2021-07-14 20:23:00 +02:00
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%% This script is testing the functionalities of the MOT Capture Process Simulation Classes
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%
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% Important: Run only sectionwise!!
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%% - Testing the MOTCaptureProcess-Class
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% - Create MOTCaptureProcess object with specified options
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% - Automatically creates Beams objects
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OptionsStruct = struct;
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2021-07-16 16:14:11 +02:00
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OptionsStruct.ErrorEstimationMethod = 'bootstrap'; % 'jackknife' | 'bootstrap'
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2021-07-19 12:51:05 +02:00
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OptionsStruct.NumberOfAtoms = 5000;
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2021-07-14 20:23:00 +02:00
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OptionsStruct.TimeStep = 50e-06; % in s
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OptionsStruct.SimulationTime = 4e-03; % in s
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OptionsStruct.SpontaneousEmission = true;
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2021-07-19 12:51:05 +02:00
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OptionsStruct.SidebandBeam = true;
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2021-07-14 20:23:00 +02:00
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OptionsStruct.PushBeam = true;
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OptionsStruct.Gravity = true;
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OptionsStruct.BackgroundCollision = true;
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2021-07-18 07:07:48 +02:00
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OptionsStruct.SaveData = true;
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% OptionsStruct.SaveDirectory = '';
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2021-07-14 20:23:00 +02:00
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options = Helper.convertstruct2cell(OptionsStruct);
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clear OptionsStruct
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Oven = Simulator.Oven(options{:});
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MOT2D = Simulator.TwoDimensionalMOT(options{:});
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Beams = MOT2D.Beams;
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%% - Run Simulation
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2021-07-16 16:14:11 +02:00
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MOT2D.NumberOfAtoms = 5000;
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MOT2D.SidebandBeam = false;
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CoolingBeam = Beams{cellfun(@(x) strcmpi(x.Alias, 'Blue'), Beams)};
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CoolingBeam.Power = 0.4;
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CoolingBeam.Waist = 13.3e-03;
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CoolingBeam.Detuning = -1.67*Helper.PhysicsConstants.BlueLinewidth;
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PushBeam = Beams{cellfun(@(x) strcmpi(x.Alias, 'Push'), Beams)};
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2021-07-15 16:52:58 +02:00
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PushBeam.Power = 0.025;
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PushBeam.Waist = 0.81e-03;
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PushBeam.Detuning = 0;
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2021-07-16 16:14:11 +02:00
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[LoadingRate, ~] = MOT2D.runSimulation(Oven);
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2021-07-14 20:23:00 +02:00
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%% - Plot initial distribution
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% - sampling the position distribution
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InitialPositions = Oven.initialPositionSampling();
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% - sampling the velocity distribution
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InitialVelocities = Oven.initialVelocitySampling(MOT2D);
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NumberOfBins = 100;
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Plotter.plotPositionAndVelocitySampling(NumberOfBins, InitialPositions, InitialVelocities);
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%% - Plot distributions of magnitude and direction of initial velocities
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NumberOfBins = 50;
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Plotter.plotInitialVeloctiySamplingVsAngle(Oven, MOT2D, NumberOfBins)
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%% - Plot Magnetic Field
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XAxisRange = [-5 5];
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YAxisRange = [-5 5];
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ZAxisRange = [-5 5];
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Plotter.visualizeMagneticField(MOT2D, XAxisRange, YAxisRange, ZAxisRange)
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%% - Plot MFP & VP for different temperatures
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TemperatureinCelsius = linspace(750,1100,2000); % Temperature in Celsius
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Plotter.plotMeanFreePathAndVapourPressureVsTemp(TemperatureinCelsius)
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%% - Plot the Free Molecular Flux for different temperatures
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Temperature = [950, 1000, 1050]; % Temperature
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Plotter.plotFreeMolecularFluxVsTemp(Oven,Temperature)
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%% - Plot Angular Distribution for different Beta
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Beta = [0.5, 0.1 , 0.05, 0.02, 0.01]; %Beta = 2 * radius / length of the tube
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Plotter.plotAngularDistributionForDifferentBeta(Oven, Beta)
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%% - Plot Capture Velocity
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Plotter.plotCaptureVelocityVsAngle(Oven, MOT2D); % Takes a long time to plot!
