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CMOS Optical Preamplifier Design Using Graphical Circuit Analysis

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4.3 DPI/SFG: Combining DPI <strong>Analysis</strong> and Signal-Flow Graphs 84<br />

4.4 Determining Port Impedances 87<br />

4.4.1 Deriving Blackman’s Impedance Formula 91<br />

4.5 Analyzing Transistor <strong>Circuit</strong>s 96<br />

4.5.1 Signal-Flow Graphs of Transistors 96<br />

4.5.2 Transistor <strong>Circuit</strong> Examples 100<br />

References 106<br />

CHAPTER 5 CIRCUIT DESIGN USING THE DPI/SFG METHOD 108<br />

5.1 <strong>Analysis</strong> of the Low-Voltage Transimpedance Amplifier 109<br />

5.2 Developing an Analytic <strong>Circuit</strong> Model 113<br />

5.2.1 Modeling the Frequency Response 113<br />

5.2.2 Modeling the Amplifier Noise 117<br />

5.2.3 <strong>Design</strong> Optimization 124<br />

5.3 Summary 136<br />

References 136<br />

CHAPTER 6 IMPLEMENTATION AND EXPERIMENTAL RESULTS 137<br />

6.1 A 1V <strong>Optical</strong> Receiver Front-End 137<br />

6.1.1 Receiver Building Blocks 137<br />

6.1.2 Experimental Results 143<br />

6.2 Variable-Gain Transimpedance Amplifier with Ambient Light Rejection 154<br />

6.2.1 Implementation Details 154<br />

6.2.2 Experimental Results 157<br />

6.3 Summary and State-of-the-Art Comparison 159<br />

References 162<br />

CHAPTER 7 CONCLUSIONS 163<br />

7.1 Summary and Conclusions 163<br />

7.2 Future Work 165<br />

References 167<br />

APPENDIX A ANALYSIS OF FEEDBACK AMPLIFIER USING DPI/SFG 168<br />

APPENDIX B HIGH-FREQUENCY TRANSISTOR MODELS 174<br />

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