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High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with
Top Searches for this datasheet19-4754; 8/01 High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable _General Description precision, closed-loop, gain buffers featuring high slew rates, high output current drive, differential gain phase error. They operate with single 3.15V supply with ±1.575V ±5.5V dual supplies. input common-mode voltage range extends 100mV beyond negative power-supply rail, output swings Rail-to-Rail®. These devices require only 5.5mA quiescent supply current while achieving 230MHz -3dB bandwidth 600V/µs slew rate. addition, MAX4215/ MAX4219 have disable feature that reduces supply current 400µA buffer. Input voltage noise only 10nV/Hz, input current noise only 1.3pA/Hz. This buffer family ideal low-power/lowvoltage applications requiring wide bandwidth, such video, communications, instrumentation systems. space-sensitive applications, MAX4214 comes miniature 5-pin SOT23 package. _Features Internal Precision Resistors Closed-Loop Gains +2V/V -1V/V High Speed 230MHz -3dB Bandwidth 90MHz 0.1dB Gain Flatness (MAX4219/MAX4222) 600V/µs Slew Rate Single 3.3V/5.0V Operation Outputs Swing Rail-to-Rail Input Common-Mode Range Extends Beyond Differential Gain/Phase Error: 0.03%/0.04° Distortion 5MHz -72dBc SFDR -71dB Total Harmonic Distortion High Output Drive: ±120mA 5.5mA Supply Current 400µA Shutdown Supply Current (MAX4215/MAX4219) Space-Saving SOT23, µMAX, QSOP Packages _Ordering Information PART TEMP RANGE PINPACKAGE SOT23-5 µMAX µMAX QSOP QSOP MARK ABAH MAX4214EUK-T -40°C +85°C MAX4215ESA MAX4215EUA MAX4217ESA MAX4217EUA MAX4219ESD MAX4219EEE MAX4222ESD MAX4222EEE -40°C +85°C -40°C +85°C -40°C +85°C -40°C +85°C -40°C +85°C -40°C +85°C -40°C +85°C -40°C +85°C _Selector Guide PART MAX4214 MAX4215 MAX4217 MAX4219 MAX4222 AMPS ENABLE PIN-PACKAGE SOT23 SO/µMAX SO/µMAX QSOP QSOP _Applications Battery-Powered Instruments Video Line Drivers Analog-to-Digital Converter Interface Imaging Systems Video Routing Switching Systems Video Multiplexing Applications _Pin Configurations VIEW MAX4214 Typical Application Circuit appears data sheet. Rail-to-Rail registered trademark Nippon Motorola, Ltd. SOT23-5 Configurations continued data sheet. Maxim Integrated Products pricing, delivery, ordering information, please contact Maxim/Dallas Direct! 1-888-629-4642, visit Maxim's website www.maxim-ic.com. High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable ABSOLUTE MAXIMUM RATINGS Supply Voltage (VCC VEE) .12V IN_-, IN_+, OUT_, .(VEE 0.3V) (VCC 0.3V) Output Short-Circuit Duration .Continuous Continuous Power Dissipation +70°C) 5-Pin SOT23 (derate 7.1mW/°C above +70°C).571mW 8-Pin (derate 5.9mW/°C above +70°C).471mW 8-Pin µMAX (derate 4.1mW/°C above +70°C) .330mW 14-Pin (derate 8.3mW/°C above +70°C).667mW 16-Pin QSOP (derate 8.3mW/°C above +70°C).667mW Operating Temperature Range .-40°C +85°C Storage Temperature Range .-65°C +150°C Lead Temperature (soldering, 10s) .