311 : 203 - 212
  • [24] CONTROLLED HIGH-VOLTAGE CONVERTER FOR PULSED X-RAY SOURCES
    LOZOVOI, LN
    SINDALOVSKII, EI
    INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 1989, 32 (02) : 470 - 473
  • [25] EXTRAGALACTIC X-RAY SOURCES AND X-RAY BACKGROUND
    FABIAN, AC
    NATURE-PHYSICAL SCIENCE, 1973, 242 (122): : 134 - 134
  • [26] X-ray crystallography with microfocus X-ray sources
    Arndt, UW
    Bloomer, AC
    ADVANCES IN LABORATORY-BASED X-RAY SOURCES AND OPTICS, 2000, 4144 : 86 - 94
  • [27] X-RAY MONITORING OF ULTRALUMINOUS X-RAY SOURCES
    Kaaret, Philip
    Feng, Hua
    ASTROPHYSICAL JOURNAL, 2009, 702 (02): : 1679 - 1682
  • [28] Dual-Energy Processing of X-ray Images of Beryl in Muscovite Obtained Using Pulsed X-ray Sources
    Komarskiy, Alexander
    Korzhenevskiy, Sergey
    Ponomarev, Andrey
    Chepusov, Alexander
    SENSORS, 2023, 23 (09)
  • [29] Ionized emission and absorption in a large sample of ultraluminous X-ray sources
    Kosec, P.
    Pinto, C.
    Reynolds, C. S.
    Guainazzi, M.
    Kara, E.
    Walton, D. J.
    Fabian, A. C.
    Parker, M. L.
    Valtchanov, I
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2021, 508 (03) : 3569 - 3588
  • [30] SOURCES OF ERROR IN X-RAY SPECTROMETRIC ANALYSIS USING SAMPLE DILUTION
    GLOTOVA, AN
    LOSEV, NF
    GUNICHEV.TI
    INDUSTRIAL LABORATORY, 1965, 30 (06): : 863 - &