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%% - Plot Phase Space with Acceleration Field
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2021-07-18 07:07:48 +02:00
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MOT2D.SidebandBeam = true;
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CoolingBeam = Beams{cellfun(@(x) strcmpi(x.Alias, 'Blue'), Beams)};
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CoolingBeam.Power = 0.2;
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CoolingBeam.Detuning = -1.67*Helper.PhysicsConstants.BlueLinewidth;
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SidebandBeam = Beams{cellfun(@(x) strcmpi(x.Alias, 'BlueSideband'), Beams)};
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SidebandBeam.Power = 0.2;
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SidebandBeam.Detuning = -3.35*Helper.PhysicsConstants.BlueLinewidth;
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2021-07-14 20:23:00 +02:00
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MOT2D.NumberOfAtoms = 50;
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MinimumVelocity = 0;
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MaximumVelocity = 150;
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NumberOfBins = 200; %Along each axis
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IncidentAtomDirection = 0*2*pi/360;
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IncidentAtomPosition = 0;
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Plotter.plotPhaseSpaceWithAccelerationField(Oven, MOT2D, MinimumVelocity, MaximumVelocity, NumberOfBins, IncidentAtomDirection, IncidentAtomPosition)
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%% - Plot Trajectories along the 3 directions
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MOT2D.NumberOfAtoms = 100;
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2021-07-19 12:51:05 +02:00
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MOT2D.MagneticGradient = 0.42;
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2021-07-14 20:23:00 +02:00
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MaximumVelocity = 150;
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IncidentAtomDirection = 0*2*pi/360;
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IncidentAtomPosition = 0;
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%% - Positions
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Plotter.plotDynamicalQuantities(Oven, MOT2D, MaximumVelocity, IncidentAtomDirection, IncidentAtomPosition, 'PlotPositions', true);
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%% - Velocities
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Plotter.plotDynamicalQuantities(Oven, MOT2D, MaximumVelocity, IncidentAtomDirection, IncidentAtomPosition, 'PlotVelocities', true);
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%% - Scan parameters: One-Parameter Scan
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2021-07-18 07:07:48 +02:00
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MOT2D.NumberOfAtoms = 5000;
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MOT2D.TotalPower = 0.4;
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2021-07-14 20:23:00 +02:00
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NumberOfPointsForFirstParam = 5; %iterations of the simulation
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2021-07-18 07:07:48 +02:00
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ParameterArray = linspace(0.1, 1.0, NumberOfPointsForFirstParam) * MOT2D.TotalPower;
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2021-07-14 20:23:00 +02:00
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tStart = tic;
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2021-07-18 07:07:48 +02:00
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[LoadingRateArray, StandardErrorArray, ConfidenceIntervalArray] = Simulator.Scan.doOneParameter(Oven, MOT2D, 'Blue', 'Power', ParameterArray);
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2021-07-14 20:23:00 +02:00
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tEnd = toc(tStart);
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fprintf('Total Computational Time: %0.1f seconds. \n', tEnd);
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% - Plot results
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OptionsStruct = struct;
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OptionsStruct.RescalingFactorForParameter = 1000;
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OptionsStruct.XLabelString = 'Cooling Beam Power (mW)';
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2021-07-16 16:14:11 +02:00
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OptionsStruct.RescalingFactorForYQuantity = 1e-10;
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2021-07-14 20:23:00 +02:00
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OptionsStruct.ErrorsForYQuantity = true;
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OptionsStruct.ErrorsArray = StandardErrorArray;
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OptionsStruct.CIForYQuantity = true;
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OptionsStruct.CIArray = ConfidenceIntervalArray;
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OptionsStruct.RemoveOutliers = true;
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2021-07-16 16:14:11 +02:00
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OptionsStruct.YLabelString = 'Loading rate (x 10^{10} atoms/s)';
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2021-07-14 20:23:00 +02:00
