Method of speeding power-up of an amplifier, and amplifier

Information

  • Patent Grant
  • 6249185
  • Patent Number
    6,249,185
  • Date Filed
    Monday, September 14, 1998
    26 years ago
  • Date Issued
    Tuesday, June 19, 2001
    23 years ago
Abstract
An amplifier powered by a selectively engageable voltage source and a method for operating the amplifier. The amplifier includes first and second electrodes for receiving an input signal to be amplified. The first and second electrodes are adapted to be respectively connected to coupling capacitors. The amplifier also includes a differential amplifier having inputs respectively connected to the first and second electrodes, and having an output. The amplifier additionally includes selectively engageable resistances coupled between the voltage source and respective inputs of the differential amplifier and defining, with the coupling capacitors, the high pass characteristics of the circuit. The amplifier further includes second selectively engageable resistances coupled between the voltage source and respective inputs of the differential amplifier. The second resistances respectively have smaller values than the first mentioned resistances, and are engaged and then disengaged in response to the voltage source being engaged.
Description




COPYRIGHT AUTHORIZATION




A portion of the disclosure of this patent document, including the appended microfiche, contains material which is subject to copyright protection. The copyright owner has no objection to the facsimile reproduction by anyone of the patent document or the patent disclosure, as it appears in the Patent and Trademark Office patent file or records, but otherwise reserves all copyright rights whatsoever.




REFERENCE TO MICROFICHE




Appended hereto is a microfiche copy of a software guide entitled “Micron RFID Systems Developer's Guide,” May 2, 1996. This appendix has 5 microfiche providing 266 total frames.




TECHNICAL FIELD




This invention relates to radio frequency communication devices. More particularly, the invention relates to radio frequency identification devices for inventory control, object monitoring, or for determining the existence, location or movement of objects.




BACKGROUND OF THE INVENTION




As large numbers of objects are moved in inventory, product manufacturing, and merchandising operations, there is a continuous challenge to accurately monitor the location and flow of objects. Additionally, there is a continuing goal to interrogate the location of objects in an inexpensive and streamlined manner. Furthermore, there is a need for tag devices suitably configured to mount to a variety of objects including goods, items, persons, or animals, or substantially any moving or stationary and animate or inanimate object. One way of tracking objects is with an electronic identification system.




One presently available electronic identification system utilizes a magnetic field modulation system to monitor tag devices. An interrogator creates a magnetic field that becomes detuned when the tag device is passed through the magnetic field. In some cases, the tag device may be provided with a unique identification code in order to distinguish between a number of different tags. Typically, the tag devices are entirely passive (have no power supply), which results in a small and portable package. However, this identification system is only capable of distinguishing a limited number of tag devices, over a relatively short range, limited by the size of a magnetic field used to supply power to the tags and to communicate with the tags.




Another electronic identification system utilizes an RF transponder device affixed to an object to be monitored, in which an interrogator transmits an interrogation signal to the device. The device receives the signal, then generates and transmits a responsive signal. The interrogation signal and the responsive signal are typically radio-frequency (RF) signals produced by an RF transmitter circuit. Since RF signals can be transmitted over greater distances than magnetic fields, RF-based transponder devices tend to be more suitable for applications requiring tracking of a tagged device that may not be in close proximity to an interrogator. For example, RF-based transponder devices tend to be more suitable for inventory control or tracking.











BRIEF DESCRIPTION OF THE DRAWINGS





FIG. 1

is a simplified circuit schematic of a quick bias AC-coupled video amplifier included in the integrated circuit.





FIG. 2

is a plot of voltage versus angular frequency illustrating selection of components to realize a desired high pass roll off frequency in the amplifier of FIG.


1


.











SUMMARY OF THE INVENTION




In accordance with an aspect of the present invention, an amplifier powered by a selectively engageable voltage source is disclosed. The amplifier includes first and second electrodes for receiving an input signal to be amplified. The first and second electrodes are adapted to be respectively connected to coupling capacitors. The amplifier also includes a differential amplifier having inputs respectively connected to the first and second electrodes, and having an output. The amplifier additionally includes selectively engageable resistances coupled between the voltage source and respective inputs of the differential amplifier and defining, with the coupling capacitors, the high pass characteristics of the circuit. The amplifier further includes second selectively engageable resistances coupled between the voltage source and respective inputs of the differential amplifier. The second resistances respectively have smaller values than the first mentioned resistances, and are engaged and then disengaged in response to the voltage source being engaged.




