Preface |
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xi | |
Author |
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xiii | |
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1 | (4) |
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Chapter 2 Related Technologies |
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5 | (4) |
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2.1 Self-Focusing of Lightwaves in Nonlinear Optical Media |
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5 | (1) |
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2.2 Self-Written Waveguides (SWWs) |
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6 | (3) |
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6 | (3) |
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Chapter 3 Concepts and Features of Self-Organized Lightwave Networks (SOLNETs) |
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9 | (14) |
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9 | (5) |
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14 | (2) |
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3.3 One-Photon and Two-Photon SOLNETs |
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16 | (2) |
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3.4 Fabrication Processes of Targets and Phosphor-Doped Regions |
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18 | (5) |
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20 | (3) |
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Chapter 4 Performance of SOLNETs Predicted by Computer Simulations |
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23 | (86) |
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4.1 SOLNETs between Microscale Waveguides |
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23 | (12) |
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24 | (1) |
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4.1.1.1 Couplings between Waveguides with Same Core Size |
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24 | (6) |
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4.1.1.2 Couplings between Waveguides with Different Core Sizes |
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30 | (1) |
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31 | (4) |
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4.2 SOLNETs between Nanoscale Waveguides |
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35 | (19) |
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4.2.1 Simulation Models and Procedures |
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36 | (4) |
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40 | (1) |
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41 | (7) |
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48 | (1) |
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49 | (2) |
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4.2.6 Performance of Couplings |
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51 | (3) |
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4.3 SOLNETs between Microscale and Nanoscale Waveguides |
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54 | (13) |
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4.3.1 Simulation Models and Procedures |
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54 | (2) |
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56 | (1) |
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57 | (3) |
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60 | (1) |
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61 | (3) |
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4.3.6 Performance of Couplings |
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64 | (3) |
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4.4 Influence of Write-Beam Wavelengths on SOLNET Formation |
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67 | (3) |
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4.5 Influence of Write-Beam Intensity and Gap Distances on SOLNET Formation |
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70 | (7) |
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4.5.1 Write-Beam Intensity |
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71 | (1) |
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72 | (5) |
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77 | (11) |
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77 | (1) |
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4.6.2 R-SOLNET with Wavelength Filters |
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78 | (3) |
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81 | (7) |
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88 | (11) |
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4.7.1 Comparison of Parallel R-SOLNETs and SWWs |
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89 | (2) |
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4.7.2 Misalignment Tolerance in Parallel R-SOLNETs |
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91 | (8) |
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99 | (10) |
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4.8.1 Y-Branching TB-SOLNET |
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99 | (6) |
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4.8.2 Y-Branching R-SOLNET |
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105 | (1) |
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106 | (3) |
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Chapter 5 Preferable Waveguide Growth Condition for SOLNET Formation |
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109 | (12) |
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5.1 Straight Waveguide Growth |
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109 | (2) |
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5.2 Vertical Waveguide Growth |
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111 | (1) |
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5.3 Influence of Write-Beam Absorption and Intensity on Waveguide Growth |
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112 | (9) |
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5.3.1 Write-Beam Absorption |
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113 | (2) |
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5.3.2 Write-Beam Intensity |
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115 | (4) |
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119 | (2) |
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Chapter 6 Experimental Demonstrations of SOLNETs |
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121 | (30) |
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121 | (3) |
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124 | (15) |
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6.2.1 R-SOLNET Formed by a Free-Space Write Beam |
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124 | (2) |
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6.2.2 R-SOLNET with Micromirrors |
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126 | (3) |
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6.2.3 R-SOLNET with Reflective Objects |
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129 | (2) |
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6.2.4 R-SOLNET with Luminescent Targets |
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131 | (1) |
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6.2.4.1 Coumarin-481 Luminescent Targets |
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131 | (6) |
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6.2.4.2 Alq3 Luminescent Targets |
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137 | (2) |
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139 | (3) |
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142 | (9) |
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6.4.1 Two-Photon TB-SOLNET |
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142 | (2) |
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6.4.2 Two-Photon R-SOLNET |
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144 | (5) |
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149 | (2) |
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Chapter 7 Applications of SOLNETs |
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151 | (32) |
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7.1 Integrated Optical Interconnects and Switching Systems |
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151 | (15) |
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7.1.1 Scalable Film Optical Link Module (S-FOLM) |
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152 | (2) |
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7.1.2 3D OE Platform Built by Self-Organized Optical Wiring |
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154 | (1) |
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7.1.3 Self-Organized 3D-Integrated Optical Interconnects |
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155 | (3) |
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7.1.4 Self-Organized 3D-MOSS |
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158 | (1) |
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7.1.5 Effect of SOLNET on Insertion Loss in 3D-MOSS |
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159 | (7) |
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7.2 Integrated Solar Energy Conversion Systems |
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166 | (6) |
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7.2.1 Waveguide-Type Thin-Film Sensitized Solar Cell |
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166 | (3) |
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7.2.2 Waveguide-Type Thin-Film Artificial Photosynthesis Cell |
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169 | (2) |
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7.2.3 Self-Organized Integrated Solar Energy Conversion System |
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171 | (1) |
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7.3 Photo-Assisted Cancer Therapy |
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172 | (11) |
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7.3.1 SOLNET-Assisted Laser Surgery |
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172 | (5) |
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7.3.2 SOLNET-Assisted Photodynamic Therapy |
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177 | (1) |
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7.3.3 Indicator for Reflective or Luminescent Materials Using R-SOLNET |
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178 | (1) |
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179 | (4) |
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Chapter 8 Future Challenges |
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183 | (4) |
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8.1 Unmonitored SOLNET Formation |
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183 | (1) |
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8.2 Control of Gamma Characteristics of PRI Materials |
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184 | (1) |
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185 | (1) |
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186 | (1) |
Appendix I Methods of Computer Simulations for SOLNETs |
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187 | (8) |
Appendix II Molecular Layer Deposition (MLD) |
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195 | (6) |
Epilogue |
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201 | (2) |
Index |
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203 | |