+300°C Stresses beyond those listed under "Absolute Maximum Ratings" cause permanent damage device. These stress ratings only, functional operation device these other conditions beyond those indicated operational sections specifications implied. Exposure absolute maximum rating conditions extended periods affect device reliability. ELECTRICAL CHARACTERISTICS (VCC IN_- VOUT VCC/2, noninverting configuration, TMIN TMAX, unless otherwise noted. Typical values +25°C.) (Note PARAMETER Operating Supply Voltage Range Input Voltage Range Input Offset Voltage Input Offset Voltage Drift Input Offset Voltage Matching Input Bias Current Input Resistance Voltage Gain Power-Supply Rejection Ratio (Note Output Resistance Output Current Short-Circuit Output Current PSRR ROUT IOUT TCVOS Between channels MAX4217/MAX4219/MAX4222 IN_+ IN_+, over input voltage range (VEE 0.5V) VOUT (VCC 2.0V) VOUT 2.0V -5V, VOUT 3.3V, VOUT 0.90V Sinking sourcing Output Voltage Swing VOUT Disabled Output Resistance Logic Threshold Logic High Threshold +25°C TMIN TMAX ±150 1.60 0.04 0.75 0.04 0.06 0.06 1.90 0.075 1.00 0.075 SYMBOL CONDITIONS VEE, guaranteed PSRR tests IN_+ IN_RL QSOP SOT23-5, µMAX 3.15 ±120 11.0 2.25 UNITS µV/°C ROUT(OFF) MAX4215/MAX4219, VOUT MAX4215/MAX4219 MAX4215/MAX4219 High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable ELECTRICAL CHARACTERISTICS (continued) (VCC IN_- VOUT VCC/2, noninverting configuration, TMIN TMAX, unless otherwise noted. Typical values +25°C.) (Note PARAMETER Logic Input Current Logic Input High Current Quiescent Supply Current (per Buffer) Shutdown Supply Current SYMBOL MAX4215/MAX4219, disabled (EN_ VEE) CONDITIONS MAX4215/MAX4219, (VEE 0.2V) MAX4215/MAX4219, MAX4215/MAX4219, UNITS Note MAX421_EU_ 100% production tested 25°C. Specifications over temperature limits guaranteed design. Note PSRR single supply tested with 4.5V 5.5V; dual supply with -4.5V -5.5V, 4.5V 5.5V; single supply with 3.15V 3.45V. ELECTRICAL CHARACTERISTICS (VCC IN_- VCC/2, noninverting configuration, TMIN TMAX, unless otherwise noted. Typical values +25°C.) PARAMETER Small-Signal -3dB Bandwidth Full-Power -3dB Bandwidth Bandwidth 0.1dB Gain Flatness Slew Rate Settling Time 0.1% Rise/Fall Time Spurious-Free Dynamic Range Harmonic Distortion Third-Order Intercept Input Compression Point Differential Phase Error Differential Gain Error Input Noise-Voltage Density Input Noise-Current Density Input Capacitance Disabled Output Capacitance COUT(OFF) MAX4215/MAX4219, SYMBOL BW-3dB FPBW BW0.1dB SFDR VOUT 100mVP-P VOUT 2VP-P VOUT 100mVP-P CONDITIONS MAX4214/MAX4215/MAX4217 MAX4219/MAX4222 MAX4214/MAX4215/MAX4217 MAX4219/MAX4222 MAX4214/MAX4215/MAX4217 MAX4219/MAX4222 Second harmonic VOUT 2VP-P, 5MHz 10MHz 10MHz NTSC, NTSC, 10kHz 10kHz Third harmonic Total harmonic distortion 0.04 0.03 degrees nV/Hz pA/Hz UNITS V/µs VOUT step VOUT step VOUT 100mVP-P 5MHz, VOUT 2VP-P High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable ELECTRICAL CHARACTERISTICS (continued) (VCC IN_- VCC/2, noninverting configuration, TMIN TMAX, unless otherwise noted. Typical values +25°C.) PARAMETER Output Impedance Buffer Enable Time Buffer Disable Time Buffer Gain Matching All-Hostile Crosstalk XTALK SYMBOL ZOUT tOFF 10MHz MAX4215/MAX4219 MAX4215/MAX4219 MAX4217/MAX4219/MAX4222, 10MHz, VOUT 100mVP-P MAX4217/MAX4219/MAX4222, 10MHz, VOUT 2VP-P CONDITIONS UNITS _Typical Operating Characteristics (VCC AVCL 2V/V, VCC/2, +25°C, unless otherwise noted.) MAX4214/MAX4215/MAX4217 SMALL-SIGNAL GAIN FREQUENCY MAX4214 toc01 MAX4214/MAX4215/MAX4217 GAIN FLATNESS FREQUENCY MAX4214 toc02 MAX4214/MAX4215/MAX4217 LARGE-SIGNAL GAIN FREQUENCY GAIN (dB) VOUT 2VP-P MAX4214 