Analysis of 3D elemental mapping artefacts in biological specimens using Monte Carlo simulation

被引:15
|
作者
Scott, K. [1 ]
Ritchie, N. W. M. [1 ]
机构
[1] Natl Inst Stand & Technol, Gaithersburg, MD 20899 USA
关键词
Diatom; EDS; FIB; focused ion beam; Monte Carlo; SEM; X-ray microanalysis; 3D elemental mapping; FOCUSED ION-BEAM; 3-DIMENSIONAL ANALYSIS; ELECTRON TOMOGRAPHY; X-RAY; MICROSCOPY; CELLS; MICROANALYSIS;
D O I
10.1111/j.1365-2818.2009.03124.x
中图分类号
TH742 [显微镜];
学科分类号
摘要
In this paper, we present Monte Carlo simulation results demonstrating the feasibility of using the focused ion beam based X-ray microanalysis technique (FIB-EDS) for the 3D elemental analysis of biological samples. In this study, we used a marine diatom Thalassiosira pseudonana as our model organism and NISTMonte for the Monte Carlo simulations. We explored several beam energies commonly used for the X-ray microanalysis to examine their effects on the resulting 3D elemental volume of the model organism. We also performed a preliminary study on the sensitivity of X-ray analysis for detecting nanoparticles in the model. For the conditions considered in this work, we show that the X-ray mapping performed using the 5 keV beam energy results in 3D elemental distributions that closely reflect the elemental distributions in the original model. At 5 keV, the depth resolution of the X-ray maps is about 250 nm for the model organism. We also show that the nanoparticles that are 50 nm in diameter or greater are easily located. Although much work is still needed in generating more accurate biological models and simulating experimental conditions relevant to these samples, our results indicate that FIB-EDS is a promising technique for the 3D elemental analysis of some biological specimens.
引用
收藏
页码:331 / 339
页数:9
相关论文
共 50 条
  • [1] 3D elemental and structural analysis of biological specimens using electrons and ions
    Scott, K.
    JOURNAL OF MICROSCOPY, 2011, 242 (01) : 86 - 93
  • [2] Monte Carlo simulation of water structure using the 3D potential
    Dunyashev, VS
    Bushuev, YG
    Lyashchenko, AK
    ZHURNAL FIZICHESKOI KHIMII, 1996, 70 (03): : 422 - 428
  • [3] Analysis of 3D Channel Current Noise in Small Nanoscale MOSFETs Using Monte Carlo Simulation
    Zhang, Wenpeng
    Wei, Qun
    Jia, Xiaofei
    He, Liang
    NANOMATERIALS, 2024, 14 (16)
  • [4] 3D parallel Monte Carlo simulation of GaAs MESFETs
    Pennathur, S
    Sandalci, CK
    Koc, CK
    Goodnick, SM
    VLSI DESIGN, 1998, 6 (1-4) : 273 - 276
  • [5] Avalanche breakdown and quenching in Ge SPAD using 3D Monte Carlo simulation
    Dollfus, P.
    Saint-Martin, J.
    Cazimajou, T.
    Helleboid, R.
    Pilotto, A.
    Rideau, D.
    Bournel, A.
    Pala, M.
    SOLID-STATE ELECTRONICS, 2022, 194
  • [6] Monte Carlo simulation of 3D mapping of cardiac electrical activity with spinning slit confocal optics
    Hwang, Seon-min
    Choi, Bum-Rak
    Salama, Guy
    2006 28TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-15, 2006, : 3153 - +
  • [7] 3D MONTE CARLO SIMULATION OF PHASE SEPARATION IN A BINARY ALLOY
    Shirinyan, A. S.
    Belogorodsky, Yu. S.
    UKRAINIAN JOURNAL OF PHYSICS, 2006, 51 (06): : 605 - 617
  • [8] Monte Carlo Simulation for Light Propagation in 3D Tooth Model
    Fu, Yongji
    Jacques, Steven L.
    OPTICAL INTERACTIONS WITH TISSUE AND CELLS XXII, 2011, 7897
  • [9] The system for 3D Monte Carlo molecular simulation on the computational grid
    Lei, YM
    PROCEEDINGS OF THE 8TH INTERNATIONAL CONFERENCE ON COMPUTER SUPPORTED COOPERATIVE WORK IN DESIGN, VOL 1, 2004, : 738 - 742
  • [10] 3D Monte-Carlo simulation of Ganymede's atmosphere
    Vorburger, Audrey
    Fatemi, Shahab
    Mogan, Shane R. Carberry
    Galli, Andre
    Liuzzo, Lucas
    Poppe, Andrew R.
    Roth, Lorenz
    Wurz, Peter
    ICARUS, 2024, 409