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MICRF002 датащи(PDF) 11 Page - Micrel Semiconductor |
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MICRF002 датащи(HTML) 11 Page - Micrel Semiconductor |
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11 / 16 page ![]() March 2003 11 MICRF002/RF022 MICRF002/RF022 Micrel Additional Applications Information In addition to the basic operation of the MICRF002 the following enhancements can be made. In particilar it is strongly recommended that the antenna impedance is matched to the input of the IC. Antenna Impedance Matching As shown in table 4 the antenna pin input impedance is frequency dependant. The ANT pin can be matched to 50 Ohms with an L-type circuit. That is, a shunt inductor from the RF input to ground and another in series from the RF input to the antenna pin. Inductor values may be different from table depending on PCB material, PCB thickness, ground configuration, and how long the traces are in the layout. Values shown were charac- terized for a 0.031 thickness, FR4 board, solid ground plane on bottom layer, and very short traces. MuRata and Coilcraft wire wound 0603 or 0805 surface mount inductors were tested, however any wire wound inductor with high SRF (self resonance frequency) should do the job. Shutdown Function Duty-cycled operation of the MICRF002 (often referred to as polling) is achieved by turning the MICRF002 on and off via the SHUT pin. The shutdown function is controlled by a logic state applied to the SHUT pin. When V SHUT is high, the device goes into low-power standby mode. This pin is pulled high internally, it must be externally pulled low to enable the receiver. y c n e u q e r F ) z H M ( Z N I ) ( 1 1 Z 1 1 SL T N U H S ) H n (L S E I R E S ) H n ( 0 0 36 6 1 j – 2 19 2 5 . 0 j – 3 0 8 . 05 12 7 5 0 35 6 1 j – 2 10 3 5 . 0 j – 0 0 8 . 05 12 7 0 1 33 6 1 j – 2 16 3 5 . 0 j – 6 9 7 . 05 12 7 5 1 32 6 1 j – 3 16 3 5 . 0 j – 1 9 7 . 05 12 7 0 2 30 6 1 j – 2 13 4 5 . 0 j – 9 8 7 . 05 18 6 5 2 37 5 1 j – 2 10 5 5 . 0 j – 2 8 7 . 02 18 6 0 3 35 5 1 j - 2 16 5 5 . 0 j – 8 7 7 . 02 18 6 5 3 32 5 1 j – 2 14 6 5 . 0 j – 0 7 7 . 02 18 6 0 4 30 5 1 j - 1 12 7 5 . 0 j – 7 6 7 . 05 16 5 5 4 38 4 1 j – 1 18 7 5 . 0 j – 2 6 7 . 05 16 5 0 5 35 4 1 j – 1 16 8 5 . 0 j – 3 5 7 . 02 16 5 5 5 33 4 1 j – 1 12 9 5 . 0 j – 8 4 7 . 02 16 5 0 6 31 4 1 j – 1 17 9 5 . 0 j – 2 4 7 . 00 16 5 5 6 39 3 1 j – 1 13 0 6 . 0 j – 5 3 7 . 00 16 5 0 7 37 3 1 – 0 12 1 6 . 0 j – 2 3 7 . 02 17 4 5 7 35 3 1 j – 0 19 1 6 . 0 j – 5 2 7 . 02 17 4 0 8 33 3 1 j – 0 15 2 6 . 0 j – 8 1 7 . 00 17 4 5 8 31 3 1 j – 0 11 3 6 . 0 j – 1 1 7 . 00 17 4 0 9 30 3 1 j – 0 14 3 6 . 0 j – 7 0 7 . 00 13 4 5 9 38 2 1 j – 0 11 4 6 . 0 j – 0 0 7 . 00 13 4 0 0 46 2 1 j – 0 17 4 6 . 0 j – 2 9 6 . 00 13 4 5 0 44 2 1 j – 0 13 5 6 . 0 j – 4 8 6 . 00 19 3 0 1 42 2 1 j – 0 10 6 6 . 0 j – 5 7 6 . 00 19 3 5 1 40 2 1 j – 0 17 6 6 . 0 j – 7 6 6 . 00 19 3 0 2 48 1 1 j – 0 13 7 6 . 0 j – 8 5 6 . 00 16 3 5 2 47 1 1 j – 0 17 7 6 . 0 j – 3 5 6 . 00 16 3 0 3 45 1 1 j – 0 14 8 6 . 0 j – 3 4 6 . 00 13 3 5 3 44 1 1 j – 0 17 8 6 . 0 j – 8 3 6 . 00 13 3 0 4 42 1 1 j – 84 0 7 . 0 j – 5 3 6 . 02 . 83 3 j100 j25 ∞ 50 0 –j25 –j100 Table 4. Input Impedance Versus Frequency LSHUNT LSERIES |
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