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1. P. C. Peng*, G. Lin, H. C. Kuo, C. E. Yeh, J. N. Liu, C. T. Lin, J. Chen, S. Chi, J. Y. Chi, S. C. Wang, “Dynamic Characteristics and Linewidth Enhancement Factor of Quantum Dot Vertical-Cavity Surface-Emitting Lasers,” IEEE Journal of Selected Topics in Quantum Electronics, vol. 15, pp. 844 - 849, 2009.
2. P. C. Peng*, L. H. Yen, H. H. Lu, and C. H. Huang, “Hybrid Cable Television/Radio-over-Fiber Transport System Based on Polarization Modulation Technique,” IEEE Photonics Technology Letters, vol. 23, pp. 860 - 862, 2011.
3. P. C. Peng*, W. R. Peng, K. M. Feng, H. Y. Chiou, J. H. Chen, H. C. Kuo, S. C. Wang, and S. Chi, “OCDMA light source using directly modulated Fabry-Perot Laser diode in an external injection scheme,” IEEE Photonics Technology Letters, vol. 18, no. 9, pp. 1103 - 1105, 2006.
4. P. C. Peng*, J. H. Lin, H. Y. Tseng, and S. Chi, “Intensity and Wavelength Division Multiplexing FBG Sensor System using a Tunable Multiport Fiber Ring Laser,” IEEE Photonics Technology Letters, vol. 16, pp. 230 - 232, 2004.
5. P. C. Peng*, H. Y. Tseng, and S. Chi, “Long-Distance FBG Sensor System using a Linear-Cavity Fiber Raman Laser Scheme,” IEEE Photonics Technology Letters, vol. 16, pp. 575 - 577, 2004.
6. P. C. Peng*, J. H. Lin, and S. Chi, “Generation of Wavelength-Tunable Optical Pulses Using a Linear-Cavity Fiber Laser Scheme with a Fabry-Perot Laser Diode,” IEEE Photonics Technology Letters, vol. 16, pp. 1023 - 1025, 2004.
7. P. C. Peng*, W. R. Peng, J. H. Lin, W. P. Lin, and S. Chi, “Generation of wavelength-tunable optical pulses using EDFA as external-injection light source and amplifier for Fabry-Perot laser diode,” IEEE Photonics Technology Letters, vol. 16, pp. 2553 - 2555, 2004.
8. P. C. Peng*, H. Y. Tseng, and S. Chi, “A Novel Fiber-Laser-Based Sensor Network with Self-Healing Function,” IEEE Photonics Technology Letters, vol. 15, pp. 275 - 277, 2003.
9. P. C. Peng*, H. Y. Tseng, and S. Chi, “A Tunable Dual-Wavelength Erbium-Doped Fiber Ring Laser using a Self-Seeded Fabry-Perot Laser Diode,” IEEE Photonics Technology Letters, vol. 15, pp. 661 - 663, 2003.
10. P. C. Peng*, H. Y. Tseng, and S. Chi, “A Hybrid Star-Ring Architecture for Fiber Bragg Grating Sensor System,” IEEE Photonics Technology Letters, vol. 15, pp. 1270 - 1272, 2003.
11. P. C. Peng*, R. L. Lan, F. M. Wu, G. Lin, C. T. Lin, J. Chen, G. R. Lin, S. Chi, H. C. Kuo, and J. Y. Chi, “Polarization Characteristics of Quantum-Dot Vertical-Cavity Surface-Emitting Laser with Light Injection,” IEEE Photonics Technology Letters, vol. 22, pp. 179 - 181, 2010.
12. M. C. Chan, P. C. Peng, Y. Lai, S. Chi, and C. K. Sun, “Continuously Tunable Large-Dynamic-Range Radio-Frequency Phase Shifter Via a Soliton Self-Frequency-Shifted Source and a Dispersive Fiber,” IEEE Photonics Technology Letters, vol. 21, pp. 313 - 315, 2009.
