This invention relates to current mirrors used in integrated circuits and in particular to a high-side mirror using only n-type transistors.
Current mirrors are very well known circuits, widely used in integrated electronic circuits. Improvements in performance of current mirrors resulted in the creation of a wide variety of different implementations, the most common being biasing circuits and current amplifiers.
In general terms, current mirrors are circuits having an input side—input mirror—in communication with an input current source and an output side—output mirror—to which the input current is mirrored.
State of the art current mirrors employ, in general, pairs of similar transistors. The low-side mirrors are generally implemented using n-type transistors such as npn and NMOS and mirror currents with respect to ground. The high-side mirrors are generally implemented using p-type transistors such as pnp and PMOS and mirror currents with respect to a positive supply plane.
However, in several state of the art integrated circuit manufacturing processes p-type transistors are not available. For example, in GaAs HBT processes and in InP HBT processes it is not possible to manufacture high-side mirrors using p-type transistors.
Based upon the foregoing, there is a need to enable manufacturing of this basic circuit that is employed in a wide range of technologies using processes that have no p-type transistors available. Therefore, it would be advantageous to provide high-side mirrors using only n-type transistors.
It is, therefore, an object of the invention to provide a high side mirror using only n-type transistors.
In accordance with the present invention there is provided a n-type transistor current mirror for mirroring an input current I_in to an output current I_out comprising: an input node for receiving the input current I_in; an output node for providing the output current I_out; an input n-type transistor interposed between a positive supply plane and the input node with its collector being connected to the positive supply plane and its emitter being connected to the input node; an output n-type transistor interposed between the positive supply plane and the output node with its collector being connected to the positive supply plane and its emitter being connected to the output node; and, a feedback circuit interposed between the input node and the output node, the feedback circuit being in communication with a link connecting the base of the input transistor with the base of the high side transistor, the feedback circuit for maintaining base-emitter voltages of the input and the output transistor equal in order to mirror the emitter current of the input transistor to the emitter current of the output transistor.
In accordance with an aspect of the present invention there is provided a storage medium having data stored therein, the data for when executed resulting in an integrated circuit design of a n-type transistor current mirror for mirroring an input current I_in to an output current I_out comprising: an input node for receiving the input current I_in; an output node for providing the output current I_out; an input n-type transistor interposed between a positive supply plane and the input node with its collector being connected to the positive supply plane and its emitter being connected to the input node; an output n-type transistor interposed between the positive supply plane and the output node with its collector being connected to the positive supply plane and its emitter being connected to the output node; and, a feedback circuit interposed between the input node and the output node, the feedback circuit being in communication with a link connecting the base of the input transistor with the base of the high side transistor, the feedback circuit for maintaining base-emitter voltages of the input and the output transistor equal in order to mirror the emitter current of the input transistor to the emitter current of the output transistor.
In accordance with the present invention there is further provided a method for mirroring an input current I_in to an output current I_out comprising: providing an input node for receiving the input current I_in; providing an output node for providing the output current I_out; providing an input n-type transistor interposed between a positive supply plane and the input node with its collector being connected to the positive supply plane and its emitter being connected to the input node; providing an output n-type transistor interposed between the positive supply plane and the output node with its collector being connected to the positive supply plane and its emitter being connected to the output node; providing a feedback circuit interposed between the input node and the output node, the feedback circuit being in communication with a link connecting the base of the input transistor with the base of the high side transistor; and, mirroring the emitter current of the input transistor to the emitter current of the output transistor by maintaining base-emitter voltages of the input and the output transistor equal using the feedback circuit.
In accordance with the present invention there is further provided a current mirror for mirroring an input current I_in to an output current I_out comprising: an input node for receiving the input current I_in; an output node for providing the output current I_out; an input resistor interposed between a positive supply plane and the input node; an output resistor interposed between the positive supply plane and the output node; and, a feedback circuit interposed between the input node and the output node, the feedback circuit for maintaining voltage drops across the input and the output resistors equal in order to mirror the input current to the output current.
In accordance with an aspect of the present invention there is provided a storage medium having data stored therein, the data for when executed resulting in an integrated circuit design of a current mirror for mirroring an input current I_in to an output current I_out comprising: an input node for receiving the input current I_in; an output node for providing the output current I_out; an input resistor interposed between a positive supply plane and the input node; an output resistor interposed between the positive supply plane and the output node; and, a feedback circuit interposed between the input node and the output node, the feedback circuit for maintaining voltage drops across the input and the output resistors equal in order to mirror the input current to the output current.
In accordance with the present invention there is further provided a method for mirroring an input current I_in to an output current I_out comprising: providing an input node for receiving the input current I_in; providing an output node for providing the output current I_out; providing an input resistor interposed between a positive supply plane and the input node; providing an output resistor interposed between the positive supply plane and the output node; providing a feedback circuit interposed between the input node and the output node; and, mirroring the input current to the output current by maintaining voltage drops across the input and the output resistors equal using the feedback circuit.
Exemplary embodiments of the invention will now be described in conjunction with the following drawings, in which:
In the following description the various embodiments of the invention will be illustrated using npn transistors. As will become evident to those of skill in the art, the circuits are extendable to other kinds of n-type transistors such as, for example, NMOS transistors. For simplicity, the expressions “base, collector, and emitter” are used in the following description. As is evident to those skilled in the art, these expressions are easily substituted with the expressions “gate, drain, and source”, respectively, when referring to FET devices like NMOS transistors.
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In the first and the second embodiment of the invention the output DC voltage of the current mirror is equal to the input DC voltage. This is undesirable in some applications. Namely, an ideal current mirror has a fixed input voltage, and its output current is independent from the output voltage. Moreover, its output DC voltage is independent from the mirror itself and determined by the load. This independence from the output voltage is achieved in the embodiments described below.
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In a current mirror it is desired to have low input impedance and high output impedance. Whilst in the above embodiments the input impedance tends to be low as desired, since it is equal to the emitter impedance of the common-collector, the output impedance tends to be low as well. The loop gain of the feedback circuit raises the output impedance to a desired level as shown in equation (1):
where A is the loop gain. It is noted that in order to reach the level of impedance equal to r0, the loop gain is in the order of A=gm r0=VA/VT where VA is the Early voltage and VT is the thermal voltage.
The current mirrors with only n-type transistors according to the invention are highly advantageous by overcoming the shortcomings of technologies such as MOBI3, GaAs, and InP of being unable to provide p-type transistors.
Numerous other embodiments of the invention will be apparent to persons skilled in the art without departing from the spirit and scope of the invention as defined in the appended claims.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB05/53370 | 10/13/2005 | WO | 00 | 7/7/2009 |
Number | Date | Country | |
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60618564 | Oct 2004 | US |