Please use this identifier to cite or link to this item: http://drsr.daiict.ac.in//handle/123456789/393
Title: Design of a novel high linearity down conversion mixer for GSM band applications
Authors: Gupta, Sanjeev
Srinaga, Nikhil N.
Keywords: Transmitter-receivers
Wireless communication systems
Equipment and supplies
Design and construction
CMOS
RF
MIXER
Microwave circuits
Wireless communication systems
Radio
Noise cancelation
Issue Date: 2012
Publisher: Dhirubhai Ambani Institute of Information and Communication Technology
Citation: Srinaga, Nikhil N. (2012). Design of a novel high linearity down conversion mixer for GSM band applications. Dhirubhai Ambani Institute of Information and Communication Technology, ix, 58 p. (Acc.No: T00356)
Abstract: Double balanced Gilbert cell mixer (GCM) is the mostly used kind of mixer as it provides conversion gain and has port to port isolation. This mixer lacks in linearity and noise figure which are to be taken care in designing mixer. Linearity is important for mixer design, to get an undistorted signal at its output. Similarly noise figure of double balanced GCM is more due to more number of components and is to be decreased to add less noise to RF signal. To increase the linearity of mixer, necessary changes are to be done at transconductance stage. The linearity of the mixer proposed is increased, by making use of an additional capacitor in parallel to gate capacitance and derivative superposition method. Derivative superposition method needs more number of transistors at transconductance stage resulting in increase of parasitic capacitance, resulting in an increase of flicker noise from indirect mechanism. This flicker noise due to parasitic capacitance is reduced by placing a tuned inductor in parallel to it
URI: http://drsr.daiict.ac.in/handle/123456789/393
Appears in Collections:M Tech Dissertations

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