13. Y. H. Chang, P. C. Peng, W. K. Tsai, G. Lin, F. I. Lai, R. S. Hsiao, H. P. Yang, H. C. Yu, K. F. Lin, J. Y. Chi, S. C. Wang, and H. C. Kuo, “Singlemode Monolithic Quantum-Dot VCSEL in 1.3 um with Side-mode Suppression Ratio over 30dB,” IEEE Photonics Technology Letters, vol. 18, pp. 847 - 849, 2006.
14. W. R. Peng, P. C. Peng, Y. T. Hsueh, K. M. Feng, and S. Chi, “Performance Comparisons of External Modulated Hybrid Analog/Digital Signals in Electrical and Optical Domains,” IEEE Photonics Technology Letters, vol. 17, pp. 2496 - 2498, 2005.
15. W. R. Peng, P. C. Peng, W. P. Lin, K. C. Hsu, Y. C. Lai, and S. Chi, “A Cost-Effective Fast Frequency-Hopped Code-Division Multiple Access Light Source Using Self-Seeded Fabry-Perot Laser with Fiber Bragg Grating Array,” IEEE Photonics Technology Letters, vol. 16, pp. 2550 - 2552, 2004.
16. C. Y. Wu, K. M. Feng, P. C. Peng, and C. Y. Lin, “Three-Dimensional Mesh-Based Multipoint Sensing System with Self-Healing Functionality,” IEEE Photonics Technology Letters, vol. 22, pp. 565 - 567, 2010.
17. C. T. Lin, J. Chen, P. C. Peng, C. F. Peng , W. R. Peng, B. S. Chiou, and S. Chi, “Hybrid Optical Access Network Integrating Fiber-to-the-home and Radio-over-fiber Systems,” IEEE Photonics Technology Letters, vol. 19, pp. 610 - 612, 2007.
18. C. T. Lin, W. R. Peng, P. C. Peng, J. Chen, C. F. Peng, B. S. Chiou, and S. Chi, “Simultaneous Generation of Baseband and Radio Signals Using Only One Single-Electrode Mach–Zehnder Modulator With Enhanced Linearity,” IEEE Photonics Technology Letters, vol. 18, pp. 2481 - 2483, 2006.
19. C. T. Lin, P. T. Shih, J. Chen, P. C. Peng, S. P. Dai, W. J. Jiang, W. Q. Xue, and S. Chi, “Cost-Effective Multiservices Hybrid Access Networks With no Optical Filter at Remote Nodes,” IEEE Photonics Technology Letters, vol. 20, pp. 812 - 814, 2008.
20. C. T. Lin, P. T. Shih, J. Chen, W. Q. Xue, P. C. Peng, S. Chi, “Optical Millimeter-Wave Signal Generation Using Frequency Quadrupling Technique and No Optical Filtering,” IEEE Photonics Technology Letters, vol. 20, pp. 1027 - 1029, 2008.
21. C. T. Lin, S. P. Dai, J. Chen, P. T. Shih, P. C. Peng, S. Chi, “A Novel Direct Detection Microwave Photonic Vector Modulation Scheme for Radio-Over-Fiber System,” IEEE Photonics Technology Letters, vol. 20, pp. 1106 - 1108, 2008.
22. C. T. Lin, W. J. Jiang, J. Chen, P. T. Shih, P. C. Peng, E. Z. Wong, and S. Chi, “Novel Optical Vector Signal Generation With Carrier Suppression and Frequency Multiplication Based on a Single-Electrode Mach-Zehnder Modulator,” IEEE Photonics Technology Letters, vol. 20, pp. 2060 - 2062, 2008.
23. P. C. Peng*, F. M. Wu, W. J. Jiang, R. L. Lan, C. T. Lin, J. H. Chen, P. T. Shih, G. R. Lin, S. Chi, “RF Phase Shifter using a Distributed Feedback Laser in Microwave Transport Systems,” Optics Express, vol. 17, pp. 7609 - 7614, 2009.
24. P. C. Peng*, C. T. Lin, H. C. Kuo, W. K. Tsai, J. N. Liu, S. Chi, S. C. Wang, G. Lin, H. P. Yang, K. F. Lin, and J. Y. Chi, “Tunable Slow Light Device using Quantum Dot Semiconductor Laser,” Optics Express, vol. 14, pp. 12880 - 12886, 2006.
