HFD Fiber Optic LAN Components 1.25Gbps PIN Plus Preamplifier with RSSI

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1 with RSSI FEATURES rates > 1 GHz PIN detector, preamplifier, and bypass filtering in a TO-46 hermetic package 5V or 3.3V operation GaAs PIN detector and Transimpedance amplifier Differential Output for low noise 1.1 GHz typical Bandwidth Externally biased photodiode facilitates photocurrent monitoring for link diagnostics. The is a high-performance 850nm GaAs photodiode and an AGC transimpedance amplifier packaged for high-speed data communications. It is designed for ease of use by module designers or manufacturers in IEEE 802.3z (1.25Gbps Ethernet), ANSI (1.062 Gbps Fibre Channel) and ATM XXX (622 Mbps) applications. The converts optical power into an electrical signal that is used in fiber optic communications and other applications. As the light increases, the output voltage increases, limiting at input powers above 10dBm. An externally biased photodiode cathode facilitates linear photocurrent monitoring for link diagnostics. The differential output is designed to be AC coupled into a data amplifier. The Honeywell is designed to interface with 50/125 and 62.5/125mm multimode fiber. Honeywell

2 ABSOLUTE MAXIMUM RATINGS Parameter Storage Temperature Case Operating Temperature Lead Solder Temperature Power Supply Voltage Rating -40 to +85 C 0 to +70 C 260 C, 10 sec to +6 V Photodiode Bias Voltage 0V < Vpd < +10V Incident Optical Power 0 dbm average, +7 dbm peak NOTICE Stresses greater than those listed under Absolute Maximum Ratings may cause permanent damage to the device. This is a stress rating only and functional operation of the device at these or any other conditions above those indicated in the operations section for extended periods of time may affect reliability. ELECTRO-OPTICAL CHARACTERISTICS (Vcc=3.3V, AC coupled to, 0 C<T<85 C, typical values at 25 o C) Parameters Test Condition Symbol Min. Typ. Max. Units Notes Electrical Characteristics Supply Voltage P in = 0µW, Rload= V cc Volts 1,7 Supply Current P in = 0µW, Rload= I cc ma 1,7 Output Offset Voltage P in = 0µW, Rload= Voffset mv 10,7 Output Resistance Single ended, freq = 0Hz R o Ω Opto-Electronic Characteristics Differential Responsivity P in < AGC TH, Rload= R mv/µw 2,3,7 Monitor Current Slope I PD vs. P in I slope 0.5 A/W 12 Monitor Current Offset P in = 0µW, Vpd = 3.3V I offset 1 na 12 Differential Output P in = 200µW, Rload=, V out mvp-p 1, 13,7 Voltage Voffset = 0 mv AGC Threshold Power Peak Optical Power AGC TH 45 µw -3dB Bandwidth High Frequency rolloff BW upper GHz 4,7 Low Frequency Cutoff BW lower 0 KHz 4,7 RMS Input Referred P in =0µW, R load = NEP µw 5,7 Noise Equivalent Power MHz BT Filter Optical Modulation Amplitude DR=2.125Gb/s, ER>9dB OMA MIN -17 dbm 11 BER Sensitivity BER=10-12, Ext. Ratio=10 Sens dbm 11,7 Power Supply Rejection P in =0µW, R load =, PSRR db 6,7 Ratio External VCC filtering Pulse Width Distortion P in =350µW, K28.7 Pattern, PWD 4.5 % 8,7 R load = Rise/Fall Time P in =30µW peak, R load = T R /T F 400 ps 9,7 Spectral Responsivity P in =20µW peak, R load = λ nm 7 Deterministic Jitter K28.7 bit pattern, 1.25Gb/s DJ 60 ps 14 Notes: 1. Pin is the average optical power incident on the component window, subject to note Responsivity measured with source wavelength of 850nm, freq = 10MHz, P in < AGC TH, R load =. 3. The differntial output voltage increases as received peak optical power increases, up to approximately 10dBm depending upon the AGC th. The preamplifier is designed to limit the electrical amplification above this optical input level, and does not introduce signal distortion until the average input power exceeds 0dBm. 4. Bandwidth is measured with a small signal sinusoidal light source with 50 µw average power, R load =. 5. RMS input referred optical noise is sample tested by measuring the RMS output referred noise, then dividing by the responsivity. 6. PSRR is sample tested by injecting a 20dB electrical signal on the Vcc pin. The nominal value at 100MHz is recorded. See Figure 2 for recommended filter. 7. Unless otherwise stated, all output parameters measured differentially using an optical lens, which focuses the optical power within a spot diameter smaller than the photodiode active area. Each output is AC coupled to load resistance. Customers results will depend on the optical lens system used. Component leads are shorter than 0.1 inch in length. 2 Honeywell For application help: call

