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#!/usr/bin/env python3
"""
Long boxes at 1D lattice, ba.Offspec simulation
"""
import bornagain as ba
from bornagain import ba_plot as bp, deg, nm
def get_sample():
"""
Returns a sample with a grating on a substrate,
modelled by infinitely long boxes forming a 1D lattice.
"""
# Define materials
material_Particle = ba.RefractiveMaterial("Particle", 0.0006, 2e-08)
material_Substrate = ba.RefractiveMaterial("Substrate", 6e-06, 2e-08)
material_Vacuum = ba.RefractiveMaterial("Vacuum", 0, 0)
# Define form factors
ff = ba.Box(1000*nm, 20*nm, 10*nm)
# Define particles
particle = ba.Particle(material_Particle, ff)
particle_rotation = ba.RotationZ(90*deg)
particle.rotate(particle_rotation)
# Define interference functions
iff = ba.Interference1DLattice(100*nm, 0)
iff_pdf = ba.Profile1DCauchy(1e6*nm)
iff.setDecayFunction(iff_pdf)
# Define particle layouts
layout = ba.ParticleLayout()
layout.addParticle(particle)
layout.setInterference(iff)
layout.setTotalParticleSurfaceDensity(0.01)
# Define layers
layer_1 = ba.Layer(material_Vacuum)
layer_1.addLayout(layout)
layer_2 = ba.Layer(material_Substrate)
# Define sample
sample = ba.MultiLayer()
sample.addLayer(layer_1)
sample.addLayer(layer_2)
return sample
def get_simulation(sample):
"""
Returns an off-specular simulation with beam and detector defined.
"""
n = bp.simargs['n']
scan = ba.AlphaScan(n, 0.1*deg, 10*deg)
scan.setIntensity(1e9)
scan.setWavelength(0.1*nm)
detector = ba.OffspecDetector(n, -1*deg, +1*deg, n, 0.1*deg, 10*deg)
return ba.OffspecSimulation(scan, sample, detector)
if __name__ == '__main__':
bp.parse_args(sim_n=200, intensity_min=1)
sample = get_sample()
simulation = get_simulation(sample)
result = simulation.simulate()
bp.plot_simulation_result(result)
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