25. P. C. Peng*, H. C. Kuo, W. K. Tsai, Y. H. Chang, Gray Lin, C. T. Lin, H. P. Yang, K. F. Lin, H. C. Yu, J. Y. Chi, S. Chi, and S. C. Wang, “Dynamic Characteristics of Long-Wavelength Quantum Dot Vertical-Cavity Surface-Emitting Lasers with Light Injection,” Optics Express, vol. 14, pp. 2944 - 2949, 2006.
26. W. Y. Lin, C. H. Chang, P. C. Peng, H. H. Lu, and C. H. Huang, “Direct CATV modulation and phase remodulated radio-over-fiber transport system,” Optics Express, vol. 18, pp. 10301 - 10307, 2010.
27. C. C. Lin, H. C. Kuo, P. C. Peng, and G. R. Lin, “Chirp and error rate analyses of an optical-injection gain-switching VCSEL based all-optical NRZ-to-PRZ converter,” Optics Express, vol. 16, pp. 4838 - 4847, 2008.
28. V. K. S. Hsiao, Z. Li, Z. Chen, P. C. Peng, J. Tang, “Optically controllable side-polished fiber attenuator with photoresponsive liquid crystal overlay,” Optics Express, vol. 17, pp. 19988 - 19995, 2009.
29. H. C. Peng, H. S. Su, H. H. Lu, C. Y. Li, P. C. Peng, S. H. Wu, and C. H. Chang, "Hybrid CATV/16-QAM OFDM in-building networks over SMF and GI-POF transport," Optics Express, vol. 19, pp. 9575-9581, 2011.
30. W. J. Jiang, C. T. Lin, P. T. Shih, J. Chen, P. C. Peng, and S. Chi, “A Full duplex radio-over-fiber link with Multi-level OFDM signal via a single-electrode MZM and wavelength reuse with a RSOA,” Optics Express, vol. 18, pp. 2710 - 2718, 2010.
31. C. T. Lin, P. T. Shih, W. J. Jiang, J. Chen, P. C. Peng, S. Chi, “A continuously tunable and filterless optical millimeter-wave generation via frequency octupling,” Optics Express, vol. 17, pp. 19749 - 19756, 2009.
32. H. S. Su, C. Y. Li, H. H. Lu, C. H. Chang, P. C. Peng, P. Y. Wu, and H. W. Chen, “RoF Transport Systems with OSNR Enhanced Multi-Band Optical Carrier Generator”, Optics Express, vol. 19, pp. 18516-18522, 2011.
33. C. T. Lin, Y. M. Lin, J. H. Chen, S. P. Dai, P. T. Shih, P. C. Peng, and S. Chi, “Optical direct-detection OFDM signal generation for radio-over-fiber link using frequency doubling scheme with carrier suppression,” Optics Express, vol. 16, pp. 6056 - 6063, 2008.
34. P. T. Shih, C. T. Lin, W. J. Jiang, J. H. Chen, H. S. Huang, Y. H. Chen, P. C. Peng, and S. Chi, “WDM up-conversion employing frequency quadrupling in optical modulator,” Optics Express, vol. 17, pp. 1726 - 1733, 2009.
35. Y. C. Chi, P. C. Peng, G. R. Lin, “Clock-Free RZ-BPSK Data Generation Using Self-Starting Optoelectronic Oscillator,” IEEE/OSA Journal of Lightwave Technology, vol. 29, pp. 1702-1707, 2011.
36. H. H. Lu, C. H. Chang, P C. Peng, H. S. Su. and H. W. Hu, “A Radio over GI-POF Transport System,” IEEE/OSA Journal of Lightwave Technology, vol. 28, pp. 1917 - 1921, 2010.
37. C. H. Chang, H. S. Su, H. H. Lu, P. C. Peng, and H. W. Hu, “Integrating Fiber to the Home and POF In-Door Routing CATV Transport System,” IEEE/OSA Journal of Lightwave Technology, vol. 28, pp. 1864 - 1869, 2010.
