2000 IEEE.
Personal use of this material is
permitted. However, permission to reprint/republish this
material for advertising or promotional purposes or for
creating new collective works for resale or redistribution
to servers or lists, or to reuse any copyrighted component
of this work in other works must be obtained from the
IEEE.
IEEE Transactions on Microwave Theory and Techniques
Volume 48 Number 4, April 2000
Table of Contents for this issue
Complete paper in PDF format
Modeling and Design Aspects
of Millimeter-Wave and Submillimeter-Wave Schottky Diode Varactor
Frequency Multipliers
Jesús Grajal, Viktor Krozer, Member, IEEE Emilio González, Francisco Maldonado and Javier Gismero
Page 700.
Abstract:
Design and optimization of Schottky varactor diode frequency
multipliers for millimeter and submillimeter wavelengths are generally performed
using harmonic balance techniques together with equivalent-circuit models.
Using this approach, it is difficult to design and optimize the device and
multiplier circuit simultaneously. The work presented in this paper avoids
the need of equivalent circuits by integrating a numerical simulator for Schottky
diodes into a circuit simulator. The good agreement between the calculated
and published experimental data for the output power and conversion efficiency
originates from the accurate physical model. The limiting effects of multiplier
performance such as breakdown, forward conduction, or saturation velocity
are discussed in view of the optimum circuit conditions for multiplier operation
including bias point, input power, and loads at different harmonics. It is
shown that the onset of forward or reverse current flow is responsible for
the limitation in the conversion efficiency.
References
-
E. L. Kollberg, T. J. Tolmunen, M. A. Frerking and J. R. East, "Current saturation in submillimeter wave varactors", IEEE Trans. Microwave Theory Tech., vol. 40, pp. 831-838, May 1992.
-
P. Siegel, A. R. Kerr and W. Hwang, "Topics in the optimization of millimeter wave mixers",
NASA, CITY, STATE, NASA Tech. Rep.
2287, Mar. 1984.
-
J. W. Archer, "Handbook of microwave and optical components,"in Multipliers and Parametric Devices, 2nd ed. K. Chang, Ed. New York: Wiley, 1990.
-
R. E. Lipsey, S. H. Jones, J. R. Jones, T. W. Crowe, L. F. Horvath, U. V. Bhapkar and R. J. Mattauch, "Monte Carlo harmonic-balance and drift-diffusion harmonic-balance analyzes of 100-600 GHz Schottky barrier varactor frequency multipliers", IEEE Trans. Electron Devices, vol. 44, pp. 1843-1849, Nov. 1997.
-
J. T. Louhi and A. V. Räisänen, "On the modeling and optimization of Schottky varactor frequency multipliers at submillimeter wavelengths",
IEEE Trans. Microwave Theory Tech., vol. 43, pp. 922
-926, Apr. 1995.
-
J. T. Louhi and A. V. Räisänen, "Optimization of the Schottky varactor for frequency multiplier applications at the submillimeter wavelengths", IEEE Microwave Guided Wave Lett., vol. 6, pp.
241-242, June 1996.
-
A. Jelenski, A. Grüb, V. Krozer and H. Hartnagel, "New approach to the design and the fabrication of THz Schottky barrier diodes", IEEE Trans. Microwave Theory Tech., vol. 41, pp. 549-557, Apr. 1993.
-
K. East, "Monte Carlo simulation of Schottky barrier mixers and varactors", in Proc. 6th Int. Space Terahertz Technol. Symp., 1995, pp. 442-446.
-
V. Krozer and A. Grüb, "A novel fabrication technique and process simulation by an analytical model for near-ideal epitaxial Pt/GaAs Schottky barrier diodes", Solid State Electron., vol. 37, no. 1, pp.
169-180, 1994.
-
J. Grajal, V. Krozer, F. Maldonado, E. Gonzalez, C.-I. Lin and H. L. Hartnagel, "Tripler circuit design with Schottky varactors", in IEEE 6th Int. Terahertz Electron. Conf., Leeds, U.K.,Sept. 4 1998.
-
J. Grajal, V. Krozer, E. González, J. Gismero, F. Maldonado, C. Lin, A. Simon, and H. L. Hartnagel, "Characterization of Schottky diode performance by numerical simulation coupled with harmonic balance", in 27th European Microwave Conf., Jerusalem, Israel,Sept. 1997, pp. 190-195.
-
J. Grajal, V. Krozer and F. Maldonado, "Modeling and design aspects of millimeter-wave Schottky varactor frequency multipliers", IEEE Microwave Guided Wave Lett., vol. 8, pp. 387-389, Nov. 1998.
