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+//**********************************************************************************//
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+// Copyright (C) 2009-2016 Ovidio Pena <ovidio@bytesfall.com> //
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+// Copyright (C) 2013-2016 Konstantin Ladutenko <kostyfisik@gmail.com> //
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+// //
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+// This file is part of scattnlay //
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+// //
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+// This program is free software: you can redistribute it and/or modify //
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+// it under the terms of the GNU General Public License as published by //
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+// the Free Software Foundation, either version 3 of the License, or //
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+// (at your option) any later version. //
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+// //
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+// This program is distributed in the hope that it will be useful, //
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+// but WITHOUT ANY WARRANTY; without even the implied warranty of //
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+// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the //
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+// GNU General Public License for more details. //
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+// //
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+// The only additional remark is that we expect that all publications //
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+// describing work using this software, or all commercial products //
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+// using it, cite the following reference: //
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+// [1] O. Pena and U. Pal, "Scattering of electromagnetic radiation by //
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+// a multilayered sphere," Computer Physics Communications, //
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+// vol. 180, Nov. 2009, pp. 2348-2354. //
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+// //
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+// You should have received a copy of the GNU General Public License //
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+// along with this program. If not, see <http://www.gnu.org/licenses/>. //
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+//**********************************************************************************//
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+// This program evaluates forces acting on the nanoparticle under irradiaton.
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+#include <complex>
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+#include <cstdio>
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+#include <string>
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+#include <iostream>
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+#include "../src/nmie.hpp"
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+#include "../src/nmie-impl.hpp"
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+#include "../src/nmie-applied.hpp"
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+#include "../src/nmie-applied-impl.hpp"
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+#include "../src/shell-generator.hpp"
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+int main(int argc, char *argv[]) {
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+ try {
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+ const double pi = 3.1415926535897932384626433832795;
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+ nmie::MultiLayerMieApplied<double> multi_layer_mie;
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+ // const std::complex<double> epsilon_Si(18.4631066585, 0.6259727805);
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+ // const std::complex<double> epsilon_Ag(-8.5014154589, 0.7585845411);
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+ // const std::complex<double> index_Si = std::sqrt(epsilon_Si);
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+ const std::complex<double> index_Si(2.0);
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+ // const std::complex<double> index_Ag = std::sqrt(epsilon_Ag);
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+ double WL=500; //nm
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+ // double core_width = 5.27; //nm Si
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+ // double inner_width = 8.22; //nm Ag
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+ double outer_width = 67.91; //nm Si
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+ // core_width = 5.27; //nm Si
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+ // inner_width = 8.22; //nm Ag
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+ //outer_width = WL/(2.0*pi); //nm Si
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+ outer_width = 50; //nm Si
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+ // multi_layer_mie.AddTargetLayer(core_width, index_Si);
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+ // multi_layer_mie.AddTargetLayer(inner_width, index_Ag);
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+ multi_layer_mie.AddTargetLayer(outer_width, index_Si);
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+ multi_layer_mie.SetWavelength(WL);
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+ multi_layer_mie.RunMieCalculation();
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+ double Qsca = multi_layer_mie.GetQsca();
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+ printf("Qsca = %g\n", Qsca);
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+
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+ shell_generator::ShellGenerator shell;
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+ shell.Init();
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+ // shell.Refine();
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+ // shell.Refine();
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+ //shell.Refine();
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+
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+ //double scale = 2.0*pi*(core_width + inner_width + outer_width)/WL*8.0001; //Integration sphere radius.
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+ double scale = 2.0*pi*(outer_width)/WL*1.0001; //Integration sphere radius.
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+ //double scale = 1.0001; //Integration sphere radius.
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+
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+ shell.Rescale(scale);
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+ // shell.RotateX(pi/2.0);
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+ // shell.RotateY(pi/2.0);
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+ // shell.RotateZ(pi/2.0);
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+ //shell.PrintVerts();
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+ auto points = shell.GetVerticesT();
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+ multi_layer_mie.SetFieldPointsSP(points);
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+ multi_layer_mie.RunFieldCalculation();
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+ auto E = nmie::ConvertComplexVectorVector<double>(multi_layer_mie.GetFieldE());
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+ auto H = nmie::ConvertComplexVectorVector<double>(multi_layer_mie.GetFieldH());
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+ shell.SetField(E,H);
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+ auto F = shell.Integrate();
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+ std::cout<<"F: " <<F[0]<<", "<< F[1] <<", "<<F[2] << std::endl<< std::endl;
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+ F = shell.IntegrateByComp();
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+ std::cout<<"F: " <<F[0]<<", "<< F[1] <<", "<<F[2] << std::endl;
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+ } catch( const std::invalid_argument& ia ) {
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+ // Will catch if multi_layer_mie fails or other errors.
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+ std::cerr << "Invalid argument: " << ia.what() << std::endl;
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+ return -1;
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+ }
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+ return 0;
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+}
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+
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+
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