toc03 GAIN (dB) VOUT 100mVP-P GAIN (dB) VOUT 100mVP-P 100k FREQUENCY (Hz) 100M 100k FREQUENCY (Hz) 100M 100k FREQUENCY (Hz) 100M MAX4219/MAX4222 SMALL-SIGNAL GAIN FREQUENCY MAX4214 toc04 MAX4219/MAX4222 GAIN FLATNESS FREQUENCY MAX4214 toc05 MAX4219/MAX4222 LARGE-SIGNAL GAIN FREQUENCY GAIN (dB) VOUT 2VP-P MAX4214 toc06 GAIN (dB) VOUT 100mVP-P GAIN (dB) VOUT 100mVP-P 100k FREQUENCY (Hz) 100M 100k FREQUENCY (Hz) 100M 100k FREQUENCY (Hz) 100M High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable _Typical Operating Characteristics (continued) (VCC AVCL 2V/V, VCC/2, +25°C, unless otherwise noted.) HARMONIC DISTORTION FREQUENCY MAX4214 toc07 HARMONIC DISTORTION RESISTIVE LOAD MAX4214 toc08 HARMONIC DISTORTION VOLTAGE SWING HARMONIC DISTORTION (dBc) -100 HARMONIC HARMONIC 5MHz MAX4214 toc09 HARMONIC DISTORTION (dBc) -100 100k HARMONIC VOUT 2VP-P HARMONIC DISTORTION (dBc) -100 HARMONIC HARMONIC VOUT 2VP-P 5MHz HARMONIC 100M RESISTIVE LOAD FREQUENCY (Hz) VOLTAGE SWING (Vp-p) VOLTAGE-NOISE DENSITY FREQUENCY MAX4214 toc10 CURRENT-NOISE DENSITY FREQUENCY MAX4214 toc11 MAX4217/MAX4219/MAX4222 CROSSTALK FREQUENCY CROSSTALK (dB) -110 -130 MAX4214 toc12 NOISE (nV/Hz) NOISE (pA/ 100k FREQUENCY (Hz) 100k FREQUENCY (Hz) -150 100k FREQUENCY (Hz) 100M POWER-SUPPLY REJECTION FREQUENCY MAX4214 toc13 MAX4215/MAX4219 OFF-ISOLATION FREQUENCY OFF-ISOLATION (dB) 0.01 100k FREQUENCY (Hz) 100M MAX4214 toc14 CLOSED-LOOP OUTPUT IMPEDANCE FREQUENCY MAX4214 toc15 POWER-SUPPLY REJECTION (dB) 100k FREQUENCY (Hz) 100M IMPEDANCE 100k FREQUENCY (Hz) 100M High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable _Typical Operating Characteristics (continued) (VCC AVCL 2V/V, VCC/2, +25°C, unless otherwise noted.) DIFFERENTIAL GAIN PHASE MAX4214 toc16 MAX4214 toc17 DIFF. GAIN 1.35V VOUT 100mVP-P CLOSED-LOOP BANDWIDTH (MHz) LOAD RESISTANCE OUTPUT SWING (Vp-p) 0.01 0.00 -0.01 0.02 0.00 -0.02 -0.04 -0.06 1.35V DIFF. PHASE (deg) LOAD RESISTANCE SMALL-SIGNAL PULSE RESPONSE MAX4214 toc19 LARGE-SIGNAL PULSE RESPONSE MAX4214 toc20 ENABLE RESPONSE TIME MAX4214 toc21 (DISABLE) 500mV/div 25mV/div 20ns/div 1.25V, GROUND 20ns/div 0.9V, GROUND 0.5V 1µs/div SMALL-SIGNAL PULSE RESPONSE 5pF) MAX4214 toc22 LARGE-SIGNAL PULSE RESPONSE 5pF) MAX4214 toc23 VOLTAGE SWING TEMPERATURE MAX4214 toc24 500mV/div 25mV/div VOLTAGE SWING (Vp-p) 20ns/div 1.25V, 20ns/div 1.75V, TEMPERATURE (°C) MAX4214 toc18 0.04 0.03 0.02 CLOSED-LOOP BANDWIDTH LOAD RESISTANCE OUTPUT SWING LOAD RESISTANCE 5.0V (ENABLE) High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable _Typical Operating Characteristics (continued) (VCC AVCL 2V/V, VCC/2, +25°C, unless otherwise noted.) INPUT OFFSET VOLTAGE TEMPERATURE MAX4214 toc25 INPUT BIAS CURRENT TEMPERATURE MAX4214 toc26 INPUT OFFSET CURRENT TEMPERATURE MAX4214 toc27 0.20 INPUT OFFSET CURRENT (µA) INPUT OFFSET VOLTAGE (mV) INPUT BIAS CURRENT (µA) 0.16 0.12 0.08 0.04 TEMPERATURE (°C) TEMPERATURE (°C) TEMPERATURE (°C) POWER-SUPPLY CURRENT (PER AMPLIFIER) POWER-SUPPLY VOLTAGE MAX4214 toc28 POWER-SUPPLY CURRENT (PER AMPLIFIER) TEMPERATURE MAX4214 toc29 POWER-SUPPLY CURRENT (mA) POWER-SUPPLY CURRENT (mA) POWER-SUPPLY VOLTAGE TEMPERATURE (°C) High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable _Pin Description MAX4214 SOT23-5 MAX4215 SO/µMAX MAX4217 SO/µMAX MAX4219 QSOP MAX4222 QSOP N.C. INVCC OUTA INAINA+ OUTB INBINB+ OUTC