This invention relates to an improved high voltage multiplexer element and to multiplexer system made therewith, and has a particular application in analog to digital converter (ADC) applications.
An analog to digital converter (ADC) may be shared between multiple measurement channels using a voltage multiplexer. The multiplexer allows for any individual input channel to be connected to the ADC, while at the same time disconnecting other channels. This provides for an economic solution for the measurement problem when concurrent measurements are not needed. This saves area on the integrated circuit device by avoiding the need for a dedicated ADC for each measurement channel. The voltage multiplexer is a simple circuit composed of switches implemented using transistors and is generally much smaller in area compared to the ADC.
In many applications it is desirable to measure voltages which are higher than the voltage allowed for reliable operation of the transistor switches in a given silicon processing technology. If the input voltage to the multiplexer is higher than the voltage allowed for a reliable transistor, then the transistor will either breakdown or exhibit a reduced mean time to failure. One way to address this problem is to attenuate the input voltage before it is applied to the multiplexer, using a voltage divider. The combination of resistors can be designed to force the voltage to be within the tolerable voltage range of the transistors. In addition to the extra components needed, the disadvantage of this approach is high noise and reduced measurement accuracy due to the component tolerances of the voltage divider resistors. Another potential disadvantage of this approach is the static current drawn by the voltage divider resistors.
In accordance with various aspects of the subject invention in at least one embodiment the invention presents an improved high voltage multiplexer element which is simpler, less expensive and requires less space, which eliminates the need for a voltage reducing voltage divider and which is more accurate and has better signal to noise characteristics.
The subject invention results from the realization that, in part, an improved smaller, more accurate and less noisy high voltage multiplexer element in various aspects can be achieved by using first and second MOSFET switches connected in series between the input resistance and the output of the multiplexer element and a third MOSFET switch connected between the junction of the first and second MOSFET switches and a supply voltage; the first MOSFET switch is drain engineered and has drain source breakdown voltage higher than the supply.
The subject invention, however, in other embodiments, need not achieve all these objectives and the claims hereof should not be limited to structures or methods capable of achieving these objectives.
This invention features a high voltage multiplexer element including a voltage to current converting input resistance connected to the input of the element, first and second MOSFET switches connected in series between the input resistance and the output of the multiplexer element, and a third MOS switch connected between the junction of the first and second MOSFET switches and a voltage equal to or less than the supply; the first MOSFET switch being drain engineered and having drain-source breakdown voltage higher than the supply.
In a preferred embodiment the first and second MOSFET switches may be NMOS switches and the third MOSFET switch may be a PMOS switch. The first and second MOSFET switches may be PMOS switches and the third MOSFET switch may be an NMOS switch.
This invention also features a high voltage multiplexer system including a plurality of multiplexer elements including a voltage to current converting input resistance connected to the input of each the element, first and second MOSFET switches connected in series between the input resistance and the output of each multiplexer element, and a third MOS switch connected between the junction of the first and second MOSFET switches and a voltage equal to or less than the supply; the first MOSFET switch being drain engineered and having drain-source breakdown voltage higher than the supply.
In preferred embodiment the first and second MOSFET switches may be NMOS switches and the third MOSFET switch may be a PMOS switch. The first and second MOSFET switches may be PMOS switches and the third MOSFET switch may be an NMOS switch.
This invention also features a high voltage multiplexer system for an analog to digital converter including an integrator having an input resistance and an operational amplifier, loop filter, quantizer and a feedback digital to analog converter. The multiplexer system includes a plurality of multiplexer elements each including first and second MOSFET switches connected in series between the input resistance and the operational amplifier, and a third MOS switch connected between the junction of the first and second MOSFET switches and a voltage equal to or less than the supply; the first MOSFET switch being drain engineered and having drain-source breakdown voltage higher than the supply.
In a preferred embodiment the first and second MOSFET switches may be NMOS switches and the third MOSFET switch may be a PMOS switch. The first and second MOSFET switches may be PMOS switches and the third MOSFET switch may be an NMOS switch.
Other objects, features and advantages will occur to those skilled in the art from the following description of a preferred embodiment and the accompanying drawings, in which:
Aside from the preferred embodiment or embodiments disclosed below, this invention is capable of other embodiments and of being practiced or being carried out in various ways. Thus, it is to be understood that the invention is not limited in its application to the details of construction and the arrangements of components set forth in the following description or illustrated in the drawings. If only one embodiment is described herein, the claims hereof are not to be limited to that embodiment. Moreover, the claims hereof are not to be read restrictively unless there is clear and convincing evidence manifesting a certain exclusion, restriction, or disclaimer.
The invention disclosed herein allows for the measurement of high voltages without compromising the reliability of the multiplexer semiconductor (transistor) switches and without using a voltage divider with its attendant accuracy and noise problems. It also avoids a need for dedicated ADC's for each high voltage channel and thereby provides for an area efficient solution.
There is shown in
In
In accordance with one embodiment of this invention high voltage multiplexer element 40,
One useful application of the multiplexer elements and system according to this invention is with a continuous-time ΔΣ ADC (CT ΔΣ ADC) or any other operational amplifier based continuous-time circuit which has an input structure composed of a resistor connected to the operational amplifier summing junction, such as linear filters, companding circuits, log amplifiers, signal conditioner circuits amongst others.
A typical continuous-time ΔΣ ADC 80 is shown in
While multiplexer elements 40 and multiplexer system 45 using them are shown in single ended configuration, this is not a necessary limitation of the invention, for as shown in
Although specific features of the invention are shown in some drawings and not in others, this is for convenience only as each feature may be combined with any or all of the other features in accordance with the invention. The words “including”, “comprising”, “having”, and “with” as used herein are to be interpreted broadly and comprehensively and are not limited to any physical interconnection. Moreover, any embodiments disclosed in the subject application are not to be taken as the only possible embodiments.
In addition, any amendment presented during the prosecution of the patent application for this patent is not a disclaimer of any claim element presented in the application as filed: those skilled in the art cannot reasonably be expected to draft a claim that would literally encompass all possible equivalents, many equivalents will be unforeseeable at the time of the amendment and are beyond a fair interpretation of what is to be surrendered (if anything), the rationale underlying the amendment may bear no more than a tangential relation to many equivalents, and/or there are many other reasons the applicant can not be expected to describe certain insubstantial substitutes for any claim element amended.
Other embodiments will occur to those skilled in the art and are within the following claims.