38. C. T. Lin, J. Chen, S. P. Dai, P. C. Peng, and S. Chi, “Impact of Nonlinear Transfer Function and Imperfect Splitting Ratio of MZM on Optical Up-Conversion Employing Double Sideband With Carrier Suppression Modulation,” IEEE/OSA Journal of Lightwave Technology, vol. 26, pp. 2449 - 2459, 2008.
39. C. C. Lin, Y. C. Chi, H. C. Kuo, P. C. Peng, C. J. Chang-Hasnain, and Gong-Ru Lin , "Beyond-Bandwidth Electrical Pulse Modulation of a TO-Can Packaged VCSEL for 10 Gbit/s Injection-Locked NRZ-to-RZ Transmission," IEEE/OSA Journal of Lightwave Technology, vol. 29, pp. 830-841, 2011.
40. P. T. Shih, J. Chen, C. T. Lin, W. J. Jiang, H. S. Huang, P. C. Peng, S. Chi, “Optical Millimeter-Wave Signal Generation Via Frequency 12-Tupling,” IEEE/OSA Journal of Lightwave Technology, vol. 28, pp. 71 - 78, 2009.
41. C. H. Chang, P. C. Peng, H. H. Lu, C. L. Shih, and H. W. Chen, "Simplified radio-over-fiber transport systems with a low-cost multiband light source," Optics Letters, vol. 35, pp.4021-4023, 2010.
42. C. H. Chang, W. C. Liu, P. C. Peng, H. H. Lu, P. Y. Wu, and J. B. Wang, "Hybrid cable television and orthogonal-frequency-division-multiplexing transport system basing on single wavelength polarization and amplitude remodulation schemes," Optics Letters, vol. 36, pp. 1716-1718, 2011.
43. C. T. Lin, P. T. Shih, J. Chen, W. J. Jiang, S. P. Dai, P. C. Peng, Y. L. Ho, and S. Chi, “Optical Millimeter-Wave Up-Conversion Employing Frequency Quadrupling Without Optical Filtering,” IEEE Transactions on Microwave Theory and Techniques, vol. 57, pp. 2084 - 2092, 2009.
44. P. C. Peng*, and K. Y. Huang, “Fiber Bragg Grating Sensor System with Two-Level Ring Architecture,” IEEE Sensors Journal, vol. 9, pp. 309 - 313, 2009.
45. S. T. Kuo, P. C. Peng, J. W. Sun, and M. S. Kao, “A Delta-Star Based Multipoint Fiber Bragg Grating Sensor Network,” IEEE Sensors Journal, vol. 11, pp. 875-881, 2011.
46. P. C. Peng*, J. B. Wang, K. Y. Huang, “Reliable Fiber Sensor System with Star-Ring-Bus Architecture,” Sensors, vol.10, pp. 4194 - 4205, 2010.
47. P. C. Peng*, K. M. Feng, C. C. Chang, H. Y. Chiou, J. H. Chen, M. F. Huang, H. C. Chien, S. Chi, “Multiwavelength Fiber Laser using S-band Erbium-Doped Fiber Amplifier and Semiconductor Optical Amplifier,” Optics Communications, vol. 259, pp. 200 - 203, 2006.
48. P. C. Peng*, K. M. Feng, W. R. Peng, H. Y. Chiou, C. C. Chang, and S. Chi, “Long-Distance Fiber Grating Sensor System using a Fiber Ring Laser with EDWA and SOA,” Optics Communications, vol. 252, pp. 127 - 131, 2005.
49. C. S. Chou, R. K. Lee, P. C. Peng, H. C. Kuo, G. Lin, H. P. Yang and J. Y. Chi, “A Simple Model for Cavity Enhanced Slow Lights in Vertical Cavity Surface Emission Lasers,” Journal of Optics: A Pure and Applied Optics, vol. 10, 044016, 2008.
50. P. C. Peng*, J. F. Chen, and J. W. Sun, “Novel Ring Protection Architecture for Fiber Sensor System,” Japanese Journal of Applied Physics, vol. 50, no. 8, pp. 082501-082501-4 , 2011.