In another aspect, the present invention includes a method of speeding power up of an amplifier stage powered by a voltage source. The amplifier includes first and second electrodes for receiving an input signal to be amplified. The input electrodes are adapted to be respectively connected to coupling capacitors. The amplifier also includes a differential amplifier having inputs respectively connected to the first and second electrodes, and having an output. The amplifier further includes selectively engageable resistances coupled between the voltage source and respective inputs of the differential amplifier. The method includes shorting around the selectively engageable resistances for a predetermined amount of time in response to the voltage source being engaged.




DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS




This disclosure of the invention is submitted in furtherance of the constitutional purposes of the U.S. Patent Laws “to promote the progress of science and useful arts” (Article 1, Section 8).





FIG. 1

provides a simplified circuit schematic of a quick bias AC-coupled video amplifier


270


. The video amplifier goes from a power down (unbiased) state to a fully biased state quickly despite a large value effective resistance and capacitor used to bias and couple the amplifier.




The video amplifier


270


has an input adapted to be connected to V


in


and includes coupling capacitors


292


and


294


at the input.




The video amplifier includes a voltage divider


276


including two resistors


278


and


280


in series, and four transistors


282


,


284


,


286


, and


288


shown to the right of a voltage divider in FIG.


48


. Transistors


286


and


288


, the rightmost two of the four transistors, are long L (length), narrow W (width) p-channel devices operated in linear mode to provide very high effective resistance R


EFF


. Transistors


286


and


288


are used instead of resistors because it is hard to provide high resistances using resistors without generating undesirable parasitic capacitance and without taking up more space on an integrated circuit die. The video amplifier


270


includes a differential amplifier


290


. The voltage divider


276


sets a bias voltage at the inputs of the differential amplifier


290


. The effective resistance R


EFF


, in conjunction with the value of coupling capacitor


292


or


294


, sets the angular high pass roll off frequency for the amplifier according to a relationship of ω


HP


=1/((R


EFF


+R1||R2)C1) where ω is angular frequency (2π times frequency), R1 and R2 are the values of the resistors


278


and


280


included in the voltage divider


276


, and C


1


is the value of one of the coupling capacitors. The values of R


EFF


, and the coupling capacitors are adjusted to achieve the desired high pass roll off frequency ω


HP


as illustrated in FIG.


2


. The high pass roll off frequency determines what frequencies will be amplified or attenuated. The high pass roll off frequency is set low enough so that important data is not excluded.




In many applications, the values of these components are high. For example, in the integrated circuit


16


, R


EFF


is approximately two MegaOhms, and the capacitance of each of the coupling capacitors


292


and


294


is approximately one picoFarad, which gives an angular high pass frequency of approximately 1/((2MegaOhms)(1pF))=500 kiloradians/second, or a high pass frequency of 500/2π=79.6 kHz.




In a powered down state, input Vreg is zero. Upon power up, there is a delay before the inputs reach the desired bias voltage, according to a relationship V


BIAS


=R1/(R1+R2)V


reg


. The time constant equals R


EFF


C1 which is approximately equal to two microseconds.




If it is decided to wait five time constants, this requires about ten microseconds.




In accordance with the invention, transistors


282


and


284


are added (the two leftmost transistors of the four). These are short L (length) wide W (width) devices which allow the bias voltage to be established in much less time by shorting around the high resistance of the right two transistors


286


and


288


. The time constant is thereby reduced. This shorting occurs when an input RXEN is low. Before using the circuit as an amplifier, RXEN is taken high (after bias voltage is achieved). This restores the desired frequency behavior.




