Javascript must be enabled to continue!
Full-process simulation of XPCS speckle dynamics based on Monte Carlo method and analysis of key parameter dependencies
View through CrossRef
<sec>X-ray photon correlation spectroscopy (XPCS) is important for probing mesoscale material dynamics by using synchrotron radiation. However, the complex influences of parameters such as light source properties, beam propagation, and detector response on speckle dynamics are hard to directly observe. In this study, a Monte Carlo-based full optical path numerical model is developed to systematically analyze these effects, thereby aiding experimental optimization.</sec><sec>A simulation framework integrating Brownian dynamics, beam coherence, and detector response is constructed to replicate the entire photon emission-to-detection process. A Fraunhofer diffraction-based speckle generation algorithm reproduces speckle fluctuations via atomic position evolution and phase modulation. Feasibility is validated via Siegert relation fitting (<inline-formula><tex-math id="M2">\begin{document}$\beta, \gamma$\end{document}</tex-math></inline-formula>), <inline-formula><tex-math id="M3">\begin{document}$\varGamma{\text{-}}q^2$\end{document}</tex-math></inline-formula> linearity (<inline-formula><tex-math id="M4">\begin{document}$R^2=0.99904$\end{document}</tex-math></inline-formula>), and consistency with the Einstein-Stokes law.</sec><sec>Key parameter sensitivity analysis reveals some points below. 1) Optimal aperture matching (<inline-formula><tex-math id="M5">\begin{document}$r/\sigma=1$\end{document}</tex-math></inline-formula>) balances coherence and photon flux; 2) Mechanical vibrations with <inline-formula><tex-math id="M6">\begin{document}$\Delta x/s=1500$\end{document}</tex-math></inline-formula> induce periodic oscillations in <inline-formula><tex-math id="M7">\begin{document}$g_2(q,\tau)$\end{document}</tex-math></inline-formula>, masking intrinsic relaxation, which is validated by a 24.658-Hz pump experiment; 3) Poisson noise and intensity fluctuations degrade low-light signal-to-noise ratio, with Poisson noise causing discrete errors and classical noise inducing baseline shifts.</sec><sec>This framework clarifies how source properties, optical parameters, and noise affect experimental results, providing guidance for XPCS optimization and a foundation for extending its applications to high-precision coherent scattering scenarios.</sec>
Acta Physica Sinica, Chinese Physical Society and Institute of Physics, Chinese Academy of Sciences
Title: Full-process simulation of XPCS speckle dynamics based on Monte Carlo method and analysis of key parameter dependencies
Description:
<sec>X-ray photon correlation spectroscopy (XPCS) is important for probing mesoscale material dynamics by using synchrotron radiation.
However, the complex influences of parameters such as light source properties, beam propagation, and detector response on speckle dynamics are hard to directly observe.
In this study, a Monte Carlo-based full optical path numerical model is developed to systematically analyze these effects, thereby aiding experimental optimization.
</sec><sec>A simulation framework integrating Brownian dynamics, beam coherence, and detector response is constructed to replicate the entire photon emission-to-detection process.
A Fraunhofer diffraction-based speckle generation algorithm reproduces speckle fluctuations via atomic position evolution and phase modulation.
Feasibility is validated via Siegert relation fitting (<inline-formula><tex-math id="M2">\begin{document}$\beta, \gamma$\end{document}</tex-math></inline-formula>), <inline-formula><tex-math id="M3">\begin{document}$\varGamma{\text{-}}q^2$\end{document}</tex-math></inline-formula> linearity (<inline-formula><tex-math id="M4">\begin{document}$R^2=0.
99904$\end{document}</tex-math></inline-formula>), and consistency with the Einstein-Stokes law.
</sec><sec>Key parameter sensitivity analysis reveals some points below.
1) Optimal aperture matching (<inline-formula><tex-math id="M5">\begin{document}$r/\sigma=1$\end{document}</tex-math></inline-formula>) balances coherence and photon flux; 2) Mechanical vibrations with <inline-formula><tex-math id="M6">\begin{document}$\Delta x/s=1500$\end{document}</tex-math></inline-formula> induce periodic oscillations in <inline-formula><tex-math id="M7">\begin{document}$g_2(q,\tau)$\end{document}</tex-math></inline-formula>, masking intrinsic relaxation, which is validated by a 24.
658-Hz pump experiment; 3) Poisson noise and intensity fluctuations degrade low-light signal-to-noise ratio, with Poisson noise causing discrete errors and classical noise inducing baseline shifts.
</sec><sec>This framework clarifies how source properties, optical parameters, and noise affect experimental results, providing guidance for XPCS optimization and a foundation for extending its applications to high-precision coherent scattering scenarios.
</sec>.
Related Results
Monte Carlo methods: barrier option pricing with stable Greeks and multilevel Monte Carlo learning
Monte Carlo methods: barrier option pricing with stable Greeks and multilevel Monte Carlo learning
For discretely observed barrier options, there exists no closed solution under the Black-Scholes model. Thus, it is often helpful to use Monte Carlo simulations, which are easily a...
Research on Multi-Group Monte Carlo Calculations Based on Group Constants Generated by RMC
Research on Multi-Group Monte Carlo Calculations Based on Group Constants Generated by RMC
Abstract
Nowadays, deterministic two-step or Monte Carlo methods are commonly used in core physics calculations. However, with the development of reactor core design, tradi...
Mechanical Parameters Determination of a Polymeric Membrane by Digital Image Correlation
Mechanical Parameters Determination of a Polymeric Membrane by Digital Image Correlation
Digital image correlation (DIC) is a powerful method for full-field strain test of polymeric materials and speckle pattern on the material's surface is a critical factor for the me...
Automation of the Monte Carlo simulation of medical linear accelerators
Automation of the Monte Carlo simulation of medical linear accelerators
The main result of this thesis is a software system, called PRIMO, which simulates clinical linear accelerators and the subsequent dose distributions using the Monte Carlo method. ...
Development of advanced geometric models and acceleration techniques for Monte Carlo simulation in Medical Physics
Development of advanced geometric models and acceleration techniques for Monte Carlo simulation in Medical Physics
Els programes de simulació Monte Carlo de caràcter general s'utilitzen actualment en una gran varietat d'aplicacions.<br/>Tot i això, els models geomètrics implementats en la...
High-resolution solar image reconstruction based on non-rigid alignment
High-resolution solar image reconstruction based on non-rigid alignment
Abstract
Suppressing the interference of atmospheric turbulence and obtaining observational data with high spatial resolution is an important problem to be solved in ground...
Application of a Monte Carlo Technique in Gas Plant Design
Application of a Monte Carlo Technique in Gas Plant Design
Abstract
This paper describes two illustrative examples demonstrating the application of Monte Carlo techniques to gas process design. In addition, a detailed dis...
Probabilistic Field Development in Presence of Uncertainty
Probabilistic Field Development in Presence of Uncertainty
Abstract
Field developments are characterized by high levels of uncertainty and dynamic interconnected decisions with a complex value description. Typical decisio...