51. P. C. Peng*, C. E. Yeh, H. C. Kuo, R. Xuan, C. T. Lin, G. Lin, S. Chi, and J. Y. Chi, “Relative Intensity Noise Characteristics of Long-Wavelength Quantum Dot Vertical-Cavity Surface-Emitting Lasers,” Japanese Journal of Applied Physics, vol. 47, pp. 6357 - 6358, 2008.
52. P. C. Peng*, and S. Chi, “Over 31 nm Wavelength-Switched Pulse Generation from a Fiber Ring Laser with a Fabry-Perot Semiconductor Modulator,” Japanese Journal of Applied Physics, vol. 43, pp. 4236 - 4237, 2004.
53. P. C. Peng*, W. P. Lin, and S. Chi, “Star-Bus-Ring Architecture for Fiber Bragg Grating Sensors,” Japanese Journal of Applied Physics, vol. 43, pp. 7072 - 7076, 2004.
54. P. C. Peng*, W. R. Peng, W. P. Lin, and S. Chi, “Dynamic Encoder and Decoder Based on Fiber Bragg Gratings for Optical Security System,” Japanese Journal of Applied Physic, vol. 43, pp. 8101 - 8102, 2004.
55. F. M. Wu, P. C. Peng*, J. Chen, C. T. Lin, G. R. Lin, and S. Chi, “Electrically and continuously tunable optical delay line based on a semiconductor laser,” Japanese Journal of Applied Physics, vol. 49, 074102, 2010.
56. C. T. Lin, P. C. Peng, P. T. Shih, J. Chen, and S. Chi, “Distributed Feedback Laser in External Light Injection Scheme for Tunable Slow Light,” Japanese Journal of Applied Physics, vol. 47, pp. 4600 - 4601, 2008.
57. P. C. Peng*, K. M. Feng, H. Y. Chiou, W. R. Peng, J. Chen, H. C. Kuo, S. C. Wang, and S. Chi “Reliable Architecture for High-Capacity Fiber-Radio Systems,” Optical Fiber Technology, vol. 13, pp. 236 - 239, 2007.
58. J. Chen, C. T. Lin, P. T. Shih, W. J. Jiang, S. P. Dai, Y. M. Lin, P. C. Peng, and S. Chi, “Generation of optical millimeter-wave signals and vector formats using an integrated optical I/Q modulator [Invited],” Journal of Optical Networking, vol. 8, pp. 188 - 200, 2009.
59. P. C. Peng*, and S. Chi, “Tunable Single- and Dual- Wavelength Fiber Ring Lasers Using a Er-Yb Doped Waveguide Amplifier,” Optical Engineering, vol. 44, pp. 060507, 2005.
60. P. C. Peng*, and S. Chi, “Wavelength-tunable optical short pulse generation with constant repetition frequency and pulsewidth,” Optical Engineering, vol. 44, pp. 064205, 2005.
61. P. C. Peng*, H. Y. Cheng, and S. Chi, “Wavelength-Tunable Add-Drop Multiplexers Using Fiber Fabry-Perot Tunable Filters for Bidirectional Wavelength Division Multiplexing Networks,” Optical Engineering, vol. 43, pp. 2422 - 2425, 2004.
62. P. C. Peng*, F. M. Wu, C. T. Lin, J. H. Chen, P. T. Shih, W. C. Kao, W. J. Jiang, H. C. Kuo, S. Chi, “40 GHz Phase Shifter based on Semiconductor Laser,” Electronics Letters, vol. 44, pp. 520 - 521, 2008.
63. P. C. Peng*, C. T. Lin, W. J. Jiang, J. Chen, F. M. Wu, P. T. Shih and S. Chi, “Improvement of transmission in fibre wireless system using semiconductor laser amplifier,” Electronics Letters, vol. 44, pp. 298 – 299, 2008.
