UPC8230TU CEL | Alldatasheet

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Technical content

DESCRIPTION

The MPC8230TU is a silicon germanium carbon (SiGe:C) monolithic integrated circuit designed as low noise amplifier for GPS. This device exhibits low noise figure and high power gain characteristics, so this IC can improve the sensitivity of GPS receiver. In addition, the MPC8230TU which is included output matching circuit contributes to reduce external components and system size. The package is 8-pin lead-less minimold suitable for surface mount. This IC is manufactured using our UHS4 (Ultra High Speed Process) SiGe:C bipolar process.

FEATURES

  • Low noise : NF = 0.85 dB TYP. @ f in = 1 575 MHz
  • High gain : G P = 18.5 dB TYP. @ fin = 1 575 MHz
  • Low current consumption : I CC = 6.0 mA TYP. @ VCC = 3.0 V
  • Built-in power-saving function
  • High-density surface mounting : 8-pin lead-less minimold package (2.0 s 2.0 s 0.5 mm)
  • Included output matching circuit
  • Included very robust bandgap regulator (Small V CC and TA dependence)
  • Included protection circuits for ESD APPLICATION
  • Low noise amplifier for GPS

ORDERING INFORMATION

Part Number Order Number Package Marking Supplying Form MPC8230TU-E2 MPC8230TU-E2-A 8-pin lead-less minimold (Pb-Free) 8230 v 8 mm wide embossed taping v Pin 5, 6, 7, 8 indicates pull-out direction of tape v Qty 5 kpcs/reel Remark To order evaluation samples, contact your nearby sales office. Part number for sample order: MPC8230TU DATA SHEET Caution Observe precautions when handling because these devices are sensitive to electrostatic discharge. BIPOLAR ANALOG INTEGRATED CIRCUIT MPC8230TU SiGe:C LOW NOISE AMPLIFIER FOR GPS Document No. PU10612EJ01V0DS (1st edition) Date Published April 2006 NS CP(N) The information in this document is subject to change without notice. Before using this document, please confirm that this is the latest version.

PIN CONNECTIONS AND INTERNAL BLOCK DIAGRAM Pin No. Pin Name 1V CC 2 N.C.

3 GND

4 INPUT

5 Power Save

6 GND

7 OUTPUT5

(Top View) 8V CC ABSOLUTE MAXIMUM RATINGS tinUsgnitaRsnoitidnoCtseTlobmySretemaraP VegatloVylppuS CC TA =+ 2 5o V0.4C Power-Saving Voltage V PS TA =+ 2 5o V0.4C PnoitapissiDrewoP D TA = +85°C Note 295 mW Operating Ambient Temperature T A 40 to +85 oC Storage Temperature T stg 55 to +150 oC PrewoPtupnI in mBd01+ Note Mounted on double-side copper-clad 50 s 50 s 1.6 mm epoxy glass PWB RECOMMENDED OPERATING RANGE Parameter Symbol MIN. TYP. MAX. Unit VegatloVylppuS CC 2.7 3.0 3.3 V Operating Ambient Temperature T A 40 +25 +85 oC Power Save Turn-on Voltage V PSon 2.2 VCC V Power Save Turn-off Voltage V PSoff 0 0.8 V Data Sheet PU10612EJ01V0DS2 MPC8230TU

ELECTRICAL CHARACTERISTICS

(TA =+ 2 5oC, VCC =V PS =3 . 0 V ,fin = 1 575 MHz, unless otherwise specified) Parameter Symbol Test Conditions MIN. TYP. MAX. Unit ItnerruCtiucriC CC No Signal (VPS = 3.0 V) 4.5 6.0 8.0 mA V(edoMgnivaS-rewoPtA PS =0V ) 1 MA GniaGrewoP P Pin = Bd125.8161mBd53 FNerugiFesioN 0.85 1.15 dB Input 3rd Order Distortion Intercept Point IIP3 fin1 = 1 574 MHz, fin2=15 7 5M H z dBm LRssoLnruteRtupnI in 118 dB Output Return Loss RL out 017 dB LSInoitalosI dB Gain 1 dB Compression Input Power P in (1 dB) dBm TEST CIRCUIT 0.1 F 4.7 nH100 pF INPUT 5 OUTPUT 1 pF M VCC 0.1 FM VPS Data Sheet PU10612EJ01V0DS 3 MPC8230TU