-
M. F. Zybura, J. R. Jones, S. H. Jones and G. B. Tait, "Simulation of 100-300 GHz solid state harmonic sources", IEEE Trans. Microwave Theory Tech., vol. 43, pp. 955-961, Apr. 1995.
-
S. Selberherr, Analysis and Simulation of Semiconductor Devices, Berlin: Germany: Springer-Verlag, 1984.
-
H. Hjelmgren, "Numerical modeling of hot electrons in n-GaAs Schottky-barrier diodes", IEEE Trans. Electron Devices, vol. 37, pp. 1228-1234, May 1990.
-
R. B. Darling, "High field, nonlinear electron transport in lightly doped Schottky-barrier diodes", Sold State Electron., vol. 31, pp. 1031-1047, June 1988.
-
J. O. Nylander, F. Masszi, S. Selberherr and S. Berg, "Computer simulations of Schottky contacts with a nonconstant recombination velocity", Solid State Electron., vol. 32, pp. 363-367, Aug. 1989.
-
J. Adams and T. Tang, "A revised boundary condition for numerical analysis of Schottky barrier diodes", IEEE Electron Device Lett., vol. EDL-7, pp. 525-527,
Sept. 1986.
-
Y. Ando and T. Itoh, "Calculation of transmission tunneling current across arbitrary potential barriers", J. Appl. Phys., vol. 1, pp. 1497-1502,
Feb. 1987.
-
W. Lui and M. Fukuma, "Exact solution of the Schrödinger equation across an arbitrary one-dimensional piecewise-linear potential barrier",
J. Appl. Phys., vol. 60, pp. 1555-1559, Sept. 1986.
-
U. V. Bhapkar and R. J. Mattauch, "Numerical simulation of the current-voltage characteristics of heteroepitaxial Schottky-barrier diodes", IEEE Trans.
Electron Devices, vol. 40, pp. 1038-1046, June 1993.
-
V. Rizzoli and A. Neri, "State of the art and present trends in nonlinear microwave CAD techniques", IEEE Trans. Microwave Theory Tech., vol. 36, pp. 343-365, Feb. 1988.
-
S. A. Maas, Nonlinear Microwave Circuits, Norwood, MA: Artech House, 1988.
-
G. B. Tait, "Efficient solution method for unified nonlinear microwave circuit and numerical solid-state device simulation", IEEE Microwave
Guided Wave Lett., vol. 4, pp. 420-422, Dec. 1994.
-
J. Gismero and J. Pérez, "Comparison of algorithms for the simulation of nonlinear circuits through the harmonic balance method", in IEEE Int. Circuits Syst. Symp. Dig., Portland, OR, May 1989, pp. 594-597.
-
J. S. Yuan and J. H. Ning, "Effect of impact ionization on $c_jc of heterojunction bipolar transistors", Solid State
Electron., vol. 38, no. 3, pp. 742-744, 1995.
-
M. T. Faber, J. Chramiec and M. E. Adamski, Microwave and Millimeter-Wave Diode Frequency Multipliers
, Norwood, MA: Artech House, 1995.
-
A. Jelenski, A. Grüb, V. Krozer and H. L. Hartnagel, "New approach to the design and the fabrication of the Schottky barrier diodes", IEEE Trans. Microwave Theory Tech., vol. 41, pp. 549-557, Apr. 1993.
-
V. Krozer, "Verfahren der kleinsignal-und großsignal-analyse und charakterisierung
von mikrowellenschaltungen und bauelementen mit hilfe der volterra-reihe", Ph.D. dissertation, Dept. Elect. Eng., Tech.
Univ. Darmstadt, Darmstadt, Germany,
1991.
-
K. N. Ratnakumar, "Avalanche breakdown voltage of a microwave PIN diode", Solid State Electron., vol. 19, pp. 656-657, 1975.
-
J. M. Golio, Microwave MESFETs and HEMTs, Norwood, MA: Artech
House, 1991.
-
C.-I. Lin, V. Krozer, J. Grajal, A. Simon and H. L. Hartnagel, "Schottky varactor diode optimization for frequency multipliers", presented at the 5th Int. Terahertz Electron. Workshop, Grenoble, France,Sept. 19, 1997.
-
T. Crowe, T. C. Grein, R. Zimmermann and P. Zimmermann, "Progress toward solid-state local oscillators at 1 THz", IEEE Microwave Guided Wave Lett., vol. 6, pp. 207-208,
May 1996.