64. P. C. Peng*, C. T. Lin, H. C. Kuo, G. Lin, W. K. Tsai, H. P. Yang, K. F. Lin, J. Y. Chi, S. Chi, and S. C. Wang, “Tunable Optical Group Delay in Quantum Dot Vertical-Cavity Surface-Emitting Laser at 10 GHz,” Electronics Letters, vol. 42, pp. 33 - 34, 2006.
65. P. C. Peng, Y. H. Chang, H. C. Kuo, W. K. Tsai, G. Lin, C. T. Lin, H. C. Yu, H. P. Yang, R. S. Hsiao, K. F. Lin, J. Y. Chi, S. Chi, and S. C. Wang, “1.3 μm Quantum Dot Vertical Cavity Surface Emitting Laser with External Light Injection,” Electronics Letters, vol. 41, pp. 1222 - 1223, 2005.
66. P. C. Peng*, H. Y. Tseng, and S. Chi, “A Self-Healing Fiber Grating Sensor System using a Tunable Multiport Fiber Laser Scheme for Intensity and Wavelength Division Multiplexing,” Electronics Letters, vol. 38, pp. 1510 - 1512, 2002.
67. P. C. Peng*, J. F. Chen, H. H. Lu, and Y. T. Lin, "Wavelength-tunable optical pulse generation from a fiber ring laser with a reflective semiconductor optical amplifier," Laser Physics, vol. 21, pp. 509-511, 2011.
68. F. M. Wu, P. C. Peng*, J. Chen, C. T. Lin, W. C. Kao, "SOA-based Fiber Ring Laser Use in a Photonic Radio-Frequency Phase Shifter," Laser Physics, vol. 21, pp. 522-525, 2011.
69. S. T. Kuo, P. C. Peng*, M. S. Kao, H. H. Lu, and J. F. Chen, “Tunable erbium-doped fiber ring laser with signal-averaging function for fiber-optic sensing applications,” Laser Physics, vol. 21, pp. 188-190, 2011.
70. P. C. Peng*, A. L. Tsou, H. H. Yee, H. Y. Wang, and H. H. Lu, "A stable multiwavelength SOA-based fiber ring laser with ultra-narrow wavelength spacing," accepted by Laser Physics, 2011.
71. P. C. Peng*, and S. Chi, “Tunable Dual-Wavelength Linear-Cavity Fiber Laser by Using an External Injection-Seeding Scheme,” Microwave and Optical Technology Letters, vol. 40, pp. 406 - 408, 2004.
72. P. C. Peng*, and S. Chi, “A Reliable Architecture for FBG Sensor Systems,” Microwave and Optical Technology Letters, vol. 39, pp. 479 - 482, 2003.
73. P. C. Peng*, H. Y. Tseng, and S. Chi, “A Simple Fiber Bragg Grating Sensor System Based on a Linear-Cavity Fiber Laser,” Microwave and Optical Technology Letters, vol. 37, pp. 15 - 17, 2003.
74. P. C. Peng*, H. Y. Tseng, and S. Chi, “Fiber Ring Laser Based Fiber Grating Sensor System Using Self-Healing Ring Architecture,” Microwave and Optical Technology Letters, vol. 35, pp. 441 - 444, 2002.
75. P. C. Peng*, H. Y. Tseng, and S. Chi, “High-Resolution Fiber Bragg Grating Sensor System using Linear-Cavity Fiber Laser Scheme,” Microwave and Optical Technology Letters, vol. 34, pp. 323 - 325, 2002.
76. S. L. Tsao and P. C. Peng, “Design and Simulation of a 2×2N SOI Optical Power Splitter,” Microwave and Optical Technology Letters, vol.32, pp. 307 - 310, 2002.
77. S. L. Tsao and P. C. Peng, “An SOI Michelson Interferometer Sensor with Waveguide Bragg Reflective Gratings for Temperature Monitoring,” Microwave and Optical Technology Letters, vol.30, pp. 321 - 322, 2001.
78. S. T. Kuo, M. S. Kao, and P. C. Peng, “A Hybrid Star-Ring-Bus Architecture for WDM Metropolitan-Regional Access Networks,” Microwave and Optical Technology Letters, vol. 53, pp. 102-108, 2011.
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