Armstrong的发明很快被Ralph V. L. Hartley进行了改良并发明出了他自己的振荡器电路拓扑结构(图1)。Hartley利用了真空管技术的进步,在他发明的振荡电路中将真空管作为放大器使用,并用电感反馈产生了一个再生振荡。振荡器的频率是由线圈电感和电路电容决定的。这个电路是正弦信号发生技术的一项突破。它具有比以往更大的频率范围,只需要简单地改变线圈电感或者是电容值就能改变频率。Hartley振荡器电路开始在发射机中普及起来并很快在第一次世界大战中得到应用。此时的发射机和接收机都采用了这种新的、基于真空管的振荡器电路。振荡器电路的革新产生了深远的影响,此后发明的一些优秀的电路拓扑结构直到今天仍然在使用中,如Hartley、Colpitts、Clapp、Armstrong和Pierce等结构。
今天,这些技术进步达到了它的顶点,紧凑的(4mm x 5mm x 2mm)模块得以实现而且批量销售价格已经接近1美元(在美国)。15年来VCO模块体积发生了令人吃惊缩减,满足了像蜂窝电话这种新型移动无线设备对产品占用空间的严格要求。然而,90年代末出现了一种体积更小成本更低的VCO技术,单片VCO IC技术。
设计工程师们对VCO理论的理解也越来越深入。他们正在对过去的数学模型如Van der Pol等式和Leeson等式作进一步的研究,得出了新的解释振荡器工作现象(如调谐特性和相位噪声性能)的分析表达式。例如,设计者们正在用Abidi关系改进Leeson的噪声公式。除此之外,随着个人电脑和工作站计算机处理能力的提高,计算机辅助工程(CAE)工具的功能和复杂程度也在提高之中,这使工程师们可以对VCO功能模型进行试验以发现其性能的改进。
B.N. Scott and G.E. Brehm, "Monolithic Voltage Controlled Oscillator for X- and Ku-bands," IEEE Transactions on Microwave Theory & Techniques 30, no. 12 (December, 1982), 2172–2177.
B.N. Scott, M. Wurtele, and B.B. Cregger, "A Family of Four Monolithic VCO MICs Covering 2-18GHz," Monolithic Circuits Symposium Digest (1984), 54–61.
N.M. Nguyen and R.G. Meyer, "A 1.8GHz Monolithic LC Voltage-Controlled Oscillator," IEEE Journal of Solid-State Circuits 27 (March 1992), 444–450.
P. Basedau and Q. Huang, "A 1GHz, 1.5V Monolithic LC Oscillator in 1µm CMOS," Proceedings of 1994 European Solid State Circuits Conference (Ulm, Germany, September, 1994), 172–175.
J. Craninckx and M. Steyaert, "Low-Noise Voltage-Controlled Oscillators Using Enhanced LC-tanks," IEEE Transactions on Circuits and Systems II 42 (December, 1995), 794–804.
M. Soyuer, K.A. Jenkins, J.N. Burghartz, and M.D. Hulvey, "A 3V 4GHz nMOS Voltage-Controlled Oscillator with Integrated Resonator," IEEE Journal of Solid-State Circuits 31 (December, 1996), 388–389.
B. Razavi, "A 1.8GHz CMOS Voltage-Controlled Oscillator," ISSCC Digest of Technical Papers (1997), 390–391.
L. Dauphinee, M. Copeland, and P. Schvan, "A Balanced 1.5GHz Voltage-Controlled Oscillator with an Integrated LC Resonator," ISSCC Digest of Technical Papers (1997), 390–391.
Ibid.
A. Ali and J.L. Tham, "A 900MHz Frequency Synthesizer with Integrated LC Voltage-Controlled Oscillator," ISSCC Digest of Technical Papers (1996), 390–391.
B. Jansen, K. Negus, and D. Lee, "Silicon Bipolar VCO Family for 1.1-2.2GHz with Fully Integrated Tank and Tuning Circuits," ISSCC Digest of Technical Papers (1997), 392–393.
M. Zannoth, B. Kolb, J. Fenk, and R. Weigel, "A Fully Integrated VCO at 2GHz," IEEE Journal of Solid-State Circuits 33 (December, 1998), 1987–1991.
P. Kinget, "A Fully Integrated 2.7V 0.35µm CMOS VCO for 5GHz Wireless Applications," ISSCC Digest of Technical Papers (1998), 226–227.
T. Liu, "A 6.5GHz Monolithic CMOS Voltage-Controlled Oscillator," ISSCC Digest of Technical Papers (1999), 401–405.
C. Lam and B. Razavi, "A 2.6GHz/5.2GHz CMOS Voltage-Controlled Oscillator," ISSCC Digest of Technical Papers (1999), 402–403.
D.B. Leeson, "A Simple Model of Feedback Oscillator Noise Spectrum," Proceedings of the IEEE 54 (February, 1966), 329–330.
A. Hajimiri and T. Lee, "A General Theory of Phase Noise in Electrical Oscillators," IEEE Journal of Solid-State Circuits 33, no. 2 (February, 1998), 179–194.
A. Hajimiri and T. Lee, "Design Issues in CMOS Differential LC Oscillators," IEEE Journal of Solid-State Circuits 34, no. 5 (May, 1999).
C. Hung and K.O. Kenneth, "A Packaged 1.1GHz CMOS VCO with Phase Noise of -126dBc/Hz at a 600kHz Offset," IEEE Journal of Solid-State Circuits 35 (January, 2000), 100–103.