IMPEDANCE TRANSFORMER WITH NON-COUPLED TRANSMISSION LINE PATHS FOR HIGH FREQUENCY OPERATION
An impedance transformer is provided. The impedance transformer may comprise a substrate, an input and output port. A non-coupled transmission line path may be mounted within the substrate and extend along the substrate between the input and output port. The non-coupled transmission line path may comprise a plurality of transmission lines connected in series. At least one transmission line is a parallel combination of two transmission lines.
1 . An impedance transformer comprising:
a substrate;
an input port;
an output port; and
a non-coupled transmission line path mounted within the substrate and extending along the substrate between the input port and the output port, the non-coupled transmission line path comprising a plurality of transmission lines connected in series, wherein at least one transmission line of the plurality of transmission lines is a parallel combination of two transmission lines.
2 . The impedance transformer of claim 1 , wherein the non-coupled transmission line path is configured to operate in a frequency bandwidth range of about 100 MHz to 6000 MHz.
3 . The impedance transformer of claim 1 , wherein the plurality of transmission lines comprises a first transmission line and a second transmission line, the second transmission line is connected in series with the first transmission line, where a width of the second transmission line is different from a width of the first transmission line.
4 . The impedance transformer of claim 3 , wherein a length of the second transmission line is a same as a length of the first transmission line.
5 . The impedance transformer of claim 4 , wherein the length and the width of the first transmission line is configured to a match a first target impedance.
6 . The impedance transformer of claim 4 , wherein the length and the width of the second transmission line is configured to a match a second target impedance.
7 . The impedance transformer of claim 1 , wherein each of the two transmission lines which comprise the parallel combination has a same length and width.
8 . The impedance transformer of claim 7 , wherein the length and width of each of the two transmission lines is configured to collectively match a target impedance.
9 . The impedance transformer of claim 1 , wherein the input port and the output port have different impedances.
10 . The impedance transformer of claim 3 , wherein the first transmission line comprises a plurality of portions, each portion having an extending length, where the extending length of adjacent portions are substantially orthogonal to each other, such that the first transmission line meanders within the substrate.
11 . The impedance transformer of claim 10 , wherein the second transmission line comprises a plurality of portions, where a first portion of the second transmission line is connected to a terminus portion of the first transmission line and extends in an extending length in a same direction, where the extending length of adjacent portions of the second transmission line are substantially orthogonal to each other, such that the second transmission line meanders within the substrate.
12 . The impedance transformer of claim 11 , wherein each of the two transmission lines which comprise the parallel combination comprises a plurality of portions, where a first portion of each of the two transmission lines is connected to a terminus portion of the second transmission line and extends in an extending length in a direction substantially orthogonal to the extending length of the terminus portion of the second transmission line.
13 . The impedance transformer of claim 1 , wherein one or more of the plurality of transmission lines are plated.
14 . The impedance transformer of claim 13 , wherein the plating comprises tin.
15 . An impedance transformer comprising:
a multi-layer substrate comprising:
a first transmission line path mounted within a first layer of the multi-layer substrate and extending along the substrate between an input port and an output port, the first transmission line path comprising a plurality of first transmission lines connected in series, wherein at least one transmission line of the first transmission line path is a parallel combination of two transmission lines; and
a second transmission line path mounted within a second layer of the multi-layer substrate and extending along the substrate between the input port and the output port, the second transmission line path comprising a plurality of second transmission lines connected in series, wherein at least one transmission line of the second transmission line path is a parallel combination of two transmission lines; and
at least one via connecting the first transmission line path and the second transmission line path between the first layer and the second layer.