PC714V0NSZXF >
PC714V0NSZXF
Sharp Microelectronics
OPTOISOLATR 5KV TRANSISTOR 6-DIP
1589 Pcs New Original In Stock
Optoisolator Transistor Output 5000Vrms 1 Channel 6-DIP
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PC714V0NSZXF Sharp Microelectronics
5.0 / 5.0 - (217 Ratings)

PC714V0NSZXF

Product Overview

7927740

DiGi Electronics Part Number

PC714V0NSZXF-DG
PC714V0NSZXF

Description

OPTOISOLATR 5KV TRANSISTOR 6-DIP

Inventory

1589 Pcs New Original In Stock
Optoisolator Transistor Output 5000Vrms 1 Channel 6-DIP
Quantity
Minimum 1

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PC714V0NSZXF Technical Specifications

Category Optoisolators, Transistor, Photovoltaic Output Optoisolators

Manufacturer Sharp Microelectronics

Packaging -

Series -

Product Status Obsolete

Number of Channels 1

Voltage - Isolation 5000Vrms

Current Transfer Ratio (Min) 50% @ 5mA

Current Transfer Ratio (Max) 600% @ 5mA

Turn On / Turn Off Time (Typ) -

Rise / Fall Time (Typ) 4µs, 3µs

Input Type DC

Output Type Transistor

Voltage - Output (Max) 80V

Current - Output / Channel 50mA

Voltage - Forward (Vf) (Typ) 1.2V

Current - DC Forward (If) (Max) 50 mA

Vce Saturation (Max) 200mV

Operating Temperature -25°C ~ 100°C

Mounting Type Through Hole

Package / Case 6-DIP (0.300", 7.62mm), 5 Leads

Supplier Device Package 6-DIP

Datasheet & Documents

HTML Datasheet

PC714V0NSZXF-DG

Environmental & Export Classification

Moisture Sensitivity Level (MSL) 1 (Unlimited)
ECCN EAR99
HTSUS 8541.49.8000

Additional Information

Other Names
425-2155-5
Standard Package
500

Reviews

5.0/5.0-(Show up to 5 Ratings)
Print***sFrais
December 02, 2025
5.0
La qualité est au rendez-vous, et les prix sont très compétitifs, parfait.
Lachen***dschaft
December 02, 2025
5.0
Ich freue mich über die stabile Qualität und die günstigen Preise bei DiGi Electronics, die meinen Einkauf perfektionieren.
Ni***Owl
December 02, 2025
5.0
Their packaging quality is consistent and unmatched in the industry.
Sereni***prings
December 02, 2025
5.0
The staff patiently listened to my concerns and provided detailed assistance, which made me feel valued as a customer.
Wildflo***Whisper
December 02, 2025
5.0
Their stock management practices contribute to reliable delivery times and excellent service.
Sha***Wave
December 02, 2025
5.0
Fast shipping combined with excellent after-sales service makes DiGi Electronics a trusted partner.
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Frequently Asked Questions (FAQ)

Can the PC714V0NSZXF be used as a drop-in replacement for the obsolete PC817 in industrial control designs requiring 5kV isolation?

The PC714V0NSZXF can serve as a functional replacement for the PC817 in many industrial control applications due to its comparable transistor output, 5000Vrms isolation, and through-hole 6-DIP package. However, key differences must be evaluated: the PC714V0NSZXF has a higher CTR range (50–600% vs. PC817’s 50–600% but typically binned tighter), and its rise/fall times (4µs/3µs) may affect response in high-speed feedback loops. Since both are obsolete, long-term supply is a risk—designers should consider cross-referencing with active parts like the LTV-356T (Litex) or SFH6206-3 (Vishay) with proper derating and CTR margin analysis. Always validate under worst-case temperature and aging conditions.

What are the risks of using the PC714V0NSZXF in high-temperature environments near its 100°C operating limit in power supply feedback circuits?

Operating the PC714V0NSZXF near its 100°C maximum rating in power supply feedback circuits risks CTR degradation over time, especially with sustained high forward current. LED aging accelerates at elevated temperatures, potentially leading to reduced gain and feedback loop instability. To mitigate, derate the input current (operate below 5mA), use worst-case CTR binning in design, and incorporate hysteresis or compensation networks. Monitor Vce_sat, as its max increases with temperature—ensure the output transistor remains in active/saturation modes reliably. Consider active optocouplers like the TLP290-4 (Toshiba) for better high-temperature stability if redesign is possible.

How does the PC714V0NSZXF perform in AC zero-crossing detection circuits compared to dedicated zero-cross optoisolators like the MOC3041?

The PC714V0NSZXF is a general-purpose transistor-output optoisolator and lacks the integrated zero-crossing detection circuitry of the MOC3041, making it unsuitable for direct AC phase control or TRIAC triggering. Using it for zero-crossing detection requires external circuitry to sample voltage and drive the input LED, increasing component count and phase error. Additionally, propagation delay variation in the PC714V0NSZXF can lead to timing inaccuracies. For safety-isolated AC sensing, consider redesigning with a true zero-cross optoisolator or adding a comparator and microcontroller-based timing capture when using the PC714V0NSZXF.

What PCB layout considerations are critical when using the PC714V0NSZXF to maintain 5000Vrms isolation in medical equipment?

To maintain the PC714V0NSZXF’s 5000Vrms isolation rating in medical-grade designs, ensure creepage and clearance distances meet IEC 60601-1 standards—typically ≥8mm for 4kV isolation. Use a slot under the 6-DIP package to increase creepage path. Maintain separation between input and output traces, avoid vias near pins, and use guard rings if needed. Verify the PCB material (prefer IPC-4101 FR4 with high CTI). Since the PC714V0NSZXF is obsolete, long-term reliability and manufacturer support are concerns—consider alternatives like the ISO1500 or ILD813 with comparable isolation and better availability for new medical designs.

What are the long-term reliability concerns when designing in the obsolete PC714V0NSZXF for industrial automation systems with 10+ year lifespans?

Designing the obsolete PC714V0NSZXF into industrial automation systems poses significant lifecycle risks: limited availability increases sourcing costs and counterfeit parts exposure, while lack of manufacturer support means no failure data or process changes notifications. Long-term, LED output degradation and bond wire fatigue can reduce CTR below threshold over time—especially with thermal cycling. Mitigate by applying 2x CTR design margin, selecting the highest CTR bin available, encapsulating the optocoupler to reduce thermal stress, and validating accelerated lifetime testing. For new designs, consider actively supported equivalents like the TLP785 (Toshiba) or HCPL-2731 (Broadcom) with similar specs and AEC-Q101 qualification where applicable.

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