尽管分立元件VCO能够为任何频率和调谐范围单独设计,它们一般需要大量的劳动对频率设置元件生产进行调整以补偿元件一致性差的缺点。除此之外,分立VCO需要良好的屏蔽以减小辐射和牵引效应。随着80年代后期和90年代初期移动电话销售的增长,对这种“封装的”振荡器模块的需求也在上升。一些在小型化方面越来越精通的日本公司为移动电话开发了小型的、成本较低的VCO模块。随着新的无线应用的崛起,VCO模块制造商们开发了工作频率单独针对每一种应用的产品。随着表面贴装元件的体积越来越小(1206, 0805, 0603, 0402, 0201),人们也开发了新的体积更小、成本更低的VCO模块。图4所示为在这段时间内商用VCO模块尺寸缩减的情况,其数据体现的是商用VCO模块在那段时期内典型的技术发展水平状况。今天,这些技术进步达到了它的顶点,紧凑的(4 x 5 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, G.E. Brehm, Monolithic Voltage Controlled
Oscillator for X- and Ku-bands, IEEE Trans. Microwave Theory & Tech.,
Vol. MTT-30, No. 12, December 1982, pp. 2172-2177.
B.N. Scott, M. Wurtele, B.B. Cregger, A Family of Four Monolithic
VCO MIC's Covering 2-18GHz, Monolithic Circuits Symposium Digest,
1984, pp. 54-61
N.M Nguyen, R.G Meyer, A 1.8GHz Monolithic LC Voltage-Controlled Oscillator,
IEEE JSSC, Vol. 27, March 1992, pp. 444-450.
P. Basedau and Q. Huang, A 1GHz, 1.5V Monolithic LC Oscillator in
1um CMOS in Proc. of 1994 European Solid State Circuits Conference;
Ulm, Germany, Sept. 1994, pp. 172-175.
J. Craninckx and M. Steyaert, Low-Noise Voltage Controlled Oscillators
Using Enhanced LC-tanks, IEEE Trans. Circuits and Sys. -II, Vol. 42,
Dec. 1995, pp. 794-804
A. Ali and J.L. Tham. A 900MHz Frequency Synthesizer With Integrated
LC Voltage-Controlled Oscillator. In ISSCC Dig. Tech. Papers. 1996.
pp. 390-391.
M. Soyuer. K.A. Jenkins. J.N. Burghartz and M. D. Hulvey. A 3V 4GHz
nMOS Voltage-Controlled Oscillator With Integrated Resonator. IEEEJ.
Solid State Circuits. vol.31. pp.388-389. Dec. 1996
B. Razavi.. A 1.8GHz CMOS Voltage-Controlled Oscillator. In ISSCC
Dig. Tech. Papers. 1997. pp.390-391.
Reference 9.
L. Dauphinee. M. Copeland and P. Schvan. A Balanced 1.5GHz Voltage-Controlled
Oscillator With an Integrated LC Resonator. In ISSCC Dig. Tech Papers.
1997. pp.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. in ISSCC Dig. Tech Papers.
1997. pp. 392-393.
M. Zannoth, B. Kolb, J. Fenk, and R. Weigel. A Fully Integrated VCO
at 2GHz. IEEEJ. Solid-State Circuits. vol.33. pp. 1987-1991. Dec. 1998.
P. Kinget. A Fully Integrated 2.7V 0.35um CMOS VCO for 5GHz Wireless
Applications. In ISSCC Dig. Tech. Papers. 1998. pp.226-227.
T. Liu. A 6.5GHz Monolithic CMOS Voltage-Controlled Oscillator.
In ISSCC Dig. Tech. Papers. 1999, pp. 401-405.
C. Lam and B. Razavi. A 2.6GHz/5.2GHz CMOS Voltage Controlled Oscillator.
In ISSCC Dig. Tech. Papers. 1999, pp. 402-403.
D.B. Leeson, A Simple Model of Feedback Oscillator Noise Spectrum,
Proceedings of the IEEE, Vol. 54, Feb. 1966, pp. 329-330
A. Hajimiri and T.Lee, A General Theory of Phase Noise in Electrical
Oscillators, IEEE JSSC, Vol. 33 no. 2, Feb. 1998, pp.179-194
A. Hajimiri and T. Lee, Design Issues in CMOS Differential LC Oscillators,
IEEE JSSC, May 1999.
C. Hung and K. O. Kenneth. A Packaged 1.1GHz CMOS VCO With Phase
Noise of -126dBc/Hz at a 600KHz offset. IEEEJ. Solid-Stated Circuits.
vol.35, pp. 100-103. Jan. 2000.