TYPICAL CHARACTERISTICS (TA =+ 2 5oC, unless otherwise specified) 02.0 3.0 4.0 2.5 3.5 00 1.0 3.0 0.5 1.5 2.0 2.5 141 500 1 550 1 6001 525 1 575 VCC = VPS RF = off VCC = 3 V RF = off VCC = VPS = 3 V 1.6 1.4 1.2 0.8 0.6 01 500 1 550 1 6001 525 1 575 VCC = VPS = 3 V 1.0 0.4 0.2 14–50 25 100–25 75 VCC = VPS = 3 V fin = 1 575 MHz 0 50 1.6 1.4 1.2 0.8 0.6 VCC = VPS = 3 V fin = 1 575 MHz 1.0 0.4 0.2 –50 25 100–25 750 50 TA = +85oC –40oC +25oC TA = +85oC –40oC +25oC TA = –40oC +85oC +25oC TA = +85oC –40oC +25oC CIRCUIT CURRENT vs. SUPPLY VOLTAGE Circuit Current ICC (mA) Supply Voltage VCC (V) Circuit Current ICC (mA) CIRCUIT CURRENT vs. POWER-SAVING VOLTAGE Power-Saving Voltage VPS (V) Power Gain GP (dB) Frequency fin (MHz) POWER GAIN vs. FREQUENCY Noise Figure NF (dB) Frequency fin (MHz) NOISE FIGURE vs. FREQUENCY Power Gain GP (dB) Operating Ambient Temperature TA (oC) POWER GAIN vs. OPERATING AMBIENT TEMPERATURE NOISE FIGURE vs. OPERATING AMBIENT TEMPERATURE Operating Ambient Temperature TA (oC) Noise Figure NF (dB) Remark The graphs indicate nominal characteristics. Data Sheet PU10612EJ01V0DS4 MPC8230TU

142.4 3.0 3.62.6 VCC = VPS fin = 1 575 MHz TA = –40oC +85oC 2.8 3.2 3.4 1.6 1.4 1.2 1.0 0.2 02.4 3.0 3.62.6 VCC = VPS fin = 1 575 MHz TA = +85oC –40oC 2.8 3.2 3.4 0.4 0.6 0.8 –10 VCC = VPS = 3 V fin = 1 575 MHz TA = +25oC –20 –10 VCC = VPS = 3 V fin = 1 575 MHz TA = –40oC –20 –10 VCC = VPS = 3 V fin = 1 575 MHz TA = +85oC –20 +20 –40 –60 –80 –20 VCC = VPS = 3 V fin1 = 1 574 MHz fin2 = 1 575 MHz Pout IM3 +25oC +25oC Pin (1dB) = –17.4 dBm Pin (1dB) = –19.1 dBm Pin (1dB) = –16.3 dBm IIP3 = –4.5 dBm Power Gain GP (dB) POWER GAIN vs. SUPPLY VOLTAGE Supply Voltage VCC (V) Noise Figure NF (dB) NOISE FIGURE vs. SUPPLY VOLTAGE Supply Voltage VCC (V) Input Power Pin (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Output Power Pout (dBm) 3rd Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER, IM3 vs. INPUT POWER Remark The graphs indicate nominal characteristics. Data Sheet PU10612EJ01V0DS 5 MPC8230TU

S-PARAMETERS (TA =+ 2 5oC, VCC =V PS = 3.0 V, monitored at connector on board) START 100.000 000 MHz STOP 4 000.000 000 MHz 1:1 575 MHz 34.06 7 11.57 7 START 100.000 000 MHz STOP 4 000.000 000 MHz 1:1 575 MHz 50.16 7 –28.16 7 –10 –15 –25 –300 2 000 4 000500 3 0001 000 2 5001 500 3 500 –20 –10 –15 –25 –300 2 000 4 000500 3 0001 000 2 5001 500 3 500 –20 00 2 000 4 000500 3 0001 000 2 5001 500 3 500 –10 –20 –30 –50 –600 2 000 4 000500 3 0001 000 2 5001 500 3 500 –40 S11–FREQUENCY S22–FREQUENCY Frequency f (MHz) Input Return Loss RLin (dB) INPUT RETURN LOSS vs. FREQUENCY Frequency f (MHz) Output Return Loss RLout (dB) OUTPUT RETURN LOSS vs. FREQUENCY Frequency f (MHz) Power Gain GP (dB) POWER GAIN vs. FREQUENCY Frequency f (MHz) Isolation ISL (dB) ISOLATION vs. FREQUENCY Remark The graphs indicate nominal characteristics. Data Sheet PU10612EJ01V0DS6 MPC8230TU

