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!"# " $ % $ " &'( ) ) * ? + $##$" ,- .#/*0*#,! $1" .#/)0)#,! $1" .#/(0(#,! $1" 23$ 3 " , " ,- .#/*0*#,! $1" .#/)0)#,! $1" .#/(0(#,! $1" 4 , " ,- .#/*04*#,! $1" .#/)04)#,! $1" .#/(04(#,! $1" " 3$" ,- .#/*04#*.#/)04#* 5. "" %3 6**7/8/ 4 "" %3 8*77#* 9:; "" %3 ))8(( 6:; "" %3 '8/**<7) +6:; "" %3 7<8)0 46:; "" %3 8/77*07=*#7 +6 "" %3 8(<)) ' .#/*0=/)0=/(044#* ' * *7 http://www.tenand.com ??e?????e?t1??? shenzhen tenand technology co.,ltd *& 3 , 3 ))#3 > ->- 79 , 13, - ! $$? -3@ > &! $ 3a! ( - ! $$? ! $$ ? -3 ' .#/*0=/)0=/(044#* ' ) *7 *& 3 , 3 ))#3 > ->- 79 , 13, - ! $$? -3@ > &! $ 3a! ( - ! $$? ! $$ ? -3 ' .#/*0=/)0=/(044#* ' 7 *7 *& 3 , 3 ))#3 > ->- 79 , 13, - ! $$? -3@ > &! $ 3a! ( - ! $$? ! $$ ? -3 ' .#/*0=/)0=/(044#* ' ( *7 *& 3 , 3 ))#3 > ->- 79 , 13, - ! $$? -3@ > &! $ 3a! ( - ! $$? ! $$ ? -3 ' .#/*0=/)0=/(044#* ' *7 *& 3 , 3 ))#3 > ->- 79 , 13, - ! $$? -3@ > &! $ 3a! ( - ! $$? ! $$ ? -3 ' .#/*0=/)0=/(044#* ' 0 *7 ! "# " !# " !" ' .#/*0=/)0=/(044#* ' < *7 ) ! $% & ' ()*+ * * &,- ! $./*+ * 0 * /.$*+ * * $$% & ' 1-- $ " 2 &*+ * 3 * 1+% .45 $ 6+% .45 " $ 2" 6+% " $ *9 *(b0 $ % $ ! $$? 3 ! $$ > ! 3 *4! ?> 3 3, ! 3 !" 1 3 3?>, $$, 3 ! , 3 1 3 )! $ % $ >!c #, ,, ! $$? 3 7!> % ""$3% $ ! $$? > % )9 *4, 3 ' .#/*0=/)0=/(044#* ' / *7 ) " " #" ! $ *+ * 7 " *& 8"' ()$% & 77 ' * 8* &,- $ $ 7 " *838 9:; $$% & 7 7 ' * 8"*3& 8 $./ <*+ <* 077* & 8 ' & 8 1-- /.$ <*+ <* 77* & 8 ' & 8 $$% & " 7 ' 2 $%( $( 7 = & 8' * 8* $./ 6%*+ * 7 "* & 8"' & 8 ' &( ( 7 ? $* 4=( : +$ $ 7 *838 >:; $%.1 ?%@ 707:; * 8*3& 8"' ( 8 ? 3.< (( 7 0 (',6 /( $:'('$/(&6&$6 ( 7 0 * 8"*3& 8"' ( 8 ? * * = ' .#/*0=/)0=/(044#* ' 8 *7 .#/*0 . b* .#/*0 /b*0 .#/*0 d *7b)0 .#/*0 )b( .#/*0 + 7b0 .#/*0 . d + b0 .#/ 0 d *7b)0 .#/ 0 d d *7b( .#/ 0 )b( .#/ 0 + + )b0 .#/ 0d d + - b0 ) ( ) ' .#/*0=/)0=/(044#* ' * *7 fig.1 forword current fig.2 collector power dissiption vs. ambient temperature fig.4 forward current vs. forward fig.5 current transfer ratio vs. forward current fig.6 collector current vs. collector-emitter voltage f f ce f f 0 -30 ta= 75 c 50 c 25 c 0 c -25 c v = 5v ta= 25 c ce ta= 25 c i = 30ma pc(max.) 5ma 10ma 20ma f 15ma 25ma vs. ambient temperatute collector-emitter voltage v (v) forward voltage v (v) ambient temperature ta ( c) ambient temperature ta ( c) forward current i (ma) forward current i (ma) collector power dissipation pc (mw) forward current i (ma) current transfer ratio ctr (%) collector current ic (ma) fig.3 collector-emitter saturation voltage vs. forward current f ce ic= 0.5ma 1ma 3ma 7ma 5ma ta= 25 c collecotr-emitter saturation voltage v (sat) (v) forward current i (ma) voltage o o o o o o o o o o 0 25 50 75 100 125 0 -30 125 25 50 75 100 10 20 30 40 50 60 0 50 100 150 200 0 1 0 0 2 4 6 8 101214161820 1 2 3 4 5 6 0.5 1.0 1.5 2.0 2.5 3.0 2 5 10 20 50 100 200 500 0 1 0 0 2 5 10 20 50 20 40 60 80 100 120 140 160 180 200 123456789 10 20 30 40 50 ' .#/*0=/)0=/(044#* ' ** *7 r = 10k l 1k 100 tr tf td ts fig.8 collector-emitter saturation voltage fig.9 collector dark current vs. ambient temperature fig.10 response time vs. load fig.11 frequency response l ceo 0 -30 ce v = 2v ic= 2ma ta= 25 c ce i = 5ma v = 5v ce f f ic= 1ma i = 20ma ce v = 2v ic= 2ma ta= 25 c vs. ambient temperature ambient temperature ta ( c) load resistance r (k ) ambient temperature ta ( c) ambient temperature ta ( c) frequency f (khz) response time ( s) relative current transfer ratio (%) collector dark current i (a) voltage gain av (db) collector-emitter saturation voltage v (sat) (v) -10 o o o o o 0 255075100 50 100 150 -25 0 0255075100 10 -25 0.2 0.05 0 255075100 10 10 10 10 10 10 -9 -8 -7 -6 -5 -11 0.1 0.2 0.5 1 2 5 10 0.5 1 2 5 10 20 50 100 200 500 0.5 20 10 0 210 100500 resistance fig.7 relative current transfer ratio vs. ambient temperature 0.02 0.04 0.06 0.08 0.10 0.12 0.14 0.16 1 5 20 50 ce v = 20v vc c test circuit for frequency response test circuit for response time r d input r d r l l vc c r output td output output input tr tf ts 90% 10% ' .#/*0=/)0=/(044#* ' *) *7 ' .#/*0=/)0=/(044#* ' *7 *7 |
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