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  2013-09-03 1 bfr340l3 low noise silicon bipolar rf transistor ? low voltage/ low current operation ? transition frequency of 14 ghz ? high insertion gain ? ideal for low current amplifiers and oscillators ? pb-free (rohs compliant) and halogen-free thin small leadless package ? qualification report according to aec-q101 available esd ( e lectro s tatic d ischarge) sensitive device, observe handling precaution! type marking pin configuration package bfr340l3 fa 1 = b 2 = e 3 = c tslp-3-1 maximum ratings at t a = 25 c, unless otherwise specified parameter symbol value unit collector-emitter voltage v ceo 6 v collector-emitter voltage v ces 15 collector-base voltage v cbo 15 emitter-base voltage v ebo 2 collector current i c 10 ma base current i b 2 total power dissipation 1) t s 120c p tot 60 mw junction temperature t j 150 c storage temperature t st g -55 ... 150 thermal resistance parameter symbol value unit junction - soldering point 2) r thjs 500 k/w 1 t s is measured on the collector lead at the soldering point to the pcb 2 for the definition of r thjs please refer to application note an077 (thermal resistance calculation)
2013-09-03 2 bfr340l3 electrical characteristics at t a = 25 c, unless otherwise specified parameter symbol values unit min. typ. max. dc characteristics collector-emitter breakdown voltage i c = 1 ma, i b = 0 v (br)ceo 6 9 - v collector-emitter cutoff current v ce = 15 v, v be = 0 i ces - - 10 a collector-base cutoff current v cb = 5 v, i e = 0 i cbo - - 100 na emitter-base cutoff current v eb = 1 v, i c = 0 i ebo - - 1 a dc current gain i c = 5 ma, v ce = 3 v, pulse measured h fe 90 120 160 -
2013-09-03 3 bfr340l3 electrical characteristics at t a = 25 c, unless otherwise specified parameter symbol values unit min. typ. max. ac characteristics (verified by random sampling) transition frequency i c = 6 ma, v ce = 3 v, f = 1 ghz f t 10 14 - ghz collector-base capacitance v cb = 5 v, f = 1 mhz, v be = 0 , emitter grounded c cb - 0.17 0.4 pf collector emitter capacitance v ce = 5 v, f = 1 mhz, v be = 0 , base grounded c ce - 0.13 - emitter-base capacitance v eb = 0.5 v, f = 1 mhz, v cb = 0 , collector grounded c eb - 0.12 - minimum noise figure i c = 1 ma, v ce = 3 v, z s = z sopt , f = 1.8 ghz nf min - 1.15 - db power gain, maximum stable 1) i c = 5 ma, v ce = 3 v, z s = z sopt , z l = z lopt , f = 1.8 ghz g ms - 17.5 - - power gain, maximum available 1) i c = 5 ma, v ce = 3 v, z s = z sopt , z l = z lopt , f = 3 ghz g ma - 13 - db transducer gain i c = 5 ma, v ce = 3 v, z s = z l = 50 ? , f = 1.8 ghz f = 3 ghz | s 21e | 2 - - 14 10 - - db third order intercept point at output 2) v ce = 3 v, i c = 5 ma, f = 1.8 ghz, z s = z l = 50 ? ip3 - 12.5 - dbm 1db compression point at output i c = 5 ma, v ce = 3 v, z s = z l = 50 ? , f = 1.8 ghz p -1db - -1 - 1 g ma = | s 21e / s 12e | (k-(k2-1) 1/2 ), g ms = | s 21e / s 12e | 2 ip3 value depends on termination of all intermodulation frequency components. termination used for this measurement is 50 ? from 0.1 mhz to 6 ghz
2013-09-03 4 bfr340l3 total power dissipation p tot = ? ( t s ) 0 15 30 45 60 75 90 105 120 c 150 t s 0 10 20 30 40 50 mw 70 p tot
2013-09-03 5 bfr340l3 package tslp-3-1
2013-09-03 6 bfr340l3 edition 2009-11-16 published by infineon technologies ag 81726 munich, germany ? 2009 infineon technologies ag all rights reserved. legal disclaimer the information given in this document shall in no event be regarded as a guarantee of conditions or characteristics. with respect to any examples or hints given herein, any typical values stated herein and/or any information regarding the application of the device, infineon technologies hereby disclaims any and all warranties and liabilities of any kind, including without limitation, warranties of non-infringement of intellectual property rights of any third party. information for further information on technology, delivery terms and conditions and prices, please contact the nearest infineon technologies office ( ). warnings due to technical requirements, components may contain dangerous substances. for information on the types in question, please contact the nearest infineon technologies office. infineon technologies components may be used in life-support devices or systems only with the express written approval of infineon technologies, if a failure of such components can reasonably be expected to cause the failure of that life-support device or system or to affect the safety or effectiveness of that device or system. life support devices or systems are intended to be implanted in the human body or to support and/or maintain and sustain and/or protect human life. if they fail, it is reasonable to assume that the health of the user or other persons may be endangered.


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