8-PIN LEAD-LESS MINIMOLD (UNIT: mm) 123 4 87 65 2.2±0.05 2.0±0.1 (Top View) 0.5±0.03 43 21 5678 (0.75)(0.75) (0.25) (0.25) 0.16±0.05 (Bottom View) 2.0±0.1 (0.35)(0.35) (0.35)(0.35) (0.5)(0.5) (0.6)(0.6) (0.65)(0.65) (0.6) (0.3) 0.125+0.1 –0.05 8230 Remark ( ) : Reference value Data Sheet PU10612EJ01V0DS 7 MPC8230TU

(1) Observe precautions for handling because of electro-static sensitive devices. (2) Form a ground pattern as widely as possible to minimize ground impedance (to prevent undesired oscillation). All the ground terminals must be connected together with wide ground pattern to decrease impedance difference. (3) The bypass capacitor should be attached to V CC line. (4) Do not supply DC voltage to INPUT pin. RECOMMENDED SOLDERING CONDITIONS This product should be soldered and mounted under the following recommended conditions. For soldering methods and conditions other than those recommended below, contact your nearby sales office. gniredloSdohteMgniredloS lobmySnoitidnoCsnoitidnoC Infrared Reflow Peak temperature (package surface temperature) : 260 oC or below sselrosdnoces01:erutarepmetkaeptaemiT Time at temperature of 220oC or higher : 60 seconds or less Preheating time at 120 to 180o 021:C p30 seconds Maximum number of reflow processes : 3 times Maximum chlorine content of rosin flux (% mass) : 0.2%(Wt.) or below IR260 Wave Soldering Peak temperature (molten solder temperature) : 260 oC or below sselrosdnoces01:erutarepmetkaeptaemiT Preheating temperature (package surface temperature) : 120 oC or below Maximum number of flow processes : 1 time Maximum chlorine content of rosin flux (% mass) : 0.2%(Wt.) or below WS260 Partial Heating Peak temperature (terminal temperature) : 350 oC or below Soldering time (per side of device) : 3 seconds or less Maximum chlorine content of rosin flux (% mass) : 0.2%(Wt.) or below HS350 Caution Do not use different soldering methods together (except for partial heating). Data Sheet PU10612EJ01V0DS8 MPC8230TU

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Santa Clara, CA 95054-1817 Telephone: (408) 919-2500 Facsimile: (408) 988-0279 Subject: Compliance with EU Directives CEL certifies, to its knowledge, that semiconductor and laser products detailed below are compliant with the requirements of European Union (EU) Directive 2002/95/EC Restriction on Use of Hazardous Substances in electrical and electronic equipment (RoHS) and the requirements of EU Directive 2003/11/EC Restriction on Penta and Octa BDE. CEL Pb-free products have the same base part number with a suffix added. The suffix –A indicates that the device is Pb-free. The –AZ suffix is used to designate devices containing Pb which are exempted from the requirement of RoHS directive (*). In all cases the devices have Pb-free terminals. All devices with these suffixes meet the requirements of the RoHS directive. This status is based on CEL’s understanding of the EU Directives and knowledge of the materials that go into its products as of the date of disclosure of this information. Restricted Substance per RoHS Concentration Limit per RoHS (values are not yet fixed) Concentration contained in CEL devices -A -AZLead (Pb) < 1000 PPM Not Detected (*) Mercury < 1000 PPM Not Detected Cadmium < 100 PPM Not Detected Hexavalent Chromium < 1000 PPM Not Detected PBB < 1000 PPM Not Detected PBDE < 1000 PPM Not Detected If you should have any additional questions regarding our devices and compliance to environmental standards, please do not hesitate to contact your local representative. Important Information and Disclaimer: Information provided by CEL on its website or in other communications concerting the substance content of its products represents knowledge and belief as of the date that it is provided. CEL bases its knowledge and belief on information provided by third parties and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. CEL has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. CEL and CEL suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall CEL’s liability arising out of such information exceed the total purchase price of the CEL part(s) at issue sol db yC E Lt o customer on an annual basis. See CEL Terms and Conditions for additional clarification of warranties and liability.