In compliance with the statute, the invention has been described in language more or less specific as to structural and methodical features. It is to be understood, however, that the invention is not limited to the specific features shown and described, since the means herein disclosed comprise preferred forms of putting the invention into effect. The invention is, therefore, claimed in any of its forms or modifications within the proper scope of the appended claims appropriately interpreted in accordance with the doctrine of equivalents.



Claims
  • 1. An amplifier powered by a selectively engageable voltage source, the amplifier comprising:first and second electrodes for receiving an input signal to be amplified, the input first and second electrodes being adapted to be respectively connected to coupling capacitors; a differential amplifier having inputs respectively connected to the first and second electrodes, and having an output; selectively engageable resistances between the voltage source and respective inputs of the differential amplifier and defining, with the coupling capacitors, the high pass characteristics of the circuit; and second selectively engageable resistances between the voltage source and respective inputs of the differential amplifier, the second resistances respectively having smaller values than the first mentioned resistances, the second resistances being engaged then disengaged in response to the voltage source being engaged.
  • 2. An amplifier in accordance with claim 1 and further comprising coupling capacitors respectively connected to the first and second electrodes.
  • 3. An amplifier in accordance with claim 1 and further comprising a voltage divider, and wherein the first mentioned and second resistances are connected to the voltage source via the voltage divider.
  • 4. An amplifier in accordance with claim 1 wherein the first mentioned resistances comprise respective transistors.
  • 5. An amplifier in accordance with claim 1 wherein the first mentioned resistances comprise respective p-type transistors.
  • 6. An amplifier in accordance with claim 1 wherein the second resistances comprise respective transistors.
  • 7. An amplifier in accordance with claim 1 wherein the second resistances comprise respective p-type transistors.
  • 8. A method of speeding power up of an amplifier stage powered by a voltage source and including first and second electrodes for receiving an input signal to be amplified, the input electrodes being adapted to be respectively connected to coupling capacitors; a differential amplifier having inputs respectively connected to the first and second electrodes, and having an output; and selectively engageable resistances between the voltage source and respective inputs of the differential amplifier, the method comprising:shorting around the selectively engageable resistances for a predetermined amount of time in response to the voltage source being engaged.
  • 9. A method in accordance with claim 8 wherein the shorting step comprises engaging selectively engageable second resistances respectively connected in parallel with the first mentioned resistances and having respective resistance values lower than the first mentioned resistances.
CROSS-REFERENCE TO RELATED APPLICATION

This is a division of, and additional disclosure is provided in, U.S. patent application Ser. No. 08/705,043, filed Aug. 29, 1996, now U.S. Pat. No. 6,130,602, issued on Oct. 10, 2000, which patent is hereby incorporated herein by reference, which in turn claims priority from U.S. Provisional Application Serial No. 60/017,900, filed May 13, 1996.