INCINC+ OUTD INDIND+ Connection. internally connected. ground leave open. Amplifier Output Negative Power Supply Ground single-supply operation) Noninverting Input Inverting Input Positive Power Supply Enable Amplifier Enable Amplifier Enable Amplifier Enable Amplifier Amplifier Output Amplifier Inverting Input Amplifier Noninverting Input Amplifier Output Amplifier Inverting Input Amplifier Noninverting Input Amplifier Output Amplifier Inverting Input Amplifier Noninverting Input Amplifier Output Amplifier Inverting Input Amplifier Noninverting Input NAME FUNCTION High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable _Detailed Description single-supply, rail-to-rail output, voltage-feedback, closed-loop buffers that employ current-feedback techniques achieve 600V/µs slew rates 230MHz bandwidths. These buffers internal resistors provide preset closed-loop gain 2V/V noninverting configuration -1V/V inverting configuration. Excellent harmonic distortion differential gain/phase performance make them ideal choice wide variety video signal-processing applications. Local feedback around buffer's output stage ensures output impedance, which reduces gain sensitivity load variations. This feedback also produces demand-driven current bias output transistors ±120mA drive capability, while constraining total supply current less than 7mA. Since inverting input exhibits input impedance, terminate input with resistor when configured inverting gain applications (terminate with applications). Terminate input with 49.9 resistor noninverting case. Output terminating resistors should directly match cable impedances either configuration. Layout Techniques Maxim recommends using microstrip stripline techniques obtain full bandwidth. ensure board does degrade buffer's performance, design frequency greater than 1GHz. careful attention inputs outputs avoid large parasitic capacitance. Whether constantimpedance board, observe following guidelines when designing board: Don't wire-wrapped boards. They inductive. Don't sockets. They increase parasitic capacitance inductance. surface-mount instead through-hole components better high-frequency performance. board with least layers; should free from voids possible. Keep signal lines short straight possible. make turns; round corners. _Applications Information Power Supplies These devices operate from single 3.15V power supply from dual supplies ±1.575V ±5.5V. single-supply operation, bypass ground with 0.1µF capacitor close possible. operating with dual supplies, bypass each supply with 0.1µF capacitor. Selecting Gain Configuration Each buffer MAX4214 family configured voltage gain 2V/V -1V/V. gain 2V/V, ground inverting terminal. noninverting terminal signal input buffer (Figure 1a). Grounding noninverting terminal using inverting terminal signal input configures buffer gain -1V/V (Figure 1b). Input Voltage Range Output Swing MAX4214 family's input range extends from (VEE 100mV) (VCC 2.25V). Input ground sensing increases dynamic range single-supply applications. outputs drive load within 60mV power-supply rails. With smaller resistive loads, output swing reduced shown Electrical Characteristics Typical Operating Characteristics. RTIN INMAX42_ INRTIN MAX42_ Figure Noninverting Gain Configuration +2V/V) Figure Inverting Gain Configuration -1V/V) High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable load resistance decreases, useful input range effectively limited output drive capability, since buffers have fixed voltage gain 2V/V -1V/V. example, load typically driven from 40mV above 1.6V below VCC, 40mV 3.4V when operating from single supply. buffer operated noninverting, gain 2V/V configuration with inverting input grounded, useful input voltage range becomes 20mV 1.7V instead -100mV 2.75V indicated Electrical Characteristics. Beyond useful input range, buffer output nonlinear function input, will undergo phase reversal latchup. sists five back-to-back Schottky diodes between IN_+ IN_-. These diodes reduce disabled output resistance from when output voltage greater less than voltage IN_+. Under these conditions, input protection diodes will forward biased, lowering disabled output resistance 500. Output Capacitive Loading Stability MAX4214 family provides maximum performance with load capacitance. This case when load properly terminated transmission line. These devices designed drive 20pF load capacitance without oscillating, performance will reduced under these conditions. Enable MAX4215/MAX4219 have enable feature (EN_) that allows buffer placed low-power state. When buffers disabled, supply current reduced 400µA buffer. voltage approaches negative supply rail, input current rises. Figure shows graph input current versus voltage. Figure shows addition optional resistor series with pin, limit magnitude current increase. Figure displays resulting input current voltage relationship. ENABLE MAX42_ Disabled Output Resistance include internal protection circuitry that prevents damage precision input stage from large differential input voltages (Figure This protection circuitry conIN500 Figure Circuit Reduce Enable Logic-Low Input Current INPUT CURRENT (µA) INPUT CURRENT (µA) -100 -120 -140 -160 ABOVE VEE) ABOVE VEE) Figure Enable Logic-Low Input Current Enable LogicLow Threshold Figure Enable Logic-Low Input Current Enable LogicLow Threshold with Series Resistor High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable NORMALIZED GAIN (dB) MAX4214 MAX4215 MAX4217 MAX4219 MAX4222 IN500 100k FREQUENCY (Hz) 100M 10pF 15pF Figure Input Protection Circuit Figure Small-Signal Gain Frequency with Load Capacitance Isolation Resistor RISO VOUT CLOAD (pF) RISO MAX42_ RTIN Figure Driving Capacitive Load Through Isolation Resistor Figure Isolation Resistance Capacitive Load Driving large capacitive loads increases chance oscillations occurring most amplifier circuits. This especially true circuits with high loop gains, such voltage followers. buffer's output resistance load capacitor combine pole excess phase loop response. frequency this pole enough interfere with loop response degrade phase margin sufficiently, oscillations occur. second problem when driving capacitive loads results from amplifier's output impedance, which looks inductive high frequencies. This inductance forms resonant circuit with capacitive load, which causes peaking frequency response degrades amplifier's gain margin. Figure shows devices' frequency response under different capacitive loads. drive loads with greater than 20pF capacitance settle some peaking, output requires isolation resistor like shown Figure Figure graph Optimal Isolation Resistor Load Capacitance. Figure shows frequency