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OptionsStruct.TitleString = sprintf('Magnetic Gradient = %.0f (G/cm)', MOT2D.MagneticGradient * 100);
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options = Helper.convertstruct2cell(OptionsStruct);
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2021-07-18 07:07:48 +02:00
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Plotter.plotResultForOneParameterScan(ParameterArray, LoadingRateArray, options{:})
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2021-07-14 20:23:00 +02:00
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clear OptionsStruct
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%% - Scan parameters: Two-Parameter Scan
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2021-07-18 07:07:48 +02:00
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% COOLING BEAM POWER VS DETUNING
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2021-07-14 20:23:00 +02:00
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2021-07-18 07:07:48 +02:00
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MOT2D.NumberOfAtoms = 5000;
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MOT2D.TotalPower = 0.6;
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2021-07-14 20:23:00 +02:00
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NumberOfPointsForFirstParam = 10; %iterations of the simulation
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NumberOfPointsForSecondParam = 10;
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2021-07-18 07:07:48 +02:00
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FirstParameterArray = linspace(-0.5, -2.5, NumberOfPointsForFirstParam) * Helper.PhysicsConstants.BlueLinewidth;
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SecondParameterArray = linspace(0.3, 1.0, NumberOfPointsForSecondParam) * MOT2D.TotalPower;
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2021-07-14 20:23:00 +02:00
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tStart = tic;
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2021-07-18 07:07:48 +02:00
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[LoadingRateArray, ~, ~] = Simulator.Scan.doTwoParameters(Oven, MOT2D, 'Blue', 'Detuning', FirstParameterArray, 'Power', SecondParameterArray);
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2021-07-14 20:23:00 +02:00
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tEnd = toc(tStart);
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fprintf('Total Computational Time: %0.1f seconds. \n', tEnd);
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2021-07-18 07:07:48 +02:00
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% - Plot results
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OptionsStruct = struct;
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OptionsStruct.RescalingFactorForFirstParameter = (Helper.PhysicsConstants.BlueLinewidth)^-1;
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OptionsStruct.XLabelString = 'Cooling Beam Detuning (\Delta/\Gamma)';
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OptionsStruct.RescalingFactorForSecondParameter = 1000;
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OptionsStruct.YLabelString = 'Cooling Beam Power (mW)';
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OptionsStruct.RescalingFactorForQuantityOfInterest = 1e-9;
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OptionsStruct.ZLabelString = 'Loading rate (x 10^{9} atoms/s)';
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OptionsStruct.TitleString = sprintf('Magnetic Gradient = %.0f (G/cm)', MOT2D.MagneticGradient * 100);
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options = Helper.convertstruct2cell(OptionsStruct);
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Plotter.plotResultForTwoParameterScan(FirstParameterArray, SecondParameterArray, LoadingRateArray, options{:})
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2021-07-14 20:23:00 +02:00
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clear OptionsStruct
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2021-07-18 07:07:48 +02:00
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%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
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% COOLING BEAM WAIST VS DETUNING
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2021-07-14 20:23:00 +02:00
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2021-07-18 07:07:48 +02:00
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MOT2D.NumberOfAtoms = 5000;
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CoolingBeam = Beams{cellfun(@(x) strcmpi(x.Alias, 'Blue'), Beams)};
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CoolingBeam.Power = 0.4;
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NumberOfPointsForFirstParam = 10; %iterations of the simulation
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NumberOfPointsForSecondParam = 10;
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FirstParameterArray = linspace(-0.5, -2.0, NumberOfPointsForFirstParam) * Helper.PhysicsConstants.BlueLinewidth;
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SecondParameterArray = linspace(10, 25, NumberOfPointsForSecondParam) * 1e-03;
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tStart = tic;
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[LoadingRateArray, ~, ~] = Simulator.Scan.doTwoParameters(Oven, MOT2D, 'Blue', 'Detuning', FirstParameterArray, 'Waist', SecondParameterArray);
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tEnd = toc(tStart);
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fprintf('Total Computational Time: %0.1f seconds. \n', tEnd);
