Title :
A Low Noise Figure 1.2-V CMOS GPS Receiver Integrated as a Part of a Multimode Receiver
Author :
Gustafsson, Mikael ; Parssinen, Aarno ; Bjorksten, P. ; Mäkitalo, Mika ; Uusitalo, Arttu ; Kallioinen, Sami ; Hallivuori, Juha ; Korpi, Petri ; Rintamäki, Sami ; Urvas, Ilkka ; Saarela, Tuomas ; Suhonen, Tero
Author_Institution :
Nokia Res. Center, Helsinki
fDate :
7/1/2007 12:00:00 AM
Abstract :
This paper presents what kind of challenges are posed when a global positioning system (GPS) receiver is being added to a multiradio terminal. The GPS receiver chain is integrated as a part of a multiband and multimode receiver, designed for global system for mobile communications (GSM) and wideband code division multiple access (WCDMA). The hostile radio environment challenges in a terminal level are discussed. Especially, the modifications of the additional GPS mode to an existing receiver ASIC with minor and most necessary changes to the implementation is discussed and presented. The IC is implemented in a 0.13-mum CMOS technology without any analog options. At 1.2-V supply voltage and total power dissipation of 49 mW for the analog signal path, the proposed GPS receiver features a noise figure of 2.2 dB and an out-of-band IIP3 of +24 dBm for the worst-case test scenario, which makes it suitable to cellular handset usage in a demanding interference environment.
Keywords :
CMOS integrated circuits; Global Positioning System; application specific integrated circuits; cellular radio; code division multiple access; radio receivers; CMOS GPS receiver; WCDMA; cellular handset; global positioning system; hostile radio environment; mobile communications; multimode receiver; multiradio terminal; size 0.13 mum; voltage 1.2 V; wideband code division multiple access; Analog integrated circuits; Application specific integrated circuits; CMOS analog integrated circuits; CMOS technology; GSM; Global Positioning System; Multiaccess communication; Noise figure; Receivers; Wideband; CMOS radio receiver; direct conversion receiver; global positioning system; global system for mobile communications; wideband code division multiple access;
Journal_Title :
Solid-State Circuits, IEEE Journal of
DOI :
10.1109/JSSC.2007.899097