response when driving capacitive loads with isolation resistor. Coaxial cables other transmission lines easily driven when properly terminated both ends with their characteristic impedance. Driving back-terminated transmission lines essentially eliminates lines' capacitance. High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable NORMALIZED GAIN (dB) 100k FREQUENCY (Hz) 100M GAIN VIDEO/RF CABLE DRIVER IN500 MAX4214 _Typical Application Circuit RISO 47pF 68pF 120pF VOUT Figure Small-Signal Gain Frequency with Load Capacitance Isolation Resistor Chip Information MAX4214 TRANSISTOR COUNT: MAX4215 TRANSISTOR COUNT: MAX4217 TRANSISTOR COUNT: MAX4219 TRANSISTOR COUNT: MAX4222 TRANSISTOR COUNT: SUBSTRATE CONNECTED High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable _Pin Configurations (continued) VIEW N.C. N.C. OUTA INA- OUTB INBINB+ MAX4215 MAX4217 INA+ SO/µMAX SO/µMAX INA+ INA- OUTA OUTC INC12 INC+ INA+ INA- OUTA N.C. OUTC INC14 INC+ MAX4219 INB+ INBOUTB MAX4219 INB+ INB10 OUTB N.C. QSOP OUTA INA- INA+ INB+ INB- OUTB OUTD IND12 IND+ OUTA INA- INA+ INB+ INB- OUTB N.C. OUTD IND14 IND+ MAX4222 INC+ INCOUTC MAX4222 INC+ INC10 OUTC N.C. QSOP High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable _Tape-and-Reel Information NOTE: DIMENSIONS FOLLOW EIA481-1 STANDARD. 3.200 3.099 1.499 0.991 ±0.102 ±0.102 +0.102 +0.000 +0.254 +0.000 1.753 3.505 1.397 3.988 ±0.102 ±0.051 ±0.102 ±0.102 P010 3.988 40.005 2.007 0.254 8.001 ±0.102 ±0.203 ±0.051 ±0.127 +0.305 -0.102 SOT23-5 Package Information (The package drawing(s) this data sheet reflect most current specifications. latest package outline information, www.maxim-ic.com/packages.) SOT5L.EPS High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable Package Information (continued) (The package drawing(s) this data sheet reflect most current specifications. latest package outline information, www.maxim-ic.com/packages.) 8LUMAXD.EPS INCHES 0.002 0.030 0.043 0.006 0.037 MILLIMETERS 0.05 0.75 1.10 0.15 0.95 0.50±0.1 0.6±0.1 0.6±0.1 BOTTOM VIEW 0.010 0.014 0.005 0.007 0.116 0.120 0.0256 0.116 0.120 0.188 0.198 0.016 0.026 0.0207 0.25 0.36 0.13 0.18 2.95 3.05 0.65 2.95 3.05 4.78 5.03 0.41 0.66 0.5250 VIEW SIDE VIEW FRONT VIEW PROPRIETARY INFORMATION TITLE: PACKAGE OUTLINE, uMAX/uSOP APPROVAL DOCUMENT CONTROL REV. 21-0036 SOICN.EPS High-Speed, Single-Supply, Gain Closed-Loop, Rail-to-Rail Buffers with Enable Package Information (continued) (The package drawing(s) this data sheet reflect most current specifications. latest package outline information, www.maxim-ic.com/packages.) QSOP.EPS Maxim cannot assume responsibility circuitry other than circuitry entirely embodied Maxim product. circuit patent licenses implied. Maxim reserves right change circuitry specifications without notice time. _Maxim Integrated Products, Gabriel Drive, Sunnyvale, 94086 408-737-7600 2001 Maxim Integrated Products Printed registered trademark Maxim Integrated Products. Other recent searchesTSDF72830YS - TSDF72830YS TSDF72830YS Datasheet RA32Z39 - RA32Z39 RA32Z39 Datasheet UL94V-0 - UL94V-0 UL94V-0 Datasheet PAR38 - PAR38 PAR38 Datasheet NXI150 - NXI150 NXI150 Datasheet MBR60H100CT - MBR60H100CT MBR60H100CT Datasheet LAN9115 - LAN9115 LAN9115 Datasheet CY-4T - CY-4T CY-4T Datasheet CMPWR100 - CMPWR100 CMPWR100 Datasheet
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