US Referenced Citations (84)
Number Name Date Kind
3299424 Vinding Jan 1967
3852755 Works et al. Dec 1974
4075632 Baldwin et al. Feb 1978
4572976 Fockens Feb 1986
4656463 Anders et al. Apr 1987
4700179 Francher Oct 1987
4724427 Carroll Feb 1988
4743864 Nakagawa et al. May 1988
4746830 Holland May 1988
4786903 Grindahl et al. Nov 1988
4800543 Lyndon-James et al. Jan 1989
4816839 Landt Mar 1989
4827395 Anders et al. May 1989
4853705 Landt Aug 1989
4854328 Pollack Aug 1989
4857893 Carroll Aug 1989
4862160 Ekchian et al. Aug 1989
4870419 Baldwin et al. Sep 1989
4888591 Landt et al. Dec 1989
4890072 Espe et al. Dec 1989
4912471 Tyburski et al. Mar 1990
4926182 Ohta et al. May 1990
4952889 Irwin et al. Aug 1990
5030807 Landt et al. Jul 1991
5075691 Garay et al. Dec 1991
5086389 Hassett et al. Feb 1992
5122687 Schmidt Jun 1992
5128938 Borras Jul 1992
5130668 Emslie et al. Jul 1992
5134085 Gilgen et al. Jul 1992
5142292 Chang Aug 1992
5144314 Malmberg et al. Sep 1992
5151624 Stegherr et al. Sep 1992
5164985 Nysen et al. Nov 1992
5175774 Traux et al. Dec 1992
5191295 Necoechea Mar 1993
5206609 Mijuskovic Apr 1993
5218343 Stobbe et al. Jun 1993
5252979 Nysen Oct 1993
5272367 Dennison et al. Dec 1993
5281927 Parker Jan 1994
5287112 Schuermann Feb 1994
5294928 Cooper et al. Mar 1994
5300875 Tuttle Apr 1994
5323150 Tuttle Jun 1994
5355513 Clarke et al. Oct 1994
5365551 Snodgrass et al. Nov 1994
5374930 Schuermann Dec 1994
5394444 Silvey et al. Feb 1995
5406263 Tuttle Apr 1995
5412665 Gruodis et al. May 1995
5416434 Koostra et al. May 1995
5420757 Eberhardt et al. May 1995
5430441 Bickley et al. Jul 1995
5444223 Blama Aug 1995
5448110 Tuttle et al. Sep 1995
5448242 Sharpe et al. Sep 1995
5450087 Hurta et al. Sep 1995
5461385 Armstrong Oct 1995
5471212 Sharpe et al. Nov 1995
5478991 Watanabe et al. Dec 1995
5489546 Ahmad et al. Feb 1996
5499214 Mori et al. Mar 1996
5500650 Snodgrass et al. Mar 1996
5525992 Froschermeier Jun 1996
5541583 Mandelbaum Jul 1996
5541585 Duhame et al. Jul 1996
5568512 Rotzoll Oct 1996
5576647 Sutardja et al. Nov 1996
5606323 Heinrich et al. Feb 1997
5621412 Sharpe et al. Apr 1997
5623224 Yamada et al. Apr 1997
5649296 MacLellan et al. Jul 1997
5657359 Sakae et al. Aug 1997
5677667 Leseky et al. Oct 1997
5686864 Martin et al. Nov 1997
5686920 Hurta et al. Nov 1997
5719550 Bloch et al. Feb 1998
5721678 Widl Feb 1998
5721783 Anderson Feb 1998
5726630 Marsh et al. Mar 1998
5774022 Griffin et al. Jun 1998
5815042 Chow et al. Sep 1998
6130602 O'Toole et al. Oct 2000
Non-Patent Literature Citations (12)
Entry
“CMOS Analog Integrated Circuits Based on Weak Inversion Operation”, by Eric Vittoz and Jean Fellrath, IEEE Journal of Solid State Circuits, vol. SC-12, No. 3, Jun. 1977.
Mitsubishi Motors Corporation Web Page, 1995.
“Digital RF/ID Enhances GPS”, by John R. Tuttle, Proceedings of the Second Annual Wireless Symposium, pp. 406-411, Feb. 15-18, 1994, Santa Clara, CA.
“Micron Morning Report”, The Idaho Statesman, Jul. 16, 1993.
“A Low-Power Spread Spectrum CMOS RFIC for Radio Identification Applications”, by John R. Tuttle, Conference Proceedings from RF Expo West, pp. 216-222, Mar. 22-24, 1994, San Jose, CA.
Provisional Application, Serial No. 60/023,321, Filed Jul. 30, 1996.
Provisional Application, Serial No. 60/023,318, Filed Jul. 30, 1996.
“Micron RFID Communications Protocol Manual,” Jul. 22, 1993, Pre-Release Version 0.95, pp. 1-71.
Designing Detectors for RF/ID Tags, Raymond Waugh, RF Expo West Conference, pp. 1-12, Jan. 29-Feb. 1, 1995.
Analysis and Design of Analog Integrated Circuits, Paul R. Gray & Robert G. Meyer, pp. 667-681, 1993.
Analog Integrated Circuits for Comunication (Principles, Stimulation and Design), Donald O. Pederson & Kartikeya Mayaram, pp. 431-433, 1991.
A Precise Four-Quadrant Multiplier With Subnanosecond Response, B. Gilbert, IEEE Journal of Solid State Circuits, pp. 365-373, 1968.
Provisional Applications (1)
Number Date Country
60/017900 May 1996 US