Preface |
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Chapter 1. Basic Principles of Imaging |
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1 | (74) |
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1 | (7) |
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8 | (6) |
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14 | (5) |
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4. Video Enhanced Contrast |
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19 | (6) |
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25 | (15) |
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40 | (23) |
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7. Three-Dimensional Rendering |
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63 | (7) |
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70 | (5) |
Chapter 2. Optics for the Biologist: What You Need to Know to Make Your Light Microscope Work Properly |
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75 | (30) |
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75 | (1) |
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2. The Problem of Spheres |
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76 | (4) |
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3. 'Tube' Length and Magnification |
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80 | (9) |
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89 | (1) |
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90 | (1) |
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6. Detecting Spherical Aberration |
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90 | (3) |
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7. How Do You Correct Spherical Aberration? |
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93 | (7) |
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100 | (4) |
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104 | (1) |
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104 | (1) |
Chapter 3. Spherical Aberration in Confocal Microscopy |
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105 | (20) |
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105 | (5) |
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2. Aberration Introduced by Refractive Index Mismatch |
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110 | (4) |
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3. Compensation by Alteration of Immersion Medium Refractive Index |
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114 | (3) |
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4. Validity of the Debye Approximation in the Presence of Spherical Aberration |
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117 | (5) |
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122 | (1) |
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122 | (1) |
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123 | (2) |
Chapter 4. Deconvolution and Image Quality Control Valuable Tools in Multi-Dimensional Light Microscopy |
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125 | (25) |
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L. Schaefer and A. Kriete |
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126 | (1) |
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127 | (3) |
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130 | (8) |
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138 | (7) |
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145 | (1) |
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146 | (1) |
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147 | (3) |
Chapter 5. Quantitative Polarised Light Microscopy |
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150 | (12) |
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T. Wilson, F. Massoumian, R. Juskaitis and M.A.A. Neil |
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150 | (1) |
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151 | (3) |
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3. The Experimental System |
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154 | (1) |
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155 | (5) |
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160 | (1) |
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161 | (1) |
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161 | (1) |
Chapter 6. Multi-Photon Scanning Microscopy Using a Femtosecond Cr:forsterite Laser |
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162 | (16) |
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C.-K. Sun, S.-W. Chu, T.-M. Liu and Y-H. Cheng |
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162 | (2) |
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164 | (4) |
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3. Results and Discussion |
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168 | (7) |
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175 | (1) |
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175 | (1) |
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176 | (2) |
Chapter 7. Design and Performance Evaluation of a Multi-Functional Microscopy |
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178 | (10) |
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W.-J. Chen, C.-K. Lee and S.-S. Lu |
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178 | (1) |
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179 | (6) |
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185 | (2) |
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187 | (1) |
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187 | (1) |
Chapter 8. Zeeman Laser Scanning Confocal Microscopy in Turbid Media |
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188 | (9) |
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C. Chou, L.C. Peng, C. W Lyu and J-C. Hsieh |
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188 | (2) |
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190 | (5) |
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195 | (1) |
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195 | (1) |
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196 | (1) |
Chapter 9. A Method for Real-Time Confocal Imaging of Substrate Surfaces During Active Air Abrasion Cutting: The Cutting Edge of Air Abrasion |
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197 | (22) |
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R.J Cook, A. Azzopardi, I.D. Thompson and T.F. Watson |
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197 | (4) |
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201 | (4) |
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205 | (7) |
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212 | (3) |
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215 | (1) |
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216 | (1) |
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216 | (3) |
Chapter 10. Three-Dimensional Optical Data Storage with a Multi-layered Recording Medium |
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219 | (13) |
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219 | (2) |
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2. Bit-Oriented 3-D Memory |
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221 | (2) |
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3. Multi-Structured Recording Medium for Reading with Reflection Confocal Microscope |
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223 | (5) |
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4. Two-Photon Recording in Multi-Structured Medium |
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228 | (1) |
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5. Discussion and Conclusion |
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229 | (1) |
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230 | (2) |
Chapter 11. The Studies of Single Luminescent Conjugated Polymers |
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232 | (6) |
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S.-C. Yang, J.D. White, J.-H. Hsu and W. Fann |
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232 | (1) |
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233 | (1) |
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3. Results and Discussion |
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234 | (2) |
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236 | (1) |
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237 | (1) |
Chapter 12. Confocal Microscopy of GFP-Like Pigments in Corals |
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238 | (8) |
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238 | (1) |
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239 | (1) |
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3. Results and Discussion |
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240 | (3) |
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243 | (1) |
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244 | (1) |
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244 | (2) |
Chapter 13. Three-Dimensional Localisation of Fluorescence Resonance Energy Transfer in Living Cells under Two-Photon Excitation |
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246 | (11) |
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246 | (2) |
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248 | (8) |
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256 | (1) |
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256 | (1) |
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256 | (1) |
Chapter 14. Multi-Dimensional Imaging of Cell- and Tissue-Engineered Constructs |
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257 | (32) |
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Y. Zhu, S.S. Ng, Y.M. Khong, L.I. He, Y.C. Toh, X.T. Pan, S. Chia, P.C. Lin, W.X. Sun and H. Yu |
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257 | (2) |
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2. Natural Spheroids or Engineered Cell Aggregates |
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259 | (6) |
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265 | (2) |
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4. Porous Scaffold-based 3-D Tissue Constructs |
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267 | (4) |
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5. Micro-Fluidic Channels |
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271 | (3) |
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6. Three-Dimensional Tissue Slices |
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274 | (5) |
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7. Conclusion and Future Work |
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279 | (1) |
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280 | (9) |
Appendix A. Two-Photon Excited Fluorescent Spectra of Common Biological Dyes |
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289 | (2) |
Appendix B. Color Figures |
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291 | (8) |
Index |
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299 | |