MMRF1016H NXP | Alldatasheet
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Features
Characterized with Series Equivalent Large- -Signal Impedance Parameters CW Operation Capability with Adequate Cooling Qualified Up to a Maximum of 50 V DD Operation Integrated ESD Protection Designed for Push- -Pull Operation Greater Negative Gate- -Source Voltage Range for Improved Class C Operation In Tape and Reel. R5 Suffix = 50 Units, 56 mm Tape Width, 13- -inch Reel. Table 1. Maximum Ratings Table 2. Thermal Characteristics
- Continuous use at maximum temperature will affect MTTF.
- MTTF calculator available at http://www.freescale.com/rf. Select Software & Tools/Development Tools/Calculators to access MTTF
- Refer to AN1955,Thermal Measurement Methodology of RF Power Amplifiers.Go to http://www.freescale.com/rf
Select Documentation/Application Notes - - AN1955. Figure 1. Pin Connections
42 Drain B
source terminal for the transistors. Freescale Semiconductor, Inc., 2014.All rights reserved.
Freescale Semiconductor, Inc. Table 3. ESD Protection Characteristics Table 4. Electrical Characteristics(TA =2 5C unless otherwise noted) OFDM Single Channel. ACPR measured in 7.61 MHz Channel Bandwidth @4M H zO f f s e t .
- Each side of device measured separately.
- Measurement made with device in push- -pull configuration.
Freescale Semiconductor, Inc. Figure 2. MMRF1016HR5 Test Circuit Schematic Table 5. MMRF1016HR5 Test Circuit Component Designations and Values
Freescale Semiconductor, Inc. Figure 3. MMRF1016HR5 Test Circuit Component Layout
Freescale Semiconductor, Inc. Figure 14. Single- -Carrier DVB- -T OFDM
64 QAM Data Carrier Modulation
5 Symbols
7.61 MHz
Figure 15. 8K Mode DVB- -T OFDM Spectrum Figure 16. Single- -Carrier DVB- -T OFDM Power Pout, OUTPUT POWER (WATTS) AVG. Figure 17. Single- -Carrier DVB- -T OFDM ACPR Pout, OUTPUT POWER (WATTS) AVG. Figure 18. Single- -Carrier DVB- -T OFDM ACPR Power Pout, OUTPUT POWER (WATTS) AVG.
64 QAM Data Carrier Modulation, 5 Symbols
Freescale Semiconductor, Inc. Figure 19. MTTF versus Junction Temperature - - CW is operated at VDD =5 0V d c ,Pout = 125 W Avg., andD = 28.5%.
Freescale Semiconductor, Inc. gate to gate, balanced configuration. drain to drain, balanced configuration. Figure 20. Series Equivalent Source and Load Impedance
Freescale Semiconductor, Inc. Figure 21. MMRF1016HR6 Test Circuit Component Layout — 88- -108 MHz Table 6. MMRF1016HR6 Test Circuit Component Designations and Values — 88- -108 MHz
Freescale Semiconductor, Inc. Figure 22. Broadband CW Power Gain and Drain Figure 23. CW Power Gain and Drain Efficiency
108 MHz
88 MHz
98 MHz
Freescale Semiconductor, Inc. gate to gate, balanced configuration. drain to drain, balanced configuration. Figure 24. Series Equivalent Source and Load Impedance — 88- -108 MHz
Freescale Semiconductor, Inc. Figure 25. MMRF1016HR6 Test Circuit Component Layout — 352.2 MHz Table 7. MMRF1016HR6 Test Circuit Component Designations and Values — 352.2 MHz
Freescale Semiconductor, Inc. Figure 26. CW Power Gain and Drain Efficiency
Freescale Semiconductor, Inc. gate to gate, balanced configuration. drain to drain, balanced configuration. Figure 27. Series Equivalent Source and Load Impedance — 352.2 MHz
Freescale Semiconductor, Inc. MMRF1016HR5 PACKAGE DIMENSIONS
Freescale Semiconductor, Inc.
Freescale Semiconductor, Inc. MMRF1016HR5 PRODUCT DOCUMENTATION AND SOFTWARE Refer to the following resources to aid your design process. Application Notes AN1955: Thermal Measurement Methodology of RF Power Amplifiers Engineering Bulletins EB212: Using Data Sheet Impedances for RF LDMOS Devices Software Electromigration MTTF Calculator For Software, do a Part Number search at http://www.freescale.com, and select the “Part Number” link. Go to the Software & Tools tab on the part’s Product Summary page to download the respective tool.
REVISION HISTORY
The following table summarizes revisions to this document. Revision Date Description
0 July 2014 Initial Release of Data Sheet
Freescale Semiconductor, Inc. Information in this document is provided solely to enablesystem and software implementers to use Freescale products. There are no express or implied copyright licenses granted hereunder to design or fabricate any integrated circuits based on the information in this document. Freescale reserves the right to make changes without further notice to any products herein. Freescale makes no warranty, representation, or guarantee regarding the suitability of its products for any particularpurpose, nor does Freescale assume any liability arising outof the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation consequential or incidental damages. “Typical” parameters that may be provided in Freescale data sheets and/or specifications can and do vary in different applications, and actual performance may vary over time. All operating parameters, including “typicals,” must be validated for each customer application by customer’s technical experts. Freescale does not convey any license under its patent rights nor the rights of others. Freescale sells products pursuant to standard terms and conditions of sale, which can be found at the following address: freescale.com/SalesTermsandConditions. Freescale and the Freescale logo are trademarks of Freescale Semiconductor, Inc., respective owners. E 2014 Freescale Semiconductor, Inc. How to Reach Us: Home Page: freescale.com Web Support: freescale.com/support Document Number: MMRF1016H Rev. 0, 7/2014