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% - Plot results
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2021-07-14 20:23:00 +02:00
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OptionsStruct = struct;
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OptionsStruct.RescalingFactorForFirstParameter = (Helper.PhysicsConstants.BlueLinewidth)^-1;
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2021-07-18 07:07:48 +02:00
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OptionsStruct.XLabelString = 'Cooling Beam Detuning (\Delta/\Gamma)';
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2021-07-14 20:23:00 +02:00
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OptionsStruct.RescalingFactorForSecondParameter = 1000;
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2021-07-18 07:07:48 +02:00
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OptionsStruct.YLabelString = 'Cooling Beam Waist (mm)';
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OptionsStruct.RescalingFactorForQuantityOfInterest = 1e-9;
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OptionsStruct.ZLabelString = 'Loading rate (x 10^{9} atoms/s)';
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OptionsStruct.TitleString = sprintf('Cooling Beam Power = %d (mW); Magnetic Gradient = %.0f (G/cm)', CoolingBeam.Power*1000, MOT2D.MagneticGradient * 100);
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2021-07-14 20:23:00 +02:00
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options = Helper.convertstruct2cell(OptionsStruct);
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2021-07-18 07:07:48 +02:00
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Plotter.plotResultForTwoParameterScan(FirstParameterArray, SecondParameterArray, LoadingRateArray, options{:})
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2021-07-14 20:23:00 +02:00
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2021-07-16 16:14:11 +02:00
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clear OptionsStruct
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2021-07-18 07:07:48 +02:00
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%% - Scan parameters: Three-Parameter Scan
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% COOLING BEAM WAIST VS DETUNING FOR DIFFERENT MAGNETIC FIELD GRADIENTS
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MOT2D.NumberOfAtoms = 5000;
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CoolingBeam = Beams{cellfun(@(x) strcmpi(x.Alias, 'Blue'), Beams)};
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CoolingBeam.Power = 0.4;
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NumberOfPointsForFirstParam = 10; %iterations of the simulation
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NumberOfPointsForSecondParam = 10;
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NumberOfPointsForThirdParam = 6;
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FirstParameterArray = linspace(-0.5, -2.0, NumberOfPointsForFirstParam) * Helper.PhysicsConstants.BlueLinewidth;
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SecondParameterArray = linspace(10, 25, NumberOfPointsForSecondParam) * 1e-03;
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ThirdParameterArray = linspace(30, 50, NumberOfPointsForThirdParam) * 1e-02;
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tStart = tic;
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LoadingRateArray = Simulator.Scan.doThreeParameters(Oven, MOT2D, 'Blue', 'Detuning', FirstParameterArray, ...
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'Waist', SecondParameterArray, ...
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'MagneticGradient', ThirdParameterArray);
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tEnd = toc(tStart);
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fprintf('Total Computational Time: %0.1f seconds. \n', tEnd);
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% - Plot results
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OptionsStruct = struct;
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OptionsStruct.RescalingFactorForFirstParameter = (Helper.PhysicsConstants.BlueLinewidth)^-1;
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OptionsStruct.XLabelString = 'Cooling Beam Detuning (\Delta/\Gamma)';
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OptionsStruct.RescalingFactorForSecondParameter = 1000;
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OptionsStruct.YLabelString = 'Cooling Beam Waist (mm)';
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OptionsStruct.RescalingFactorForThirdParameter = 100;
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OptionsStruct.RescalingFactorForQuantityOfInterest = 1e-9;
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OptionsStruct.ZLabelString = 'Loading rate (x 10^{9} atoms/s)';
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OptionsStruct.PlotTitleString = 'Magnetic Gradient = %.0f (G/cm)';
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OptionsStruct.FigureTitleString = sprintf('Oven-2DMOT Distance = %.1f (mm); Cooling Beam Power = %d (mW)', Oven.OvenDistance * 1000, CoolingBeam.Power*1000);
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options = Helper.convertstruct2cell(OptionsStruct);
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Plotter.plotResultForThreeParameterScan(FirstParameterArray, SecondParameterArray, ThirdParameterArray, LoadingRateArray, options{:})
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clear OptionsStruct
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