3 8. Sample tested at the 50% level of output pulses. 9. Rise and fall times are sample tested with source wavelength of 850nm, 125MHz square wave, R load =. Measured at 20% - 80% signal levels and corrected for the optical source. 10. Output offset voltage is defined as Vout VoutQ with no light. 11. The BER sensitivity excludes the decision threshold effects of any limiting amplifier connected to the output of this product. Limiting amplifier effects act like additional noise sources, which must be referred to the receiver input. An estimate of BER sensitivity is calculated as follows: Sens dbm 10. log OMA min. 2mW. ε 1 ε Represents the average monitor current at the Vpd pin. Varies with O/E conversion efficiency. 13. Differential output voltage swing varies inversely with AGC threshold power, but directly with Vout offset. 14. AC coupling capacitor should be selected based on data rate and maximum number of consecutive bits to reduce signal droop and resulting pattern dependent jitter. DJ is corrected for the source input. NOTICE The inherent design of this component causes it to be sensitive to electrostatic discharge (ESD). To prevent ESD-induced damage and/or degradation to equipment, take normal ESD precautions when handling this product FIGURE 1: INTERNAL SCHEMATIC DIAGRAM OF THE HFD V CC V PD Automatic Gain Control 100pF 300pF FIGURE 2: RECOMMENDED INTERFACE CIRCUIT FOR THE HFD Volts Filter A Vpd Vcc Limiting Amplifier 100Ω 22nF * TIA Gnd Power supply Typical bias filter: 22uH 10nF 100nF * data rate dependant (22nF for rates > 1Gbps) For application help: call Honeywell 3

4 MOUNTING DIMENSIONS (for reference only) in./(mm) Pin Description 1 V OUTN Inverted Output 2 V OUTP Non-inverted Output 3 V PD Photodiode Bias Voltage 4 V CC Power Supply Voltage 5 Gnd (Case) 4 Honeywell For application help: call

5 ORDER GUIDE Catalog Listing Description TO-46 PIN Plus Preamplifier with external photodiode biasing WARRANTY/REMEDY Honeywell warrants goods of its manufacture as being free of defective materials and faulty workmanship. Commencing with the date of shipment, Honeywell s warranty runs for 18 months. If warranted goods are returned to Honeywell during that period of coverage, Honeywell will repair or replace without charge those items it finds defective. The foregoing is Buyer s sole remedy and is in lieu of all other warranties, expressed or implied, including those of merchantability and fitness for a particular purpose. While we provide application assistance, personally and through our literature, it is up to the customer to determine the suitability of the product in the application. Specifications may change at any time without notice. The information we supply is believed to be accurate and reliable as of this printing. However, we assume no responsibility for its use. SALES AND SERVICE Honeywell Sensing and Control serves its customers through a worldwide network of sales offices and distributors. For application assistance, current specifications, pricing or name of the nearest Authorized Distributor, contact a nearby sales office or call: TELEPHONE (USA) (Canada) +49 (0) (Germany) (Singapore) +44 (0) (UK) FAX (Customer Response Center) (Fax on demand) +49 (0) (Germany) (Singapore) +44 (0) (UK) INTERNET VCSEL@HONEYWELL.COM Honeywell Inc. 11 West Spring Street Freeport, Illinois PK XXXX X DMM Printed in USA Honeywell Inc. Optoelectronics Facility 830 East Arapaho Road Richardson, Texas Honeywell Control Systems Ltd. Zodiac House Calleva Park Aldermaston, Berkshire RG7 8HW England Helping You Control Your World

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